Knifemaking

Knifemaking is the building of a knife, which includes the blade, handle and other accouterments. Blades are made by either removing metal from a steel blank via a grinder – known as stock removal – and the forging to shape of hot steel into a blade in the process known as bladesmithing. Other parts, including bolsters, guards, pommels, etc., are needed to complete the finished knife.

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How to Make a Sword

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by Don Fogg

The time is right for a new age of swords. It is not the need for weapons that stimulates this resurgence, but rather a convergence of interests, that of the modern swordsman and the modern blade smith. Each group is dedicated to the study of its craft, each with teachers and individuals intent on mastery.

Sword Tooling

There are specific tooling requirements to make swords. Interestingly, you do not need a deep, or long, fire to do the hot work on a lengthy sword blade. Heating more than a 5- or 6-inch section will only cause problems in forging. If you heat a longer section, the blade will bend as you are working on it.

Traditionally, charcoal would have been used to forge swords. There are many plans and designs for building a charcoal forge. Coal forges are particularly popular with blacksmiths because of the versatility of the fire. Many blade smiths have switched to propane forges. A propane forge is relatively inexpensive and simple to construct. For details on building a forge like the one I use, visit my website www.dfoggknives.com and check out the “Bladesmithing” section. I would also have you refer to my extensive links section for other sites on the craft.

I use two forges when I am working. The first is built on a 15-inch-diameter pipe standing vertically 18 inches high. The burner comes in at the bottom of the forge at a tangent, allowing the flame to burn in a circular flow following the interior of the forge.

There are two doors cut opposite each other at the top of the forge. This allows longer sections to be passed through the forge. The burner is constructed of standard pipe fittings using 1 1/2-inch pipe attached to a 100 cfm shaded pole blower. The air is controlled with a flap on the intake of the blower, and the gas is controlled by a needle valve. I use the large forge for welding damascus billets and for breaking down stock.

For the actual blade forging, I use a much smaller version of the same forge. It is built on an 8-inch pipe with a considerably smaller blower. This forge gives a 5-inch heat on the bar and allows me to pass the point out of the forge so that it doesn’t overheat.

Forging of the Long Blade

The initial forging step is to prepare the overall shape. The profile and thickness of the steel are hammered to form. The Japanese call this initial shape the sunobe. It prepares the billet for the final edge beveling and shapes the tang. Careful forging at this point will make the final forging go smoothly.

I work from round stock primarily because I have the tools to break down the round bar, and keeping just a few sizes on hand gives me the entire range of possibilities.
The initial stage involves breaking the steel down to bar stock. During this process, I am setting my dimensions and thickness. The next step is to forge the tang and point shapes. When I have finished, I have a rough bar with the preshape of my desired sword in the proportional thickness.

Once the sunobe is formed, then the edge bevels can be established. I have found that beginning the forging by establishing a mini bevel with light hammer blows allows you to find the center of the bar and serves as a registration point when you lay the bar on the anvil. You can feel the flat of the mini-bevel.

Forge the bevels a section at a time. It is helpful to forge the bevel up from the edge instead of forging down to the edge. If you forge toward the edge, it tends to get too thin before the entire flat has been established. Forging the bevel up toward the ridgeline moves more metal quickly and helps to maintain control.

I find that if you are careful to check that the bevel is equal on both sides, then keeping the edge in the center pretty much takes care of itself. I do not forge the section down completely before moving to the next section. When you do move an unforged section, it is important to work from it to the forged section. If you don’t, then you will induce a bend in the blade as it transitions from thin to thick.

As you forge the bevels, it is important to register the flat on the anvil and to strike the work piece at the same angle as the bevel. Adjust your hammer hand to that position and lock it in. It is helpful to strike in the same spot on the anvil and at the right angle. Move the work piece as opposed to moving the hammer. The tong hand is the brains; the hammer hand is the force.

To gain control over the forging, you need to be able to eliminate as many variables as possible. The hammer arm is comprised of the shoulder, elbow and wrist joints. Each of these joints must be coordinated in order to strike a consistent blow. Add the rotation of the wrist and you can see that it becomes a daunting task.

I teach new students to lock their arm to the side of their body and minimize or eliminate the shoulder as a variable. With your elbow to your side, you are basically restricted to an up and down motion. The wrist can be controlled by using a hammer that is heavy enough so that you must lock your wrist to use it.

Too light a hammer and the wrist will be able to rotate, then the hammer face will be out of control. If you go too heavy, then your wrist can not support it and no work will get done. So, having a range of hammers to choose from is helpful. If you try this method, it will teach you control and will give you a frame of reference to fall back on as your skills improve.

Hammerin’ Hot Steel

There are some peculiar forging problems that occur when you get beyond a 10-inch blade. First, when you forge a bevel in a bar, you stretch the metal and lengthen it, which causes it to curve upward. In a small blade, this is a problem, but when you compound it by additional length, it requires constant correction to keep the blade straight. One way to approach the problem is to correct as you go.

As you forge the bevel and the edge climbs, reserve enough heat to make the correction. I usually do this by placing the spine on the anvil and lightly tapping on the edge until the spine is completely flat on the anvil. Tapping on the edge will upset and deform the edge, and so it follows that it is necessary to correct the deformed portion of the edge, as well.

Working 5 inches of blade length at a time, the work progresses down the blade and includes forging the bevel up, making sure it is equidistant on both sides, forging the curve back out and then correcting the distortion to the edge.

Curvature Correction

As the edge becomes thinner, you have to move to a lighter hammer and use lighter blows to correct for the curvature. The curve will diminish as you approach the final edge dimension because there is less material being moved.

Another approach is to precurve the blade down and then it will straighten out as the bevel is forged. This is easier to do in small blades than in sword-length pieces, but it can be done. There is no advantage of one method over the other and each has its own peculiar set of problems.

Another problem that comes from forging blades over 10 inches is that they tend to develop a helical twist. The bevels will be properly equal, the edge will be in the center, but as you sight down the edge it will appear to corkscrew. This can be hard to get out if it goes too far before correction.

The correction is to lay the flat of the blade on the anvil, and with light taps, bring it back to straight. I saw a demonstration by Japanese swordsmith Enomoto, and he corrected this action by first reversing the direction of his forging, and then by changing ends of the sword and reforging. In effect, he removed the twist by unwinding it through the reverse process. Keeping the flats straight is the objective in either case.

Once the bevels have been established over the entire length of the sword, the blade is sighted for major correction. There will be areas that bow out or in down its length and those are flattened now. The straightness of the blade is corrected at this point until the blade is eyeball close.

Now it is time to enter the final forging. At this point, the bevels are forged back to the ridgeline, but the edge is still too thick. Heats at this stage should be at or slightly above critical temperature. Using a light hammer will give more control and you are not as likely to make an uncorrectable error because you can not move the metal as quickly with the light hammer.

It is important that you carefully watch the surface of the steel as you are forging in this stage. There should be no sharp hammer marks. Scale should be wire brushed off or it will be pounded into the surface and create pocks and craters that can be deep and difficult to remove.

One way to keep the surface free of scale is to wet the anvil and hammer during this part of the forging. The water converts to steam and quickly blows off the scale. What remains is light and flaky and will not be a problem.

Watching your heats is critical during this stage. The intent is to refine the grain of the steel, so you don’t want to get the metal too hot. Also, you don’t want it to get too cold or it might set up stress fractures. Your working time per heat is reduced so you have to work with light, rapid blows going repeatedly in and out of the fire. How far you take the edge is a function of your experience, but I would encourage you to forge as close to shape as you can. This minimizes the stock removal and cold work required.

When the blade is finish forged, it is checked for straight and true, corrections are made and then it is normailzed by heating above critical and allowing it to cool in still air. After the blade has cooled, it is examined again. If there are major corrections needed, it must go back into the fire and steps taken. If it looks good, then you can begin to profile the blade.

Final Shaping

The quickest way to profile the blade is with a belt sander, but you can also do it with files and scrapers. I do most of my profiling working on an 8-inch contact wheel. If you have done a careful job of forging, this process should go quickly. Because of the scale on the blade, I use a worn belt. I do not mean worn out, but one that still has some life in it.

I continually check the profile of the blade silhouette by holding it up to the florescent lights above the grinding table. When the profile is pleasing, it is time to begin setting the edge. I do this part of the process freehand and grind a mini-bevel on both sides, leaving the finished edge in the center of the blade. These mini-bevels give me a reference when I am grinding the bevels and keep me from grinding past center.

Grinding a long blade on a belt sander requires that you go beyond your locked position. A locked position is established by tucking your elbows tight to your body and making yourself as stable as you can. The blade is presented to the wheel or platen and drawn across it by shifting the weight on your hips.

There is a limit to how far you grind without changing position on the blade. I grind my swords in sections in this manner, blending the areas by overlapping them. I will generally use the 8-inch contact wheel to remove the scale and take off any excess, being careful not to remove too much during this stage.

I switch to the platen for the next stage. When grinding on the platen, you need to pay attention to how the blade contacts the belt. Generally you are working on one edge of the platen or the other. In one direction, the grind will plunge, and in the other, the grind will climb. I do not try to be too aggressive with the grind until the bevel flats have been established and I can feel them. I do my primary rough grinding on a 40-grit belt.

The flats are difficult to hold freehand and I generally set them with a sen, or scraper, and finish them with files. At this point on the grinder, I am only getting out the scale and major low spots. When you first start to use the scraper, it takes a few strokes before it starts to get a bite on the steel. Once it does start to bite, however, it will pull curls off the steel.

There is a lot of heat generated during this process, and if you work too quickly, it can create carbide pimples on the surface of the steel that will dull a file. You can generate the same problem if you are too aggressive with a file. Once these carbides form, you have to dig them out with the edge of a worn file before any more cutting can be done.

It is best to work at a steady pace, watch your breath and toil at a rate that does not leave you panting. All rough shaping on the flats and bevels can be established with the scraper and then cleaned up with files.

Draw Filing

The best filing technique is called draw filing. Using an 8- or 10-inch bastard mill file, hold the file with your hands on both ends. Work the file at right angles and lengthwise on the blade. You need to find the right amount of pressure when using a file. Too much pressure and the teeth will load, causing gauling or deep scratches. Too little pressure and no work gets done.

With the right amount of pressure, the file will remove light shavings and allow you to quickly clean up the rough scraper finish. Files wear out. I like to start a new project with a fresh file. If you can see bright areas on your file, the teeth are gone and it isn’t going to work as quickly as a fresh file would.

All hand tools have their own touch to make them work efficiently and effectively. It is a common problem to bull through the work, but if you do, you will create problems and frustrate yourself. Learn to use them effectively and they are pleasant tool with which to work.

Once the blade is draw filed to finished dimensions, it is ready for heat treating. All the file marks should be running the length of the blade. There should be no sharp angles or corners that will be hardened. I like to round the edge by knocking off the corners and getting the file marks to run lengthwise on the blade. This will prevent stress risers and potential cracks.

Up to now. you could have worked on sword-length pieces with your normal knife making equipment, but for heat treating, the length of the blade requires new tools. You can harden long blades in a small fire by passing the blade back and forth through the fire until it all comes up to temperature, but you will be chasing the ends.
When the tang end of the blade is up to heat, the tip is cooling and vice versa. If you are working with charcoal, it is possible to build a long fire by fashioning an air pipe with holes drilled along it to provide an air source the length that you need, building up the sides of the forge with firebrick.

My preferred method is using a propane forge built from a 55-gallon oil drum. The drum that I use has a removable lid so it is easy to line the insides with ceramic fiber insulation and reinstall the lid. You can insert stainless or resistance wire clips by drilling holes and pushing them through the wool to keep it from sagging.

To fire the forge, use either a small venturi or small power burner with the flame coming in at the bottom from one end. Cut small doors at the top of the drum to insert your blade. You could also hang rods down from the top as hangers to hold the blade and minimize sagging while it is heating.

The way this forge works is that instead of trying to equalized heat over a long length and narrow diameter, the heat equalizes itself over the larger area, giving a nice even heat. The key is to use a small burner. The one I have on my setup can only bring the forge to a maximum of 1,650 degrees Fahrenheit and is capable of running as low as 1,300 F with controllable increments in between.

Once we have our heating source, we have to consider the quench tank. If you are going to quench horizontally, you’ll need a tank long enough for the blade, including the tang and tongs. A dry run with the tongs in place will give you an idea of how much extra length is required to get the entire blade into the quench.
If you quench vertically, then you will need a cylinder with not only enough depth, but also volume so that the quenchant doesn’t overheat. You will, of course, need extra quenchant to fill these containers.

Clay Coating

The blade that I have been making will be selectively hardened by applying a refractory clay coating to the back, or spine, of the edged steel. When the blade is quenched, the clay will slow down the cooling enough to prevent the spine from fully hardening and leave only the edge fully hard.

I hardened this blade in oil and had pre-curved the blade during forging so that it will come out relatively straight. It is an interesting effect with long blades that, when hardened in oil, the point will drop and the blade will curve downward.

If the same blade were quenched in water, the point would climb and the blade would curve up. The cause of this is much debated and the process is quite complex. It is enough to know that it will occur and to anticipate it. This particular blade still curved past straight and I had to regrind some of the re-curve out of it to make it straight.
The blade was forged from 1095 high-carbon steel, and for the heat treatment, I brought the entire blade up to 1,425 F, and soaked it until all the carbides had gone into solution. If the fire is steady and you watch the blade carefully, you can see the metal make its transformation to austenite.

The blade will gain color as it heats. As it approaches the temperature of the forge, it will appear to hang and not gain in temperature. During this stage, shadows will be visible on the blade. It is still gaining temperature, but energy is required for the carbon to move from within the matrix of the iron molecule and go into solution. Once this finally occurs throughout the blade, the steel will brighten and be uniform over the entire length.

Bring the blade above critical temperature and then allow it to cool in still air in a darkened space. I have a pipe by the forge for this purpose. As the temperature drops, it will lose color until it reaches a point where it seems to hang, and then, especially in the thinner sections, it will appear to visibly brighten as the steel drops below critical temperature.

Because I work in an outside shop, I have to check for critical temperature before I start forging to adapt my eye to the changing colors. Finding the decalescence and recalescense points is one sure way of knowing what my temperatures are. Another way is to check the steel with a magnet. Steel will lose its ability to attract a magnet just prior to the critical temperature.

Once the blade reaches critical temperature and has soaked long enough to put all the carbides into solution, then it is ready to quench. I have a pair of special offset tongs that allow me to hold the blade by the tang and have the tongs out of the way when I dip it into the quench tank.

Having a pair of straight tongs will greatly increase the size of the tank required to get the whole blade into the quench. It is a good idea to do a dry run on your equipment before you get to the hardening stage.

The Oil Plunge

The blade is at critical temperature and I quickly withdraw it from the fire and immediately plunge it into the oil. I am using a commercial quench oil called Tough Quench. There are many possibilities for the quench. A vegetable-type oil will work well, especially peanut and Canola oil.

I hold the blade in the quench until it stops bubbling, gently moving it back and forth. It is important to enter the quench cleanly and not to tip it to one side or the other. Doing so will almost guarantee warping. I like to think of this as the first cut the sword will make, and it is the moment when it comes alive.

After the quenching solution has stopped bubbling, I remove the blade and scrape off the clay. The blade is still too warm to touch. With gloves on, I sight down the blade, and if it needs adjusting, I do it quickly. It is still setting up and is somewhat pliable at this point, but you do not have much time before it completely hardens and is fixed.

The blade will continue to harden and curve until it is popped into the tempering oven, so it is a better practice to go from the quench to the tempering oven. Most of the cracking that occurs during hardening comes from the edge curving too much and tearing itself apart. This is a particular problem when water quenching and it makes the process quite exciting.

It’s Time to Temper

After the blade is hardened, it is hard, but brittle. The tempering cycle adds heat back to the steel and softens it somewhat, but more importantly it adds toughness to the steel, making it far less brittle. Depending on the style of sword, you will want to draw the hardness to the point where it will not chip in heavy use, yet still maintain a good edge.

Some European swords are drawn to spring temper and are extremely tough, while the Japanese-style blades are sometimes left full hard because the blade has toughness in the unhardened back. Full-hard edges will chip and it only makes sense to draw them down (cool them) some to increase the toughness.

Sword-length blades will generally exceed the size of a normal kitchen oven, so you will have to prepare before you harden the blade. Many sword makers use low-temperature salts for this purpose. Low-temperature salts melt at 350-400 F and become liquid capable of taking heats well in excess of normal blade-tempering temperatures. Because the salts are liquid, once heated, the temperature is fairly uniform throughout the bath. Salts may be heated either electrically or by using a propane pipe burner under the tank.

Blade-bluing salt tanks provide a good model for this type of heating system, and pictures of their pipe burners can be found. Low-temperature salts are relatively inexpensive and reusable, but they are messy, corrosive and hygroscopic. Leave them for any length of time, and they will wick moisture from the air, leaving a layer of water on top of the salts that has to be removed or boiled off every time you use them.

Interior and exterior of the author’s tempering oven.

Low-temp salts also have to be recharged with water on occasion and this is a dicey operation that requires feeding water to hot salt at a measured rate. I have personally abandoned them because of these problems.

Another method is to heat sand or glass beads used in sand blasting. You can heat them with a pipe burner, as well. This method will hold the heat well, but the heat is not as evenly distributed and you have to mix them repeated to get a uniform temperature.

You can also build a small oven using heating elements and controls from conventional electric ovens. Tempering temperatures are not very high, but you do have to maintain a consistent temperature for a relatively long period of time and control is of upmost importance.

I have tried all the methods mentioned and have ended up building my own electric oven. I use resistance wire for heating and cast the internal box out of insulation refractory. The elements are controlled by a digital controller that gives me consistent results. It was expensive, but solved the problem.

I set the oven at 450 F and preheat it while I am hardening the blade. After hardening, I will pop it in the oven for a one-hour draw. I remove the blade and let it cool to room temperature and then run another one-hour draw.

I can adjust the temperature if I find, after checking the blade with a file, that it is too hard. The second draw is important because with all steels there will be some retained austenite that has not converted to martensite. This retained austenite will change to fresh martensite during the tempering and cooling process, and the second draw will temper that martensite. It would not hurt to repeat for a third cycle, but it is not necessary.

The times and temperatures will vary depending on the type of steel used and it is a good practice to make smaller test blades to determine the best combination for what you are trying to make. I am a firm believer in testing your work. I routinely take blades through progressively more demanding series of tests all the way to destruction. If you do this consistently, you will know what to expect from your steel and what your blades are capable of doing.

Eliminate Warping

Inevitably, with long blades, you will get some warping and distortion. Good normalizing practice prior to hardening will help but not eliminate warping. There are several ways you can correct warping after the blade has been heat treated. If the blade has been selectively hardened using clay on the back, you can often correct the warp by hammering the blade using a round-faced hammer. Work over the hardy hole or over a plate with a hole in it.

If the blade has been thoroughly hardened, then you can use heat to correct the warped section. The Japanese smiths often used a heated copper block for this purpose, but an acetylene torch will work. Heat a small area on the outside of the curve, being careful not to draw (or reduce) the temper on the edge, until it just sizzles water, and then quench the blade.

Repeat the process many times and it will slowly begin to straighten the blade. Another approach is to clamp the blade and flex it back into position. I don’t favor this approach since it can leave stretch marks on the surface of the blade and weaken it. Also, if the blade has been thoroughly hardened, it should just spring back or break after flexing.

Finishing the Blade

Once the blade is straight and the profile is correct, you can begin to finish the blade. I usually go back to the grinders to rough in the flats and adjust the profile. It is helpful to reduce the speed of the grinder at this point to minimize the chance of overheating the blade. I work bare handed so I can feel the heat build up and quench the blade as soon as it begins to get warm. I start with a 40-grit belt, making sure to use fresh belts for all grinding.

Some makers like to work off the wheel and run lengthwise, but I have learned to work directly off the platen. There shouldn’t be much stock to remove, so this stage requires care and a “light hand.” After the 40-grit belt, I graduate to 120- and 220-grit belts. I have been trying the new Trizac abrasives and do like them for this operation.

The final geometry of the blade should be established now. Since a sword blade is subjected to incredible forces on the cutting edge, it is important to roll the edge in for maximum support. This can be done using the slack belt, but care should be taken that it doesn’t wash over your grind lines.

While grinders are used in my operation, I prefer to finish my blades by hand. I like the control and finish that I get doing it this way and it is not as stressful. For the final shaping, I use a large Norton KB8 stone. The stone is soaked in water with a touch of Fantastic added.

I use my drill press table to hold the sword. I clamp a small drill-press vise in a larger vise that is mounted to the table. Using a piece of 1×2 wood to back up the blade, I clamp the whole thing in the vise. The advantage to this is that I can raise or lower the table until I have just the right working height. The stone is quite heavy and cuts quickly.

I work slowly and rinse the stone frequently. You have to watch the cutting and operate by feel, but soon a nice rhythm is established. I try to work the stone at different angles because it is friable and I want it to wear evenly. During this stage, I will roll the edge and actually sharpen the blade in the process. It is also time to set the bevel lines.

After stoning both sides, the geometry of the blade is set and it is ready for polishing. For this part, I switch to sheet abrasives. There is a product commonly used by auto body workers on jitterbug sanders that is adhesive backed and comes in rolls of various grits. This is made for metal finishing and is an excellent abrasive.

I mount the abrasive to sanding bars that are roughly 18 inches long and have handles on both ends. I stick the sandpaper on one side and cut to length, trim the side with a box cutter, stick the remainder to the opposite side and trim the excess. It is helpful to wax the bars so the paper will peel off easily.

I am using my back and shoulders while I do this sanding, so I can apply a lot of pressure and, consequently, it cuts aggressively. The paper will load quickly, but you can extend the life of it by scrubbing it occasionally with rough leather. I use the entire length of the bar as I work and change the paper frequently. The scratch pattern is at an opposite angle to the previous stone scratches. If you work each successive grit in the opposite direction from the previous grit, you can see the underlying scratches clearly. You sand out all of the previous grit scratches before changing grits.

Sans Stone Scratches

I start with 180-grit paper to remove the stone scratches and finish both side before moving to the next grit. When one side is completed, I put a strip of masking tape down the length to keep the surface from scratching when I flip it over to do the other side.

After all of the underlying scratches have been removed, I switch to 400-grit paper on the sanding bar and, going in the opposite direction, proceed to sand out all of the 180-grit scratches.
The adhesive-back rolls are available up to 400 grit, and then you have to switch to sheet abrasives. You can use spray adhesive to stick the paper to the bar, but it is messy and I find it more convenient to cut the paper into strips and wrap them around a sanding block.

The author demonstrates sanding.

After the 400-grit paper, I graduate to 500-, 800- and 1,000-grit paper. The 1,000-grit sanding is done lengthwise on the blade using a block with hard neoprene. The type of backing you use with the abrasive will greatly affect the finish on the metal. I have many sanding blocks that I have fashioned. My primary block is cut from .5-inch Corian with hard neoprene glued to one side. This block is impervious to water and gives me two different densities with which to work.

After I have a good, 1,000-grit finish on the blade, I wipe the grease off the blade and give it a light etch in ferric chloride. I made up a tube for the ferric out of PVC pipe and it is especially useful for the long blades.

It is extremely important to completely degrease the blade. Also, you should have a container of clean water that is deep enough in which to immerse the entire blade. Water should sheet over the entire surface of the blade. If there are any grease spots on the blade, clean the spots until they are gone.

I dunk the entire blade in the ferric chloride for a short count and then remove it to see if there are any areas that still need to be degreased. If it is clean, then I dunk the blade for a 20-second count or until the hardened area turns black. The tempered martensite on the edge will etch black and the pearlite on the back will etch gray.

I go immediate back to the rinse water and thoroughly rinse the blade. I spritz the blade with ammonia and scrub it down with a wet paper towel. Rinse and repeat, this time using baking soda on the paper towel. Rinse and then wipe the blade completely dry.

The blade at this point will have a light surface oxide. I move back to the bench and remove the loose oxides with a cotton ball and pumice. I have been using 2F fine pumice from a woodworkers supply store. You can either use it dry or spray the blade down with WD40 and scrub off all the loose oxides.

The finish on the blade will be dull at this point, but the hamon (temper line) will show clearly. I use 2,000-grit paper wrapped over the block with the neoprene side down and pull the paper over the entire length of the blade in one smooth motion. For each pass, I change to a fresh section of paper. The motion is done with the body so that the line is straight, uninterrupted and smooth. Start at the blade tang and pull, rocking back as you come to the end of the blade.

The Swirl-Free Sword

When you have a nice, swirl-free, 2,000-grit finish on the blade, it will have a soft, matte look. Again, we go back to the etch, cleaning and degreasing the blade thoroughly and then doing another 20-second dunk in ferric chloride.

The first etch serves as a chemical abrasion, in effect eroding the tops of the prior sanding marks. The 2,000-grit finish abrades that down even finer and leaves a smooth, uniform surface. When the blade comes out of the second etch, you follow the same procedure, making sure that it is completely rinsed and neutralized. This is a good-looking finish on the blade, all the details are visible in a good light and it is relatively easy to maintain.

You can take the polish to another level by continuing to work on the finish. This time we will want to distinguish the two zones on the blade by polishing the area above the hamon and leaving the hard area frosted. To polish it, I prepare 2,000-grit paper by sticking it to 1/8-inch, sticky foam sheets.

I said earlier that the backing will make a big difference in how the paper cuts. By using the foam backing, you can apply light pressure to the paper and it will not leave hard, swirled stop-and-start marks. The finish mimics that which was achieved using traditional finger stones.

It is helpful to apply a fluid to the blade during this process. I will sometimes use Liquid Wrench, but because of the petrochemical aspect of the solution, I prefer to apply soapy distilled water. I cut the foam-backed, 2,000-grit paper into strips 3/8-to-1/2-inches wide each, and then cut off 1/2-inch-long sections. I rub the gritty sides of the smaller pieces against each other to take the bite out of the paper.

With a small piece of sandpaper under my thumb, I begin to lightly sand the whole blade, paying more attention the area above the hamon than below it. The softer steel will polish more than the harder sections. Continue to polish until the oxide matte has been polished away. Finishing is a matter of taste and what you should be shooting for is getting the best look and not trying to mimic a traditional finish. After you have finished the blade with the 2,000-grit paper, you can proceed with paste abrasives.

Simichrome is a fine polish for this purpose. I don’t recommend diamond paste abrasives because they tend to cut both hard and soft equally, and will not produce good results. I rub out the blade by putting the paste on a cotton pad, replenishing the pad with the paste when it darkens and is not as fluid. Simichrome will leave a waxy residue on the blade that can be cleaned up with pumice on a cotton ball.

This process is time consuming and is only finished when you decide the blade finish looks as good as you can make it. I usually stop before the final finish to make the habaki [handle charm] and fittings for the handle.  Whenever you stop for the day, or an extended period of time, oil the blade to prevent rust. While I am working on the fittings, I tape the blade with masking tape to insure against scratching the finish.

The type of finish you choose to apply to the blade will be determined by its use and function. I am fascinated by the hamon because it is beautiful and because it shows the heat treatment of the sword. So, my process is centered around enhancing the beauty of that characteristic.

This is the end of the sword smith’s work, and from here on, it is handle making. In ancient cultures, the various parts of the sword would be made by craftsmen who would specialize in each particular aspect. We are beginning to develope specialty crafts within sword smithing, but more commonly, the smith will have to learn to handle his own work.

Summary

The history of swords is rich and fascinating. When you begin to make swords, you are partaking in that history at its latest evolution. We have many technical advantages today, but the process is remarkably similar to what the ancients did, and it certainly encompasses the same challenges. In the future, we will see evolved sword forms develop. New materials and techniques will enable the smiths to create better blades than were possible in the past. It will require the cooperation of the warrior and the smith to discover the new potentials.

While we are fortunate to be able to draw on the experience and artifacts of the past, what is exciting about our times is that we have a chance to once again redefine the symbols of character. Ours is a new age, yet there are still the ominous dragons to slay, and like the dragons of old, their oppressive presence blocks the light of truth. The warrior and the smith are alive again and answering the clarion call.

Ask BLADE®: Japanese-Style Heat Treatment

A tanto is plunged into the water during the hadaka-yaki process—yaki-ire, or heat treating, with no clay coating on the blade. (Yoshikazu Yoshihara photo)

Reader questions BLADE® story description of Japanese-style heat treatment

By BLADE staff

 

    Question: Regarding part three of the “HAMON!” series, page 46, in the November BLADE®: Bladesmithing articles written by observation sometimes lack accuracy. To heat treat tool steel you anneal first, then harden and then temper to change hardness into toughness. That temperature is usually 400°F to 435°F and it is called tempering for about 30 minutes.—Bob Rupert, Pittsburgh, Pennsylvania

 

    Answer: The author of the series, Leon Kapp, was kind enough to provide the following comments on Mr. Rupert’s letter:

    I described the process exactly as Yoshindo Yoshihara and other swordsmiths in Japan do it (and as I have done it myself). The process is at least 1,200 to 1,400 years old in Japan. It was developed and used for tamahagane—a raw steel made of Japanese iron-bearing sand that requires extensive refinement—and works beautifully for that steel. However, I think a main difference between tamahagane and modern steels is that tamahagane contains only small traces of anything except iron and carbon. Manganese or other elements in the steel might require changes in this process. If done right, the Japanese process hardens the blade all the way through the hamon, and not just near the surface.

    In fact, since all my experience is with Yoshindo and Japanese swords, I am very surprised and do not understand the technical reasons for the complex hardening methods I read about in BLADE or hear about from modern U.S. makers. It appears that Japanese-style yaki-ire (heat treatment) is a relatively simple process, but it does take years of experience to get it right.

    After yaki-ire, the blade is annealed by heating it in the forge, again as described in the story (that is, yaki-modoshi). If that is not done, the blade will be very brittle and even very difficult to polish.

    I think this is a reasonable answer to Mr. Rupert: The article is a detailed description of the process exactly as used in Japanese swords. The process and the steel are both very old and traditional in Japan, and it is done exactly as described—but the yaki-ire process was developed specifically for tamahagane steel.
Anthony Dicristofano (page 12, September BLADE®) has experimented with yaki-ire (Japanese style) for both tamahagane steels and for modern knife steels and told me he can see the differences. (Anthony works with Yoshindo in our backyard forge often during Yoshindo’s visits.) I think an important point to take from this is there are many ways to obtain great results with variations in materials and techniques.

    Oh, and one more point: There is another goal in Japanese and Western hardening. The Japanese method is designed to specifically harden only the edge region. As far as I know, the Western approach usually seems designed to harden or heat treat the entire blade. If yaki-ire were used to harden the entire blade, Yoshindo says the thin Japanese blades would crack or shatter immediately in use.

    Question: How much forging is enough? Is there a point of no return, or even a negative return? I typically start with 1-inch-diameter O1 drill rod for my knives, which I first must reduce to a flat piece of steel in the basic knife shape I want. This takes three-to-four heats to accomplish, and sometimes more depending on the size of the finished knife. Once the basic shape is attained, I then start working in the bevels.

    Is the reduction from 1-inch round to a quarter-inch flat going to give me all the benefits from forging that can be gained? Is the bevel forging simply gratuitous at that point? It occurs to me there must be a point in the process when additional heating and forging causes enough carbon loss to start degrading the steel rather than improving it. (Joshua States, a letter via e-mail)

 

    Answer (graciously provided by BLADE® field editor Ed Fowler): Starting with a 1-inch round bar should get you up into the 80-point rate of reduction range, depending on the size of the blade. This rate of reduction can definitely get you into the high-endurance performance realm, providing the steel you are using is of decent quality and you do not exceed a temperature of 1,725°F while forging. Forging at low temperatures equals fine grain and no measurable loss of carbon below the surface of the blade—about .002 inch, which is scale that comes off anyway. Forge the blades a little oversized and leave the edge of the blade about the thickness of a nickel for the heat treat (hardening and tempering).

    In our work at my Willow Bow Ranch, we have forged and tested to destruction many 5160 blades from 1-inch round bars (John Deere Load Control Shafts), and can get within 10 percent of the high performance of the blades forged from larger round bars.

    The more forging heats under 1,725°F, the better the performance potential of the steel. I take my bars to only 1,625°F to provide a margin of safety to prevent grain growth. Most of the benefits of forging will come from the round bar to quarter-inch flat bar. Merely forging the bevels only adds another two or three points if you are practicing reduction by forging. You are better off leaving the blades thick to protect the best edge, which will lay under the surface of the “as-forged blade.”

    When I start grinding, I take about the thickness of a dime off the edge of the hardened and tempered blade. The edge surface goes through a lot of thermal cycles and sometimes the best edge lies under the surface.

    As far as I know there is no “point of no return,” but the potential benefits between an 80-point rate of reduction and 99-point rate of reduction are not as significant as a difference between a 10-point rate of reduction and a 30-point rate of reduction. In other words, there is a decreasing rate of benefit, but always a benefit. Picture an ant crossing a table. The first trip he goes only halfway, second trip he goes half the remaining distance and the third trip he goes only half the remaining distance. How long will it take him to get to the end of the table?

    The answer is never. He will always be half the remaining distance to travel to the end, but the length of his trips becomes less each time.

     Send your question to “Ask BLADE,” c/o BLADE, 700 E. State St., Iola, WI 54990, or e-mail [email protected]. We will not print your name if you request it. If your question concerns the value of a knife, please understand it will be almost impossible for us to determine a value from a picture or e-mail image without being able to examine the knife from all angles in person.

    For more on the latest knives, knife legislation, knifemaking instruction, knife trends, knifemakers, what knives to buy and where and much more, subscribe to BLADE Magazine, the World’s No. 1 Knife Publication. For subscription information click on http://www.shopblade.com/product/blade-magazine-one-year-subscripti…?r+ssfb041912#BL1SU.


A Dazzler For Kaz

A Father, With The Help Of His Uncle, Works To Make A One-Of-A-Kind Knife For His Son After Living The Life Of A Military Kid.

The hardest question for my son Zachary “Kaz” Kazmir to answer is “Where are you from?” His answer usually falls along the lines of, “Home is where the military takes your family.”

Zach’s answer is true for just about any token “military brat.” Military families often move every two to three years—that’s a rate of 10 times more than average civilian families. Living this kind of life for a child requires tremendous resilience, exceptional adaptability, and an uncommonly high maturity level. Zach would repeatedly get settled in a routine, a school, a friend group, and community activities, only to pick up, leave it all behind and start fresh again. 

Oh, and the trials of life do not stop there. He persevered through my frequent deployments, earthquakes, accidents, and even a direct hit by one of the strongest tornadoes ever recorded while he was living in Moore, Oklahoma. Zach’s life led him on a journey spanning two countries, four states, and five schools.

Bobby Kazmir and his son Zach.

I wanted to give the young man something special on the occasion of his 21st birthday. Even with all the places he’s lived and the experiences he’s had, Zach’s fondest memories always gravitate to his time in Okinawa, Japan. The first memories of his life were created there. Okinawa will forever hold a special place in his heart. With that, I set out to have a knife crafted in hopes of capturing and honoring these priceless memories for him.

Uncle Stanley

I could think of no better place to turn for such a task than my uncle, Stanley Buzek. Uncle Stanley is a knifemaker from Caldwell, Texas, and is most certainly the right man for the job. There’s no one I know who puts as much heart into his craft as Uncle Stanley. He guided me through the many options, and I closed in on what would become the most meaningful and elegant 4.5-inch, two-blade Texas trapper I’ve ever seen.

My uncle crafted the frame and liners from raw bars of integral 416 stainless steel. As with each of his knives, he added a personal touch to the spine. This was truly amazing to witness. I’ve seen many of his finished knives over the years, but I hadn’t realized the level of precise craftsmanship he put into the pieces that non-makers like myself often take for granted. Most of us just naturally look to the business end of a blade.

In thinking of the knife for this gift, I aimed to give Zach a glimpse into his resiliency through my eyes. He has been stretched so thin that at times his only choice to keep from breaking was to fold over in the fetal position to regain his strength. He’s been heated, hammered, pressed to the edge of his capabilities, put back in the fire, crushed, bent beyond his limits, beaten down even more, and subjected to unrelenting pressures in different directions.

Nonetheless, he emerged from the fire stronger than ever before, with a character that can only be described as beautiful—just like the banding and mottling of damascus. The beautiful steel forged by Bill Poor couldn’t be more fitting for this knife. Bill transformed raw 1084 carbon and 15N20 nickel-alloy steels into an extra-fine River of Fire pattern with elaborate feathering that perfectly captures how I view Zach’s coming-of-age: indicative of many intense moments, but not scarred. Instead, radiating with a unique, luxurious magnificence that exemplifies resilience.

Making The Knife Handle

The next essential element on my mind was the scale material. (I called it the “side of the knife” but you know how knifemakers are about educating the ignorant.) The scales had to be more than just the perfect material, they had to be uniquely sourced. I wanted my son to have a literal piece of his childhood that he could hold in his hands whenever he wanted. 

Scanning the beach for seashells while barefoot along the shoreline of Okinawa’s Devils Cove is no doubt among Zach’s favorite island memories.

I reached out to a military friend stationed in Okinawa to acquire a piece of one of the famed, colossal banyan trees from the island. With travel restrictions, import/export regulations on agricultural items, and COVID-related shipping delays, it proved much more difficult than we expected. However, my contact was able to come through! After nearly a year, a heavily worn, 5-by-10-inch piece of banyan tree finally arrived in the mail.

Uncle Stanley was reluctant to use banyan. He cautioned me not to get my hopes up because he knew how challenging it can be to properly stabilize such a soft wood. In addition, the sample was very weathered, extra-soft, and had several deep cracks inflicted in transit during shipping. In other words, there wasn’t a lot of room for error! 

Uncle Stanley sent the wood to the very capable Terry Dunn of TNT Enterprises, and I was truly blown away by what he was able to do. Dunn not only stabilized the wood, he preserved its beautifully subtle grains and the small, intricate pitch pocket. The latter is a cavity in the wood where the tree suffered some sort of damage over its life, or a small knot of sorts if you will.

Stanley assembled the sleek trapper, affixed the scales, and presented me with a truly remarkable knife. Then he took it from my hands and said, “Now it’s time to go get it ‘scratched up.’”

Engraving The Knife

A slight fear came over me. I worried that an engraver could potentially damage this work of art. However, the worry left me as quick as it came when I learned the engraver was Alice B. Carter. I’ve seen her amazing work in the past. I knew she could add another layer of beauty to the piece.

To my surprise, Alice asked so much more than, “What would you like me to engrave?” She had an authentic interest in the story of the knife and its eventual recipient. I think she asked me more about Zach than she did about art that day. I shared with her the things Zach tends to reminisce about from his time in Okinawa, and we honed in on a few specifics.

One of the first memories of his life is enjoying the annual Cherry Blossom Festival in Okinawa’s capital city of Naha. The festival draws crowds of thousands each January to see the city streets completely encased in the vibrant blooms. Zach also speaks of how massive he remembers the banyan trees being there. If you’ve never seen a 200-year-old banyan, the behemoths appear to be as old as time and so wide they seem to fill the sky with a majestic, towering presence as if from a fantasy movie. 

Alice’s smile grew wider and wider as we continued to talk through a few other details. She drew inspiration from our chat and created an absolute masterpiece. Engraving for more than 40 hours and inlaying more than six feet of 24k-gold wire, she created so much more than a scene or picture. Her art marvelously captured the emotions connected to the memories.

Reaching from corner to corner on the upper bolster of the facing side shines the island of Okinawa in pure, radiant gold. The shading effect seems to literally draw the island’s shape out from the knife. Carefully inlaid in the exact location of Kadena Air Base where Zach lived on the island, a one-millimeter copper marker memorializes his time there. 

The lower bolsters hold a personal message from father to son: Ichi-go ichi-e. Emblazoned in bold Japanese Kanji, it is an idiom roughly translating to “for this time only.” Reaching from corner to corner on one side of the upper bolster shines the island of Okinawa engraved by Alice Carter in 24k gold. The knife’s oversized shield brilliantly gleams Zach’s nickname of “KAZ” in Japanese-styled English letters. (SharpByCoop image)

On the opposite side in exquisite detail is an ancient, powerful banyan tree spanning from edge to edge. In a beautiful complement to the gold inlay, the banyan’s leaves are adorned with Alice’s self-alloyed green gold. Zach can view the upper bolsters in remembrance of the land he once knew.

As is customary in the military, a servicemember’s last name becomes his or her first name. It’s the military way. Kazmir was shortened to “Kaz” almost immediately, and that nickname stuck for the entire two decades I served. As Zach approached adulthood, he began to go by this moniker as well. The knife’s oversized shield brilliantly gleams “KAZ” in Japanese-styled English letters—an embodiment of how I’ve passed on my name to my boy.

Finally, the lower bolsters hold a personal message from father to son: Ichi-go ichi-e. Emblazoned in bold Japanese Kanji, the message is an idiom roughly translating to “for this time only.” It means that Zach’s experience in Okinawa was truly a once-in-a-lifetime episode that can never be duplicated, and he should treasure it forever.

Alice brought all the components together by incorporating gorgeous cherry blossoms engraved with intricate detail resulting in what I see as the perfect gift. Zach received it as a Christmas present and shed some heavy tears as I explained each element. He and I are both still amazed at how everyone came together to help me make this one-of-a-kind knife happen.

Uncle Stanley once told me that nearly every knifemaker is an expert at something, but no knifemaker is an expert at everything. He described knifemaking as a network of experts who bring their talents together to make the impossible possible. In the military, we have a term for this—it’s called synergy. With this beautiful piece, I’m convinced the knifemaking community is synergy at its finest.

For more information about the knife, contact Stanley Buzek, Dept. BL8, P.O. Box 621, Caldwell, TX 77836 346-412-2532 [email protected], s.buzekknives.com.

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New ABS Journeyman Smiths in San Antonio at the ABS Exposition

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 Congratulations to the new Journeyman Smiths in the American Bladesmith Society!

 The following new Journeyman Smiths had their five presentation knives judged by the Judging Panel and were awarded their new rating at the 9th ABS Exposition in San Antonio, Texas on January 27th.

Attached Image
 
Alex Daniels, Josh Fisher, Zack Jonas, Bill Kirkes, Scott MacCaughtry, Scott McGhee, Michael Tyre, and  Jonathan Wick
 
 
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The Alamo
San Antonio, Texas (The Cradle of Texas Liberty)

Congratulations to all!

Tools for Silver Wire Inlay by Joe Keeslar, Master Smith

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Master Smith Joe Keeslar describes the tools needed for Silver Wire Inlay work on knife handles and sheaths.

Micarta: A Do-Everything Handle Material

Micarta Is One Of Many Materials Used For Blade Handles. Used For More Than A Century, Micarta Continues To Be Incredibly Popular.

Micarta is not a new material, in fact, it has been used for over 100 years. Unlike naturally-occurring materials, Micarta offers properties other materials don’t. We’re going take a look at what Micarta is and what makes it probably the best material available for making knife handles today. 

What Is Micarta?

Micarta is the name of a commercially-owned product, and isn’t just a generic material. Micarta is a durable type of composite made of a base material suspended in epoxy resin. Norplex Inc. owns the trademark on the term.

The material is compressed under heat and is classified as a thermoset product. The main name associated with the invention of Micarta is George Westinghouse. During his life, Westinghouse never stopped creating new things, and the first developments of what we know now as Micarta occurred somewhere between 1900 and 1910. 

Because of the way that Micarta is made, it has extensive applications for insulation in electrical systems. It is unknown when this material became a popular knife handle option, but it is safe to say it’s never been more popular than today. Like many materials of the era, such as Bakelite and Celluloid, Micarta found its way into craft use.

How Is Micarta Made?

It’s hard to pin down Micarta. In the old days, fabric and paper were used as the base material, but today we have a wide variety of other types that exist, including carbon fiber and glass. Knife handles are actually a fairly narrow category of end-use for Micarta.

The process by which Micarta is made is relatively simple. Materials are soaked in whatever type of thermoset is going to be used, and, once impregnated by the resin, it is subjected to intense heat and pressure which causes a sheet to be formed. Decades ago, Micarta was also made in large blocks. 

These large blocks are a favorite for revolver grips and other large, three-dimensional forms. There are people that shop garage sales and estate auctions looking for fixtures or items made using these older types of Micarta. The most prized is a type of paper Micarta that is about the closest thing to elephant ivory in terms of texture and color that grip makers can get.

Who Uses Micarta?

Mini knife makers that work with the material end up ordering large quantities to their specifications. Smaller companies tend to work with what is available through existing supply chains, which is a large reason why you end up seeing very similar colors across the board. 

It is possible to get Micarta in custom colors and textures, though you may have to spend thousands to get it. If you find that you are looking to put a nice handle on a knife, it is a good idea to call around and see if any companies have scrap that they are willing to sell.

Micarta Vs. G-10

True Micarta is not the same thing as G-10 or other types of thermoset laminates. Many people tend to use the terms interchangeably, but in a strict manner of speaking, true Micarta will be made using paper, burlap, canvas, or linen set in resin. G-10 is different in that uses glass cloth, a type of material made from carbon fiber filaments. 

Micarta is usually heavier than G-10 and carbon fiber laminates, but, in terms of knife handles, the difference is negligible and is not too far apart from the weight of standard hardwoods. Bakelite, while common on a tremendous number of products and weapons, isn’t the same type of material as Micarta even though it occupied many of the same roles. 

Comparing Micarta To Other Handle Materials

As Micarta has become more popular, more companies have offered it as an option, but sometimes incorrectly. A true Micarta material is not quite as durable as G-10, but it is going to hold up better than wood or leather. G-10 is an essentially absorption-proof material. Most handle materials out there, Micarta included, will absorb a degree of water, sweat, or blood. 

Though it is unlikely to permanently stay in the material, it is recommended you keep Micarta clean. Usually, hot soap and water does the trick, and, while you can get oil on it, expect it to stain a bit. This has to do with the fact that the materials in Micarta are either paper or fabric, and many of these materials are exposed, though fully impregnated by resin.

Wood handles are subject to small problems, and if installed incorrectly, they can split or crack quite easily. Wooden handles are not especially great for heavy outdoor tasks, such as chopping or batoning. Wood also has the problem of absorbing ambient moisture. In especially humid environments, handles can swell and crack on the pins. Micarta has no grain in the way that wood does, although it is typically applied to knives along its length.

When comparing Micarta to carbon fiber it comes down to durability and weight savings. Carbon fiber is not an especially durable material, though it is very lightweight. As far as knife handles go, carbon fiber is excellent for inlays and panels, though it is not as good of a material for making full scales. When compared directly to Micarta or G-10, carbon fiber is harder to shape and is more difficult to apply a working textured finish. 

Best Knives With Micarta Handles

Linen and canvas Micarta is my hands-down favorite material for knife handles. The reason I find these types of Micarta the best is that they provide the greatest degree of function in the hardest environments. I like G-10, but I have found it too slippery across the board when covered in blood and fat out hunting and it becomes ice cold to the touch very quickly. While it is a very durable material, it feels much more like plastic than Micarta and, for lack of a better way of saying it, never develops the character like wood, leather, or Micarta. 

Linen or canvas Micarta offers the texture I want on a grip across the board, and I have put several products through an insane amount of daily use without any negative effects. Each of these knives I list here I have used for months or years, and I can strongly recommend them. 

Winkler Utility Knife

winkler utility knife

The utility knife was the first Winkler I ever owned, and it is still a constant companion. I have used this knife extensively for everything from opening paint cans and cutting heavy-duty straps to prying apart pallets and even building out countertops and interior demolition. 

I have logged hundreds of hours with this knife in hand and it has been extremely comfortable the entire time. The green Micarta handle has held up extremely well, though it now has some gouges from use. It is not on the cheap side, retailing at $450, but it has been worth every penny. 

Case/Winkler No.6

case winkler #6

A collaborative project between Case Knives and Winkler, the recurve utility No.6 is a heavy-duty knife built for some of the hardest projects. I have taken this knife with me out to the field and have also lent it out as a skinning knife for deer hunting. 

Due to its deep, recurve belly it is exceptional for chopping tasks and is just as good in the kitchen as it is blasting through small limbs. While no longer available on the Case website, my version has a tan canvas Micarta grip and it has held up exceptionally well. While it’s not contoured exactly to my hand as I have experienced with knives direct from Winkler, it feels good in its own right and will provide a lifetime of use. The MSRP is $430. 

White River Knife And Tool FC7

White River FC7

An extremely attractive, large knife, the FC7 is my go-to hunting knife for deer. While it may seem like a large knife, my experience in the field has taught me that it is probably the best big-game knife money can buy today. It is gorgeous to look at and the orange liners on the green Micarta definitely add to it. I see no reason why I will not continue to get years and years of use out of this product. The MSRP on the FC7 is $330.

White River Knife And Tool Exodus 4

White River Exodus 4

The Exodus 4 is the knife that I use in the kitchen every day for almost all tasks. It is probably the most washed knife on this list. It has been constantly exposed to soap, oil, and all other manner of kitchen materials. It makes an excellent carrot peeler using the square edge of the spine. 

My version has black Micarta panels, and they have held up extremely well to the constant washing and use. This knife and its grip have arguably been exposed to more caustic materials across-the-board than any of the other products, it was even put through the dishwasher several times by accident. The Exodus 4 is easy to hold even while in the direst of kitchen nightmares. The MSRP is $175.

ESEE Camp Lore RB3

ESEE Camp Lore RB3

The knife itself had some shortcomings. The steel is sharp but requires maintenance, and it is not very resistant to blood. My original version of this knife has been discontinued, Esee has a dimensionally identical, but cosmetically different, version for sale now. The MSRP on that knife is $190. 

I don’t remember what the Camp Lore version cost many years ago, but it has held up to my abuse. The grip panels are Micarta, and they have seen more than their fair share of punishment. The blade shape was less than ideal for working on four or five deer in a night, and I quickly learned my lesson and moved to a bigger knife. I will say that in the years that I used this knife, it was a good friend for the field, and I look forward to passing it on to my kids when they are older.

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How To Build A Tire Hammer

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A clutch player in the knifemaker’s shop, the tire hammer gives more control than other D.I.Y. power hammers.

Like a variable-speed hand drill, your backyard power hammer should be able to run slowly, at full speed or in between, depending on the task. The simplest way to guarantee it does this is to use a slipping clutch.

There are two main designs of slipping clutch. One uses a slack belt, a flywheel and pulleys. The drive pulley rotates within a slack belt. The foot pedal linkage pushes an idler wheel into the slack belt, increasing the belt tension to the point that the belt begins to turn the pulley on the flywheel.

spring-arm-to-pitman attachment
The author modified the spring-arm-to-pitman attachment to make it adjustable. Depending on which attachment point is used, the leverage of the stroke changes.

Another design uses a tire clutch, where the foot pedal linkage pushes a drive wheel into an automobile tire, with the hub of the tire serving as the flywheel. The most common “tire hammer” design uses a similar clutch but turned the other way and connected to a linkage. Your available parts will dictate your design. 

Why A Clutch

A function of the clutch is to reduce the RPM of the motor speed to get the hammer rate of beats per minute (BPM) into a safe and useful range. You want the hammer rate to generally end up between 150 and 250 BPM, though many variables change with each hammer. In general, a heavier tup (aka hammer head assembly) requires a slower BPM, whereas a lighter hammer can have a higher BPM. You do not want your hammer running faster than you can control it, nor so fast that the inherent forces tear it apart. My hammer uses a 24-inch tire and a 3-inch drive wheel for an 8:1 reduction of a 1750 RPM motor, yielding a calculated 218 BPM at full speed. Your hammer will run differently depending on your motor RPM, your drive and driven wheel diameters, and the hammer’s overall design. I rarely run my hammer full speed during general forging work, and the tire clutch gives good speed control. Full speed works acceptably well for drawing out damascus billets or breaking down large stock.

My tire clutch has an integral flywheel bolted to the hub. On the flywheel I welded several different nuts for attaching the pitman arm (for more on the pitman arm, see part three last issue). Each nut is a different distance from the center of the hub. This allows me to vary the length of the stroke, in my case between 6.5, 7 and 7.5 inches, based on where I connect the arm to the flywheel. Coupled with an adjustable-length pitman arm, this setup allows a degree of tuning to get the hammer hitting in a way that transfers the power directly to the workpiece with efficiency, yet in a way that doesn’t place undue stress on the hammer itself.

Choosing A Motor For Your Tire Hammer

As for motors, the size may vary a bit depending on the overall tup weight of your hammer. For most homebuilt hammer sizes, a 1 or 1.5 HP motor is plenty. My 40-pound hammer uses a 1.5 HP motor running on 110v and does not trip a standard 15-amp breaker, suggesting that 1.5 HP is more than plenty for a 40-pound head. Whether the motor runs on 110v or 220v will depend on your shop setup and what you have available, but you’d be best served either way with a motor that runs in the 1700 RPM range, not one that runs in the 3400 RPM range. There’s no need to go three phase or variable speed unless you’re already set up for either.

Doug Davis’ homemade hammer
Doug Davis’ homemade hammer uses a series of pulleys and an idler. When you step on the treadle, the idler tightens the belt and engages the hammer.

You will need an on/off switch for your motor. To run the hammer, turn the motor on, then use the foot pedal linkage to engage the clutch.

Sourcing Dies

Most power hammers have a set of dies in between the anvil and the hammer shaft. Dies may be built in a variety of shapes and sizes, depending on how you want your hammer to move the metal. Two basic die designs are flat and crowned. Flat dies move the metal somewhat equally in all four directions, while crowned dies will draw out the length of your workpiece perpendicular to the crown on the dies. Some smiths design their hammers to accommodate various top or bottom tools, or spring swages as well.

Tire Hammer Die Attachment
The die attachment on Doug Davis’ power hammer is more robust on the ram-to-die connection, but time will tell how the bottom-die direct-weld works out. (Erik Greiner image)

On my personal hammer, the dies are built out of 1.5-inch square 4140 steel bar stock, heat treated and ground essentially flat, with slightly radiused corners. Some hammers are set up with dies that are interchangeable but mine is not. Full disclosure: My die attachment is one point of weakness in my design. I ultimately welded my bottom die plate straight to the anvil, and I’ve had to reinforce the top die connection and re-weld it several times. Perhaps a more skilled welder could have done better!

Creative Necessity

I can’t emphasize enough the creativity necessary to build a functioning power hammer from scrap. It’s one thing to watch a YouTube video and think, “It must be nice to have a power hammer.” It’s another thing entirely to watch the same video and try to discern how the rocker arm connects to the center post, or how the tire clutch axle is set up.

At the time of my hammer build, there was an online gallery hosted in Czechoslovakia that had hundreds of pictures of various homebuilt and factory built hammers. I couldn’t have built mine without those examples. I don’t speak Czech but the pictures tell the story well.

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