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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Why The X-Rhea Knife?

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The X-Rhea Is The Result Of Having A Curious Mind And The Ability To Explore Possibilities.

Why did I come up with the X-Rhea knife design? I’ve asked myself this several times and only recently have I been able to supply a reasonable answer. Th e X-Rhea started as a personal challenge. I wanted to make a knife, handle and all, from one piece of steel. Th at’s it: no scales, no added glues, pins, extra space fillers, inlays—nothing. Moreover, I wanted it to look good and be comfortable and as structurally sound as any good knife should be, without being overly heavy.

This challenge nagged at me. If I limited myself to steel and fire as my basic resources, could I forge a knife from one piece of steel, a knife that left no doubt about its viability? Could it look good, feel good and perform well? I also wanted a handle design versatile enough to fit different sizes and types of knives.

“A full tang knife is stronger than a hidden tang knife” is something I’ve heard many times. That statement oversimplifies the matter; which is better? I’ve heard some say, “At least with a full tang, if the scales fall off you still have a knife.” While I don’t agree with either statement, it indicates in some people’s minds a full tang blade alone qualifies as “a knife,” even without scales. And what qualifies as a knife, as well as what part strength plays, might differ from person to person.

In my visits with renowned historic blacksmith Peter Ross, my eyes were opened to the multi-dimensional vision the historic blacksmith needed in order to execute the complex forgings of everyday objects of the colonial era. The ability to understand how something is shaped, combined with the hand skills to actually shape it, are two separate things. The combination of those two qualities in one individual is rare. Peter showed me how to change the way I think about shaping steel. My mind raced with possibilities every time I worked with him. He taught me how to take a project from concept to reality.

Just as steel is shaped by the blows of a hammer, my thoughts were shaped to the challenge at hand. I felt I was in a unique set of circumstances that directed me to mix my forging with the mostly forgot ten techniques of historic blacksmithing. My years of training helped provide some ability to execute my ideas and theories. Theories? OK, it’s my “theory” that about 90 percent of tactile, meaningful contact between the hand and a knife handle is concentrated on the top and the bottom. Think pliers, wrenches, etc. The mind seems to understand the vacancy of the remaining areas between the top and bottom. Also, the hand “soaks up” and “fills in” to meet these vacancies to a degree. If I could add contouring and sculpting to the essential top and bottom, could the hand and mind fill in the rest? Can a knife with no scales be an option?

The Answer To X-Rhea

Finding the answer took significant effort and a lot of time. I worked out a forging sequence for my X-Rhea hunting knives that satisfied me, but I kept thinking it would be great to forge a bowie with top and bottom lugs. It took years to work out the stages of the process. While the accompanying photographs attest to my relative success, it leaves a lot unsaid about the adjustments I had to make in my thinking. I used the blacksmithing principle of eliminating things that hinder the process, and re-emphasizing and adjusting things that assist it. I also considered efficiency in timing, appropriate temperature, or other techniques** that are most practical.

The author up close and personal with an X-Rhea Knife forged red hot.
The author up close and personal with an X-Rhea Knife forged red hot.

While modern tooling could speed up some of the steps in my process, modern thinking and modern expectations would not. Aft er all, this process was being developed around the early 19th-century blacksmith tools: a coal forge, blacksmith leg vise, and the use of handheld hammers. This uncluttered my thinking and required me to face the same challenges as the early blacksmith. Elevating one’s skills with basic tools, improving understanding of the materials, and bearing full responsibility for the outcome was my expectation. While this might seem restrictive and limiting, the improved skill level and the readjusting of my views had a freeing effect. I am not as dependent on modern tools, which enables me to be more creative. The willingness to adjust one’s thinking was, and remains, an invaluable aid to the blacksmith.

Material Limits

When forging a complex shape, a smith must consider the limitations of the material, sometimes working near its limits but never exceeding them. Wisdom calls for choosing material suited for the extreme changes of geometry in the knife. Steels that are prone to air hardening must have special consideration or be avoided. Like some historic objects, the X-Rhea Knife is forged from one piece of steel, in this case, entirely high carbon steel. Those qualities and characteristics must be allowed for and considered.

Making an X-Rhea is a multi-step process. It must be pre-formed, with all needed parts and adjustments made before final shaping and peening the handle. Recognizing and maintaining a high standard of precision in the pre-form details is absolutely necessary to a satisfactory final result.

Even after I successfully made one of these knives, I found that part of the challenge was yet to come—acceptance. I showed up at a cutting competition with one of my X-Rhea bowies and sure got some stares. The safety judges looked it over as if it were a new species of animal. “Is it strong? Will it hurt your hand?” they asked. As I recall I placed well in the competition using it, but the initial reaction was still mixed.

Will it hurt your hand? I previously mentioned the handle contouring and sculpting. This is a standard part of the forging and filing process, as it is with any knife handle. Depending on the maker’s forging skill, it may require some filing in-between forging steps. Each step has some amount of adjustability to allow for correction, while leading to a beautiful profile and comfortable grip. It can be surprising to those who handle the knife just how good it feels, considering the remarkable difference in construction and the “open” appearance.

X-Rhea Strength

Is it strong? This is where the application of common blacksmith tool-making skills and logic are applied. Sufficiency was the guide for an early blacksmith. Making a piece overly strong for its intended use might sound impressive, but in use it becomes clear that this strength adds unneeded and undesirable weight for the intended use, and does not account for other desirable characteristics such as flex and toughness. I view heavy,
unwieldy blades generally as a mark of a novice. Unless the intended purpose calls for excessive strength, sufficiency should also, be the guide not only for blades but for knives overall.

For those inclined to overthink a matter, look at the “T” cross section of the blade-to-handle transition. It eff ectively converts the stress loads in the needed directions.
For those inclined to overthink a matter, look at the “T” cross section of the blade-to-handle transition. It eff ectively converts the stress loads in the needed directions.

Today when I see a thickly built knife, instead of looking at it and saying to myself “This thing sure is strong!” I ask, “Why does it need to be so heavy?” For the X-Rhea handle, I try to use sufficiency as my guide. Where it can structurally be lightened, I do that by forging and filing, leaving it sufficiently strong but not overly heavy. This distribution of strength serves to provide literal balance to the knife exactly as any conventional knife, regardless of construction. Either should have balance when properly built to a purpose and have sufficient strength to perform its purpose. That fact, while amazing to me at first, is testimony to the principle of sufficiency. In other words, the X-Rhea should compare well in balance and weight as well as function to any well-made conventional knife for the same application.

For those inclined to overthink a matter, look at the “T” cross-section of the blade-to-handle transition. It effectively converts the stress loads in the needed directions. Viewed from the profile, the slight rotation of the ricasso as an “X” instead of a vertical “cross” assists in adding strength with less material (weight) to the connection. The upper leg of the ricasso’s “X” tapers back to brace the upper part of the handle, which bears the majority of the workload. The handle then tapers in thickness slightly as it goes back to the forged integral pommel and proceeds to the handle tenon where it is peened. To further lighten the knife, the handle band is sculpted gently to taste. Taste? I try not to get so engrossed in the math and mechanics that I lose the necessity of making the knife look good. Like a scroll forged by a blacksmith, the application of math and mechanics are the basis for all aspects of proportion and form. To keep it simple, I want to make it graceful, not blocky, getting the absolute most out of a minimum of material volume.

The X-Rhea Process

In my situation, I set a challenge for myself and it led to the X-Rhea. For me, the process is as important as the knife itself. I made a lot of individual knives, some better than others, but what I was actually concentrating on was developing a forging process, so the one-piece forged knives could be repeated via a repeatable process with predetermined features, checkpoints and adjustability built-in along the way. To emphasize adjustability, whether by forging, grinding or filing, is key. It enables the smith to reach predetermined checkpoints before proceeding with the rest of the process. When following a well-designed process, the outcome will be consistent and meet a standard as would the product of a well-designed and adjusted machine.

While we are far from machines that guarantee specific outcomes, diligent attention to the execution of each heated and hammered step and making needed adjustments, when appropriate, will carry the project along. As aptly pointed out in David Pye’s book, The Nature and Art of Workmanship, “The quality of the result is continually at risk during the process.” Overcoming the risk by careful determination, as well as time spent in practice, is its own challenge and entirely rests upon the craftsperson.

Like some historic objects, the X-Rhea Knife is forged from one piece of steel, in this case, entirely high carbon steel.
Like some historic objects, the X-Rhea Knife is forged from one piece of steel, in this case, entirely high carbon steel.

I believe it is noble to preserve cultural objects, and it’s also my belief that preserving the processes used to make those objects is equally important. The hand of the individual craftspeople, following already established processes, can be seen in the objects of the past. A society or culture can lose appreciation for the craftsman’s touch. Pye stated, “The danger is not that the workmanship of risk will die out altogether but rather that, from want of theory, and thence lack of standards, its possibilities will be neglected and inferior forms of it will be taken for granted and accepted.” It would be a shame to neglect the possibilities or take for granted why we craft things the way we do.

I also believe there is room remaining to explore new designs and theories in today’s knifemaking. We can find new ideas and inspiration from places we don’t expect. With the ever-changing laws and shortages of materials such as stag and ivory, we may be wise to consider creating a market based on a process we develop using otherwise unexpected, but available, materials and techniques. This requires time and risk. Are we willing to apply time and effort to follow through with a concept without certainty that there will be a payoff? Is the payoff worth it in monetary or cultural dividends? One can really never know the answers to such questions, and those possibilities were not a serious factor in my efforts.

The X-Rhea is the result of having a curious mind and the ability to explore possibilities. It was an idea, turned into a challenge, turned into reality. The simple sequence is available to everyone. Its cultural value is a matter of opinion, but the process of the X-Rhea Knife shows that new and interesting ideas can be pursued in knifemaking.

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Custom-Made Chef Knife: The Kitchen Integral

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One-piece custom-made chef’s knives embody strength, balance, line and flow and more

By Mike Haskew

As it does in other aspects of custom knives, integral construction, with blade bolster, tang and pommel forged from a single piece of steel, has its application in the kitchen. ­The high-performance chef ’s knives that result from such a construction provide an excellent opportunity for skilled knifemakers to showcase their abilities. Function is always at the forefront. After all, First and foremost, all knives must cut. So, chopping, slicing and dicing ability, comfort in the user’s hand, edge-holding properties, and easy maintenance and upkeep are prerequisites. To step it up, consider chef ’s knives that blend the basics in their efforts to raise the game. Good looks are indeed a bonus, and the featured models deliver with delicious damascus, tantalizing handles and overall presentation that will keep you in the kitchen just for the sheer pleasure of manipulating them.

FORM & FUNCTION TO CONSIDER FOR CUSTOM CHEF KNIVES

When Gabe Mabry of Norwood, North Carolina, cooked up a kitchen stunner with a 300-layer ladder-pattern damascus blade forged in partnership with Steve Grosvenor, he took the principles of form and function to heart.

“­There’s something about an integral chef ’s knife,” he said. “Forging it connects bladesmiths to their forebears. With all the modern technology, there’s only one way I can think of to manufacture an integral chef ’s knife—and that’s to forge it to shape. A well-executed integral will have impeccable balance and design flow that seems intuitive. Conversely, much toil went into the shape.”

 Mabry’s piece was constructed for a specific client order. ­ The damascus is forged from a combination of 80CrV2, 52100 and CruForge V carbon and 15N20 nickel-alloy steels. ­ e handle of ancient walrus ivory is tapered with a slight curve and accented with the owner’s initial in the butt.

“­The construction of an integral is a labor of love,” Gabe commented. “However, all the work and care of setting up the bolster makes the handle assembly simpler to a degree, with the inclusion of up to an inch of metal in the bolster. ­ is inch of material can be subtracted from the handle material, increasing the options in handle materials. Integral knife construction adds multiple steps and a degree of difficulty as well.”

While the fundamentals of any good working knife must be incorporated into the integral, the construction itself doesn’t apparently add or detract from the user’s experience. Balance, edge, comfort and dexterity, durability and cleanup still matter. And the last attribute is perhaps one where an integral has an advantage.

Above: A stacked billet is ready for more forging in Gabe Mabry’s shop. (Gabe Mabry image)

“An integral knife has its benefits,” offered Charlie Ellis of Eagle Crest Forge in Asheville, North Carolina. “And when done well it is very strong, with a minimal number of joints to become problems with material movement or becoming a possible breeding ground for bacteria. Also, it minimizes potential issues with wood movement. Having the joint positioned where there is the least chance of movement and using stable material is a wise choice.”

The HEXAGRAL CUSTOM MADE CHEF KNIFE

Ellis created a beautiful integral chef’s knife with a 10-inch damascus blade of 1095 spring and 15N20 nickel-alloy steels in a radial laddered W’s pattern, and an “S” grind for less resistance in the cut and better food release. The handle is African blackwood with silicon bronze and G-10 fittings. “It’s big but light for its size and balanced perfectly for a pinch grip,” Ellis explained.

The knife is fashioned in a distinctive style Charlie calls the hexagral. “I call this design the hexagral as a nod to my friend [and ABS master smith] Haley DesRosiers, who makes octagonal-shaped integrals she calls octagrals. With the hexagral, the integral bolster is shaped in a hexagon, both in cross-section and, quite challengingly so, on the faces.

“Compared to typical hidden-tang construction that is limited by the spine thickness, an integral can have a truly robust tang. Also, with this knife, the tang runs through to be bolted and capped on the end so that if for some reason the ep- oxy failed, there is a mechanical connection keeping it tight.

“So,” he continued, “while there are some practical bonuses to an integral, I would have to say that what draws me to them, and why I choose to make them the most, is their artistic potential. Seeing the pattern condensed in the bolster and then flowing out into the blade is always one of my favorite parts. Between that and the sculptural aspect of the transition between the blade and handle, there are so many interesting possibilities. I al- ways get excited with each new integral I create.”

Brent Stubblefield of Join or Die Knives in Richmond, Virginia, finds the challenge of integral construction one of the most appealing aspects of the undertaking. “Integral-construction chef’s knives are special because the production meth- od cannot be counterfeited,” he reasoned. “Standard stock removal processes can- not be used to make them, and machining processes, while an art unto themselves, cannot produce the flowing patterns that a forged damascus blade can.”

Brent Stubblefield’s chef’s knife features an “S” grind with hollow ground “cheeks,” while the cutting edge is flat ground up to about one-half inch above the edge to assist in food release. Depending on the pattern, Brent’s price for a similar knife ranges from $850 to $1,500. (Caleb Royer image)

For Stubblefield, the integral’s functional advantage lies in the flow of the handle, its uniqueness and strength rather than any perceived upgrade in edge performance. Integral construction, he says, should provide a blank canvas for the maker to use any shape or geometry desired. In this case, the style does not inherently improve edge geometry but al- lows for infinite possibilities.

“Larger stock must be used for integral construction,” he explained. “I usually use at least 1-inch round stock and, when making damascus, I leave the stock at 1 inch by 2 inches, plus the desired length. There must be enough thickness to leave material for the bolster and tang as well as drawing them out, and there must be enough blade material to draw the heel back toward the handle. In considering integral. hidden-tang-with-guard and full-tang knives, each has its pros and cons Quality material plus excellent fit and finish bring those differences down to the level of nuance. The standout advantage of the integral is the strength of the seamless connection of blade and bolster.”  

“A WELL-EXECUTED INTEGRAL WILL HAVE IMPECCABLE BALANCE AND DESIGN FLOW THAT SEEMS INTUITIVE.” -GABE MABRY

Brent’s chef’s knife has an 80-layer ladder pattern damascus blade forged from 1084 carbon and 15N20 nickel-alloy steels. The blade features an “S grind with hollow ground cheeks while the cutting edge is flat ground up to about one-half inch above the edge to assist in food release. The Virginia maple burl handle is fashioned in the style of French Sabatier chef’s knives with extra wood at the end to help balance the longer blade. A G-l10 spacer provides a subtle accent.

“Integral knives have fewer seams when built in a hidden- tang fashion, he added. “There are no inside corners where handle or bolster material terminates. So, the integral may be easier to keep clean and free of food particles. Although we do our best to seal our handle material to the tang with epoxy, there is always a possibility of liquid intrusion, So, the more seams around the tang, the more chances of infiltration. I’m building knives with the intention for multiple lifetimes of use, so I prefer any advantage for longevity.”

ADDED STEEL MASS

Jason Ellard of Coningham, Tasmania Australia, built a mosaic integral chef’s knife with an 8.86-inch blade of feathered damascus in 1084 and 1SN20 steels, spalted sassafras burl handle with a domed pin and twist damascus inlay, and an accompanying sheath in frame construction and nickel-silver and twist damascus to match the spacer. Overall length: 14.76 inches.

Jason Ellard’s mosaic integral chef’s knife boasts an 8.86-inch blade of feathered damascus in 1084 and 15N20 steels. Overall length: 14.76 inches. Jason’s price for a similar custom made chef knife: $7,000. (SharpByCoop image)

“The forward angle of the bolster- blade transition allows for easier stone sharpening,” remarked Jason. “Handle spacers are made from nickel-silver and twist damascus with broken edges for a nice feel. The handle also has proven edges, which help with stopping a hard ridge at the transition if the wood ever swells or shrinks. I carved out a recess to allow the bolster to fit inside the sheath, and the stand is ringed gidgee with damascus pegs raising the back portion and a nickel-silver plate under the front section. The sheath pin has a twist damascus inlay and its own designated holder on the stand. Lastly, I created a mosaic damascus logo plate pinned onto the base of the stand.”

Ellard approaches integral construction with a full understanding of its difficulty. “It takes a lot of skill in every aspect of creating it,” he observed, “and even more so to do it well. The forging, grinding, symmetry, handle fitting, and hand finishing are all a lot more difficult to do than other constructions, and it’s a major staple of a skilled maker to do this with a high level of quality. I person- ally just enjoy making integral knives a lot more. I find it more pleasing to the eye, and I enjoy the added challenges in creating them, allowing me to show what my skills are capable of.”

The stand for Jason El- lard’s chef’s knife is ringed gidgee with damascus pegs raising the back portion and a nickel-silver plate under the front section. The sheath pin has a twist damascus inlay and its own designated holder on the stand. Jason created a mosaic damascus logo plate pinned onto the base of the stand. (SharpbyCoop Image)

According to Jason, the added steel mass of the integral will always make the knife more solid and heavier than other types. Performance is a key attribute, though other kitchen knives are comparable in many ways. “The performance shouldn’t be affected negatively or positively as long as the knife is made correctly,” he noted. “The lack of a hard 90-degree at the ricasso in a hidden-tang knife can make cleaning a lot more difficult. It also makes it easier for debris or moisture to get into the handle. With the integral construction moving the seam further back, it takes these issues away very well. I’ve also found it easier to get a tight fit against an integral bolster than a hidden- tang ricasso.”

Integral construction in a chef’s knife adds another dimension to the artistry that is custom knifemaking. In fact, an appreciation of the skill and execution of the integral may actually push the chef to new heights of culinary creation.

 

 

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