Manufacturing And Materials Codexery

Machining

A subtractive manufacturing process using controlled material removal by cutting.

Machining

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Machining is a manufacturing process that creates a desired shape or part by cutting away material, usually metal, from a larger piece of raw stock. Because it removes material, it is a type of subtractive manufacturing, which is the opposite of additive manufacturing (like 3D printing) that builds up material. While most commonly used for metal products, machining can also work on wood, plastic, ceramic, and composites. The specialist who performs this work is a machinist, and commercial machining typically takes place in a machine shop. A machine shop may be a standalone business or an internal department within a larger company, often called a tool room, that supports specific needs. Today, much machining relies on computer numerical control (CNC), where computers direct the movement and operation of cutting machines like mills and lathes.

The meaning of the term "machining" has shifted over the last 150 years as technology progressed. In the 1700s, a machinist was someone who built or repaired machines, largely by hand through wood carving, forging, and filing metal. Figures like James Watt or John Wilkinson fit that description. The terms "machine tool" and "to machine" did not yet exist. By the mid-1900s, these words had been coined as the concepts became widespread. During the Machine Age, "machining" referred to what are now called traditional processes, such as turning, boring, drilling, milling, broaching, sawing, shaping, planing, abrasive cutting, reaming, and tapping. These conventional methods use sharp cutting tools on machine tools like lathes or drill presses to remove material and achieve a desired geometry. After World War II, newer technologies emerged—such as electrical discharge machining, electrochemical machining, electron beam machining, photochemical machining, and ultrasonic machining—leading to the retronym "conventional machining" to distinguish the older methods. Currently, "machining" without qualification usually means these traditional processes. In the 2000s and 2010s, as additive manufacturing became standard across production, the term "subtractive manufacturing" arose as a logical contrast, covering the same removal processes as machining. The two terms are effectively synonymous, though "machining" remains in long-established use.

Machining involves a cutting tool removing material from the workpiece, often called the "work." Traditional machining requires relative motion between the tool and the work to cut; non-traditional methods, like electrical discharge machining, use other means such as electric current. This relative motion is achieved by moving either the tool or the workpiece laterally or rotationally. The tool’s shape, its motion, and how deeply it penetrates the work produce the final surface shape. Machining operations split into traditional and non-traditional categories. Traditional operations further divide by shape: circular shapes (turning, boring, drilling, reaming, threading, and more) and straight or varied shapes (milling, broaching, sawing, grinding, and shaping).

A cutting tool has one or more sharp edges and is made of a material harder than the workpiece. The cutting edge separates the chip from the parent material. Connected to this edge are two surfaces: the rake face and the flank. The rake face directs the chip flow and is set at an angle called the rake angle, measured from the plane perpendicular to the work surface. This angle can be positive or negative. The flank provides clearance between the tool and the newly cut surface, protecting it from abrasion and preserving the finish. The angle between the work surface and the flank is the relief angle. There are two basic types of cutting tools: single-point tools and multiple-cutting-edge tools. A single-point tool has one cutting edge for turning, boring, and planing; its point penetrates below the original work surface and is often rounded to a certain radius called the nose radius. Multiple-cutting-edge tools have more than one cutting edge and usually rotate relative to the work. Drilling and milling use such rotating tools. Although their shapes differ from single-point tools, many elements of tool geometry are similar.

field
Manufacturing process
known_for
Subtractive manufacturing using machine tools to remove material
related_terms
Conventional machining, subtractive manufacturing, CNC machining
primary_materials
Metal, wood, plastic, ceramic, composites
key_tools
Lathes, milling machines, drill presses, cutting tools

Lore & Background

Since the post–World War II era, new technologies such as electrical discharge machining, electrochemical machining, electron beam machining, photochemical machining, and ultrasonic machining emerged, leading to the retronym 'conventional machining' to differentiate classic technologies from newer ones. In the 2000s and 2010s, as additive manufacturing became standard, the term 'subtractive manufacturing' became common in logical contrast, covering a broader range of material removal processes than those traditionally classified as machining. While machining is a subset of subtractive manufacturing, the two terms are not synonymous, and the long-established usage of 'machining' continues.

Reader's Guide

Machining is fundamental to modern manufacturing, enabling the precise shaping of metal and other materials into components for countless industries. Its significance lies in its ability to produce parts with tight tolerances and specific geometries through controlled material removal. The evolution from manual machining to computer numerical control (CNC) has dramatically increased precision, repeatability, and automation, allowing complex operations like combined lathe and milling on advanced CNC machines. Machining operations are categorized into traditional (circular and various shape) and non-traditional processes, each using different methods of material removal. The cutting tool, with its rake face and flank, is critical for chip formation and surface finish. Understanding chip morphology—continuous, segmented, or discontinuous—helps optimize cutting parameters and tool geometry. Machining remains a cornerstone of production, from simple drilling to intricate broaching, and its legacy continues as subtractive manufacturing coexists with additive methods.

Did You Know?

The Essence of Subtractive Craft

Machining stands as a foundational pillar of manufacturing, defined by the deliberate and controlled removal of material—most commonly metal—from a larger raw stock to produce a part of desired geometry. It belongs to the family of subtractive manufacturing, a category that contrasts sharply with additive approaches like 3D printing, where material is built up layer by layer rather than carved away. While metal dominates the field, machinists also work with wood, plastic, ceramic, and composite materials. The practitioner is known as a machinist, and the commercial home of this work is the machine shop: one or more workrooms housing primary machine tools. These shops may operate as standalone businesses or exist as internal tool rooms embedded within larger companies to serve their specialized production needs. At its heart, machining is the art and science of making something precise by taking away what is not needed.

A Term That Grew With the Machines

The word "machining" did not always carry its modern meaning. In the eighteenth century, a machinist was simply a person who built or repaired machines, working primarily by hand—carving wood, forging and filing metal with hand tools. Figures like James Watt and John Wilkinson, who designed new kinds of engines, would have fit that broad definition. The specific nouns "machine tool" and the verb "to machine" did not yet exist in the language. It was not until around the middle of the twentieth century that these terms were coined, reflecting processes that had become widespread: turning, boring, drilling, milling, broaching, sawing, shaping, planing, abrasive cutting, reaming, and tapping. After World War II, the arrival of electrical discharge machining, electrochemical machining, electron beam machining, photochemical machining, and ultrasonic machining introduced a new generation of techniques, prompting the use of the retronym "conventional machining" to distinguish the classic methods from their newer counterparts.

The Geometry of the Cut

Every machining operation hinges on the interaction between a cutting tool and the workpiece, often called simply "the work." The tool must be made of a harder material than the work and carries one or more sharp cutting edges designed to separate a chip from the parent material. Two critical surfaces define the tool's geometry: the rake face, which channels the newly formed chip away at an angle called the rake angle, and the flank, which provides clearance between the tool and the freshly machined surface to prevent abrasive damage. The angle between the work and the flank is known as the relief angle. Tools fall into two broad families. Single-point tools, used for turning, boring, and planing, carry one cutting edge and penetrate below the original work surface, often with a small rounded nose radius. Multiple-cutting-edge tools, employed in drilling and milling, typically rotate relative to the workpiece. Despite their different shapes, both families share many geometric principles.

From Hand Files to Computer-Controlled Mills

The landscape of machining has shifted dramatically from hand-driven processes to computer-guided precision. In traditional operations, relative motion between tool and workpiece—achieved through lateral rotary or lateral movement of either the tool or the work—produces the desired surface shape. These operations split into two shape-based categories: circular processes such as turning, boring, drilling, reaming, and threading, and straight or varied-shape processes including milling, broaching, sawing, grinding, and shaping. Non-traditional methods, like electrical discharge machining, bypass mechanical cutting entirely, using electric current to remove material. In the decades of the 2000s and 2010s, additive manufacturing moved beyond laboratory prototyping into standard production, and the term "subtractive manufacturing" emerged as a logical counterpart, essentially encompassing all the removal processes previously grouped under "machining." Today, much of modern machining is governed by computer numerical control, where computers direct the movement and operation of mills, lathes, and other cutting machines with extraordinary precision.

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