Monday, August 12, 2019

Cold Working - Introduction


INTRODUCTION

Cold working of a metal is carried out below its recrystallisation temperature. Normal room temperatures are ordinarily used for cold working of various types of steel. But temperatures up to the recrystallisation range are sometimes used in certain applications.

COLD WORKING PROCESSES


1. Rolling

2. Extrusion

3. Wire drawing

4. Forging

5. Cold spinning

6. Shot peening





Cold working processes are also similar to hot working processes except for the temperature at which work is done.


COLD-ROLLING


Cold rolling process setup is similar to hot rolling. Bars of all shapes such as rods, sheets and strips are commonly finished by rolling. Foil is made of the softer metals in this way. Cold-rolling metals impart smooth bright surface finish and in good physical and mechanical properties to cold rolled parts.. Cold rolling also improves machinability in the cold rolled part by conferring the property of brittleness, a condition, which is conducive to smooth tool, finishes with broken chips.

The preliminary step to the cold-rolling operation, the sheets of pre hot-rolled steel are immersed in an acid solution to remove the washed in water and then dried. The cleaned steel is passed through set of rolls of cold rolling process thereby producing a slight reduction in each the required thickness is obtained.

The arrangement of rolls in a rolling mill, also called rolling stand, varies depending on the application. The various possible configurations of rolls are similar to hot rolling.  Internal stresses are set up in cold rolled parts which remain in the metal unless they are removed by proper heat-treatment. This process needs more power for accomplishing the operation in comparison to hot rolling.

COLD EXTRUSION


Principle of cold extrusion is similar to that of hot extrusion.   Impact extrusion is also a cold extrusion process. It is used for making small components from ductile materials.  Impact extrusion of material is accomplished where the work blank is placed in position over the die opening the punch forces the blank through the die opening causing material to flow plastically around the punch. The outside diameter of the tube is same as diameter of the die, and the thickness is controlled by the clearance between punch and die. Collapsible medicare tubes and toothpastes etc. are produced using this impact extrusion.

WIRE DRAWING


The process of producing the wires of different diameters is accomplished by pulling a wire through a hardened die usually made up carbide. However a smaller diameter wires are drawn through a die made of diamond. The larger diameter oriented wire is first cleaned, pickled, washed and then lubricated.  It is normally done by acid pickling. After picklng, it is washed in water and coated with lime and other lubricants. To make for an easier entrance of wire into the die, the end of the stock is made pointed to facilitate the entry. A pointed or reduced diameter at the end of wire duly lubricated is pushed or introduced through the die which is water cooled also. This pointing is done by means of rotary swaging or by simple hammering. It is then gripped and pulled for attaching it to a power driven reel. The wire diameter is reduced in die because of the ductility property of the material to the smaller diameter through one set of die. For more reduction in diameter of the wire, various sets of dies can be used in line for subsequent reduction in diameter at each stage.  The reduction in each pass through the die range about 10% for steel and 40% for ductile materials such as copper.

The drawing of the wire starts with a rod or coil of hot rolled steel, which is 0.8 to 1.6 mm larger than the final size required.  The material should be sufficiently ductile since it is pulled by the tensile forces. Hence, the wire may have to be annealed properly to provide the necessary ductility. Further, the wire is to go through the conical portion and then pulled out through the exit by the gripper. To carry the lubricant input through the die, special methods such as gulling, coppering, phosphating and liming are used.  

For very thin wires, electrolytic coating of copper is used to reduce friction. The dies used for wire drawing are severely affected because of high stresses and abrasion.

The various die materials that are used are chilled cast iron, tool steels, tungsten carbide and diamond. The cast iron dies are used for small runs. For very large sizes, alloy steels are used in making the dies. The tungsten carbide dies are used most commonly for medium size wires and large productions. The tungsten carbide dies arep referred because of their long life that is 2 to 3 times that of alloy steel dies. For very fine wires, diamond dies are used. Wire drawing improves the mechanical properties because of the cold working. The material loses its ductility during the wire drawing process and when it is to be repeatedly drawn to bring it to the final size, intermediate annealing is required to restore the ductility.




Cold Drawing


Like hot drawing, it also involves the forcing of a metal through by means of a tensile force applied to the exit side of the drawing die. Most of the plastic flow is accomplished by the compressive force which arises from the reaction of metal with die. It is the operation in which the metal is made to flow plastically by applying tensile stresses to the metal. The blank of calculated diameter is placed on a die and held of it by a blank holder and bottom is pressed into the die by a punch and the walls are pulled.  

This process is generally used for making cup shaped parts from the sheet blanks, without excessive wrinkling, thinning and fracturing. It can undertake jobs of nearly any size. It is a process of managing a flat precut metal blank into a hollow vessel. Utensils of stainless steel are generally made by this process.

Efficiency of operation


The efficiency of operation depends upon blank size, reduction factor, drawing pressure, blank holding pressure, punch and die diameters, type of lubricant, die material etc.








SHOT PEENING

It is a process of increasing the hardness and fatigue strength on parts surfaces. The process comprises of throwing a blast of metal shot on to the surface of a component requiring shot peening. It is used to set up a superficial state of surface compression stress, causing the interior of the member to assume an opposite tensile stress. Blast may be thrown either by air pressure or with help of a wheel revolving at high speed. This high velocity blast of metal shot provides a sort of compression over the components surface and increases hardness and strength of the surface and also its fatigue resistance.

Manufacturing Processes - Revision Notes




Ferrous Materials
Steels
https://nraoetkc.blogspot.com/2019/07/steels.html

Non-Ferrous Materials

Magnesium and Its Alloys - Increasing Use in Products
https://nraoetkc.blogspot.com/2015/01/magnesium-and-its-alloys-increasing-use.html

Properties and Testing of Metals

Machine Element Materials - Fabrication Characteristics - Design for Manufacturability
https://nraoetkc.blogspot.com/2019/07/machine-element-materials-fabrication.html

Machinability - AISI Rating
https://manufacturing-videos.blogspot.com/2013/04/machinability-aisi-rating.html

Mechanical Properties of Materials Used in Machine Elements
https://nraoetkc.blogspot.com/2019/07/mechanical-properties-of-materials-used.html

Melting Furnaces
Heat Treatment

Carpentry
Pattern and Core Making

Foundry Tools and Equipment
Mold and Core Making

Shell Moulding Process
https://nraoetkc.blogspot.com/2013/09/shell-moulding-process.html

Casting

Squeeze Casting Process
https://manufacturing-videos.blogspot.com/2014/03/squeeze-casting-process.html


Forging

Forging - Introduction
https://manufacturing-videos.blogspot.com/2019/08/forging-introduction.html

Metal Forming - Forging Types and Operations
https://gate-mech-engg.blogspot.com/2019/04/metal-forming-forging.html

Hot Working of Metals

Hot Working - Introduction
https://manufacturing-videos.blogspot.com/2019/08/hot-working-introduction.html

Drawing Types
https://gate-mech-engg.blogspot.com/2019/04/drawing-metal-forming.html

The Theory of Rolling - Metal Forming Process
https://manufacturing-videos.blogspot.com/2014/05/the-theory-of-rolling-metal-forming.html

Cold Working

Cold Working - Introduction
https://manufacturing-videos.blogspot.com/2019/08/cold-working-introduction.html

Welding

Welding - Introduction
https://manufacturing-videos.blogspot.com/2019/08/welding-introduction.html

Brazing
https://gate-mech-engg.blogspot.com/2019/04/brazing.html

Soldering Process
https://gate-mech-engg.blogspot.com/2019/04/soldering-process.html

Sheet Metal Work

Sheet Metal Components Production
https://manufacturing-videos.blogspot.com/2019/08/sheet-metal-components-production.html

Heavy Duty Presses
https://nraoetkc.blogspot.com/2013/12/heavy-duty-presses.html

Fitting

Fitting - Operations
https://manufacturing-videos.blogspot.com/2019/08/fitting-operations.html

Metal Cutting

Lathe Machine

Operations on Lathe - Basic and Advanced
Sections in Book (by Rajendra Singh, 2006)
https://nraoiekc.blogspot.com/2018/10/operations-on-lathe-basic-and-advanced.html

Machine Tool Basics - Intro to Lathe Operations Videos
https://manufacturing-videos.blogspot.com/2012/05/machine-tool-basics-intro-to-lathe.html

Drilling Machine
Shaper, Planer and Slotter

Milling

Milling Processes and Operations
https://nraoetkc.blogspot.com/2018/09/milling-processes-and-operations.html

Milling Machine Operations - 1
https://gate-mech-engg.blogspot.com/2019/04/milling-machine-operations-1.html

CNC Machines
CNC Machines - 2012
https://nraoetkc.blogspot.com/2013/12/cnc-machines-2012.html

Cutting Tools

Cutting Tools Materials History
https://manufacturing-videos.blogspot.com/2015/04/cutting-tools-materials-history.html

High Speed Machining
https://manufacturing-videos.blogspot.com/2014/04/high-speed-machining.html

High Speed Machining
https://nraoiekc.blogspot.com/2012/02/high-speed-machining-youtube-videos.html

Robots
Robots in Manufacturing - 2015
https://nraoetkc.blogspot.com/2015/04/robots-in-manufacturing-2015.html

CIM
Computer Integrated Manufacturing
https://manufacturing-videos.blogspot.com/2019/08/computer-integrated-manufacturing.html

PRINCIPLES OF JIG DESIGN
https://nraoiekc.blogspot.com/2018/08/principles-of-jig-design.html

Additive Manufacturing

Additive Manufacturing - 3D Printing - New Developments
https://nraoetkc.blogspot.com/2019/01/additive-manufacturing-3d-printing-new.html

3D Printing - Production Applications
https://nraoetkc.blogspot.com/2015/01/3d-printing-production-applications.html

3D Printing Materials
https://nraoetkc.blogspot.com/2012/12/3d-printing-materials.html

Powder Metallurgy

Electric Discharge Machining (EDM)
https://gate-mech-engg.blogspot.com/2019/04/electric-discharge-machining-edm.html

Electrochemical Machining - Lecture - 2014
https://manufacturing-videos.blogspot.com/2014/05/electrochemical-machining-lecture-2014.html


Assembly

Torque Tools - Hand Tools
https://nraoetkc.blogspot.com/2014/09/torque-tools-hand-tools.html

Fastener Assembly - Automation
https://nraoetkc.blogspot.com/2014/09/fastener-assembly-automation.html


Electronic Products

PCB Manufacturing Developments
https://nraoetkc.blogspot.com/2018/08/pcb-manufacturing-developments.html

Inspection and Quality Control

Mechanical Assembly - Fasteners and Assembly Process

32 MECHANICAL ASSEMBLY

Chapter Contents

32.1 Threaded Fasteners
32.1.1 Screws, Bolts, and Nuts
32.1.2 Other Threaded Fasteners and Related Hardware
32.1.3 Stresses and Strengths in Bolted Joints
32.1.4 Tools and Methods for Threaded Fasteners

32.2 Rivets and Eyelets

32.3 Assembly Methods Based on Interference Fits

32.4 Other Mechanical Fastening Methods

32.5 Molding Inserts and Integral Fasteners

32.6 Design for Assembly
32.6.1 General Principles of DFA
32.6.2 Design for Automated Assembly


Mechanical assembly uses various methods to mechanically attach two (or more) parts together.

In most cases, the method involves the use of additional discrete hardware components, called
fasteners, that are added to the parts during the assembly operation. Many  products are
produced using mechanical assembly: automobiles, large and small appliances, telephones, furniture.

Mechanical fastening methods can be divided into two major classes: (1) those that allow for disassembly, and (2) those that create a permanent joint. Threaded fasteners (e.g., screws, bolts, and nuts) facilitate disassembly. Rivets are permanent joints. 

Industrial Engineering Considerations of Machining



24 ECONOMIC AND PRODUCT DESIGN CONSIDERATIONS IN MACHINING

Chapter Contents

24.1 Machinability

24.2 Tolerances and Surface Finish
24.2.1 Tolerances in Machining
24.2.2 Surface Finish in Machining

24.3 Selection of Cutting Conditions
24.3.1 Selecting Feed and Depth of Cut
24.3.2 Optimizing Cutting Speed

24.4 Product Design Considerations in Machining



Milling Cutter and Productivity

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_____________
https://www.youtube.com/channel/UCZ1sg-IuV-4msElOkNebqdg

Cutting Tool Materials and Geometry



23 CUTTING-TOOL TECHNOLOGY

Chapter Contents
23.1 Tool Life
23.1.1 Tool Wear
23.1.2 Tool Life and the Taylor Tool Life Equation


23.2 Tool Materials
23.2.1 High-Speed Steel and Its Predecessors
23.2.2 Cast Cobalt Alloys
23.2.3 Cemented Carbides, Cermets, and Coated Carbides
23.2.4 Ceramics
23.2.5 Synthetic Diamonds and Cubic Boron Nitride


23.3 Tool Geometry
23.3.1 Single-Point Tool Geometry
23.3.2 Multiple-Cutting-Edge Tools

23.4 Cutting Fluids
23.4.1 Types of Cutting Fluids
23.4.2 Application of Cutting Fluids


Metal cutting operations are accomplished using cutting tools on machine tools.

Cutting tool technology has two principal aspects: tool material and tool geometry.

The first is concerned with developing materials that can withstand the forces, temperatures,
and wearing action in the machining process. The second deals with optimizing the geometry of the cutting tool for the tool material and for a given operation.

Proper selection of cutting tool material and geometry of tool is required for effectiveness and efficiency of the cutting operation.

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Metal Removal - Machining Operations - Machine Tools


Ch.22 Groover

Chapter Contents
22.1 Machining and Part Geometry

22.2 Turning and Related Operations
22.2.1 Cutting Conditions in Turning
22.2.2 Operations Related to Turning
22.2.3 The Engine Lathe
22.2.4 Other Lathes and Turning Machines
22.2.5 Boring Machines

22.3 Drilling and Related Operations
22.3.1 Cutting Conditions in Drilling
22.3.2 Operations Related to Drilling
22.3.3 Drill Presses

22.4 Milling
22.4.1 Types of Milling Operations
22.4.2 Cutting Conditions in Milling
22.4.3 Milling Machines

22.5 Machining Centers and Turning Centers

22.6 Other Machining Operations
22.6.1 Shaping and Planing
22.6.2 Broaching
22.6.3 Sawing

22.7 Machining Operations for Special Geometries
22.7.1 Screw Threads
22.7.2 Gears

22.8 High-Speed Machining


Machining has capability to produce a diversity of part geometries and geometric features. Casting can also produce a variety of shapes, but precision and accuracy of machining are more.


22.1 MACHINING AND PART GEOMETRY

Machined parts can be classified as rotational or non-rotational

A rotational work part has a cylindrical or disk-like shape. The characteristic operation that produces
this geometry is one in which a cutting tool removes material from a rotating work part. Examples include turning and boring. Drilling is closely related except that an internal cylindrical shape is created and the tool rotates (rather than the work) in most drilling operations.

A non-rotational  work part is a block or a plate or block-like or plate-like with additional features . This geometry is achieved by linear motions of the work part, combined with either rotating or linear tool motions. Operations in this category include milling, shaping, planing, and sawing etc.



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______________


Turning operations on Lathe

(a) Facing. The tool is fed radially into the rotating work on one end to create a flat surface on the end.

(b) Taper turning. the tool is fed at an angle, thus creating a tapered cylinder or conical shape.

(c) Contour turning. Instead of feeding the tool along a straight line parallel to the axis of
rotation as in turning, the tool follows a contour that is other than straight, thus
creating a contoured form in the turned part.

(d) Form turning. The tool has a shape that is imparted to the work by plunging the tool radially into the work.

(e) Chamfering. The cutting edge of the tool is used to cut an angle on the corner of the
cylinder, forming  a ‘‘chamfer’’.

(f) Cutoff. The tool is fed radially into the rotating work at some location along its length to cut off the end of the part. Also  referred to as parting.

(g) Threading. Creating threads in the cylinder.

(h) Boring. A single-point tool is fed linearly, parallel to the axis of rotation, on the inside
diameter of an existing hole in the part.

(i) Drilling. Drilling can be performed on a lathe by feeding the drill into the rotating work along its axis. Reaming can be performed in a similar way.

(j) Knurling.Instead, it is a metal forming operation used to produce a regular crosshatched pattern in the work surface by pressing the tool against the rotating surface.

Fitting - Operations

OPERATIONS PERFORMED IN FITTING WORK


The operations commonly performed.


1 .Marking
2. Chipping
3.Filing
4. Scrapping
5.Sawing
6. Drilling
7.Reaming
8. Tapping
9.Grinding and
10. Polishing




Grinding

Grinding is generally called as fine machining or finishing operations of removing materials from surface usually 0.25-0.50 mm in most operations through the use of grinding wheel. Grinding wheel is highly useful in removing extra unwanted metal and sharpening cutting tools such as chisels, drill, taps, and other cutting tools. It may be used to finish almost all surface, which has been previously roughly shaped by some other processes or to remove the extra material which is too hard to be removed by other machining processes. The accuracy in fine grinding is in few microns or even less. 

In grinding, the work is held pressed against the high speed rotating grinding wheel and the metal gets reduced by abrasion. Grinding wheel is generally made from silicon carbide or aluminium oxide. It is generally made up of particles of hard substance called the abrasive and is embedded in a matrix called the bond. These abrasives form the cutting points in a wheel and are termed as grains. The abrasives are of generally two types namely natural and artificial. Emery and corundum are two natural abrasives, while carborundum and aloxite are artificial abrasives. The hardness or softness of the wheel is dependent on the amount and kind of the bonding material. Generally, hard wheels of aloxite are used for grinding soft materials and soft wheels of carborundum for grinding hard materials using various types of grinding machines known as grinders. 

In wet grinding, large amount of coolant over the work and on wheel face is provided. Coolant will remove heat generated during grinding and promotes long wheel life and produces very good surface finish. The cutting face of a grinding wheel should be kept in a true, clean and sharp conditioned shape for obtaining efficient cutting. Suitable dressers are also employed periodically for reconditioning and dressing of glazed or blunt wheels. Grinder may be various types such as cylindrical grinder, surface grinder, pedestal grinder, tool and cutter grinder, centre-less grinder, internal grinder and jig grinder and profile grinder. 



Polishing

Polishing is surfacing finishing process for producing a flat, scratch-free, mirror-like finish. It consists of fine grinding, intermediate grinding, rough polishing, and fine polishing. Initially the surface to be polished is roughly ground to remove deep cut off marks. Then the intermediate grinding is done with fine emery or silicon carbide (Carborundum) papers decreasing in grit size in three to four stages to remove grinding marks. Emery papers are graded from fine to coarse. This polishing operation may be performed by hand or mechanically using the rotating disks. The motion in polishing of work on polishing wheel should always be straight and the polishing strokes should cover the whole length of the surface being polished. Finer grade emery disc pr polishing wheel should be used for the fine finish work. Polishing is commonly performed on utensils.



Surface Coating

The various manufacturing processes such as casting, forging, machining, hot working, cold working and joining processes etc. produce different surfaces. Therefore for getting desired surface of the part, subsequent surface preservation processes are needed. These preservation processes are called as surface coating of metals. Coatings on surfaces are employed on most metal parts, either for protective or for decorative or for both purposes. The main objectives of coatings involve for the purpose of decoration, surface protection, corrosion resistance and providing of a hard surface. The surface covering with coating must be uniform and free from runs, checks or peelings. Coatings are commonly applied to the finished components to form the final product. For successful coating, clean and smooth surface finishes is required for assuring good adhesion during coating. Cleaning operations are performed both preparatory to finishing operations and after finishing operations. They
are primarily used to remove dirt, oil, oxides, scale, and other harmful ingredients that ultimately affect the life of the product. There are various methods of cleaning, drying, and competitive means of applying the coating. However, the various processes involved in preparing work for coating and applying the coatings are closely interrelated. 

Galvanizing, parkerizing, electroplating and painting are the common surface coating processes employed for protecting the surfaces of the work pieces.