chapter 20 fundamentals of machining/orthogonal machining (part i review) ein 3390 manufacturing...

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Chapter 20 Chapter 20 Fundamentals of Fundamentals of Machining/Orthogonal Machining/Orthogonal Machining Machining (Part I Review) (Part I Review) EIN 3390 Manufacturing Processes EIN 3390 Manufacturing Processes Spring, 2012 Spring, 2012

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Page 1: Chapter 20 Fundamentals of Machining/Orthogonal Machining (Part I Review) EIN 3390 Manufacturing Processes Spring, 2012

Chapter 20Chapter 20

Fundamentals of Fundamentals of Machining/Orthogonal Machining/Orthogonal

MachiningMachining(Part I Review) (Part I Review)

EIN 3390 Manufacturing ProcessesEIN 3390 Manufacturing ProcessesSpring, 2012Spring, 2012

Page 2: Chapter 20 Fundamentals of Machining/Orthogonal Machining (Part I Review) EIN 3390 Manufacturing Processes Spring, 2012

20.2 Fundamentals20.2 Fundamentals

Variables in Processes of Metal Cutting:

• Machine tool selected to perform the processes

• Cutting tool (geometry and material)

• Properties and parameters of workpiece

• Cutting parameters (speed, feed, depth of cut)

• Workpiece holding devices (fixture or jigs)

Page 3: Chapter 20 Fundamentals of Machining/Orthogonal Machining (Part I Review) EIN 3390 Manufacturing Processes Spring, 2012

FIGURE 20-1 The fundamental inputs and outputs to machining processes.

Page 4: Chapter 20 Fundamentals of Machining/Orthogonal Machining (Part I Review) EIN 3390 Manufacturing Processes Spring, 2012

20.2 Fundamentals20.2 Fundamentals7 basic chip formation processes:

shaping, turning, milling, drilling, sawing, broaching, grinding (abrasive)

Single point include: turning, facing, boring, shaping, planning, fly cutter milling, some modes of deep hole drilling and other variations of lathe operations such as cutoff, recessing plunge or form turning.

The rest of the machining processes are multiple points and include drilling, milling, broaching, sawing, filing and many forms of abrasive machining.

Page 5: Chapter 20 Fundamentals of Machining/Orthogonal Machining (Part I Review) EIN 3390 Manufacturing Processes Spring, 2012

FIGURE 20-2 The seven basic machining processes used inchip formation.

Page 6: Chapter 20 Fundamentals of Machining/Orthogonal Machining (Part I Review) EIN 3390 Manufacturing Processes Spring, 2012

20.2 Fundamentals20.2 FundamentalsResponsibilities of Engineers

Design (with Material) engineer: • determine geometry and materials of products to meet functional requirements

Manufacturing engineer based on material decision:

• select machine tool• select cutting-tool materials• select workholder parameters,• select cutting parameters

Page 7: Chapter 20 Fundamentals of Machining/Orthogonal Machining (Part I Review) EIN 3390 Manufacturing Processes Spring, 2012

20.2 Fundamentals20.2 FundamentalsCutting Parameters

Speed (V): the primary cutting motion, which relates the velocity of the cutting tool relative to the workpiece.

For turning: V = (D1 Ns) / 12 where, V – feet per min, Ns – revolution per min (rpm), D1

diameter of surface of workpiece, in.

Feed (fr): amount of material removed per revolution or per pass of the tool over the workpiece. In turning, feed is in inches per revolution, and the tool feeds parallel to the rotational axis of the workpiece.

Depth of Cut (DOC): in turning, it is the distance that the tool is plunged into the surface.

DOC = 0.5(D1 – D2) = d

Page 8: Chapter 20 Fundamentals of Machining/Orthogonal Machining (Part I Review) EIN 3390 Manufacturing Processes Spring, 2012

FIGURE 20-3 Turning acylindrical workpiece on a lathe requires you to select the cutting speed, feed, and depth of cut.

Page 9: Chapter 20 Fundamentals of Machining/Orthogonal Machining (Part I Review) EIN 3390 Manufacturing Processes Spring, 2012

20.2 Fundamentals20.2 FundamentalsCutting Tool is

a most critical componentused to cut the work pieceselected before actual values for speed and feeds are determined.

Figure 20-4 gives starting values of cutting speed, feed for a given depth of cut, a given work material, and a given process (turning).

Speed decreases as DOC or feed increaseCutting speed increases with carbide and coated-

carbide tool material.

Page 10: Chapter 20 Fundamentals of Machining/Orthogonal Machining (Part I Review) EIN 3390 Manufacturing Processes Spring, 2012

FIGURE 20-4 Examples of a table for selection FIGURE 20-4 Examples of a table for selection of speed and feed for turning. of speed and feed for turning. (Source: (Source: Metcut’s Metcut’s Machinability Data Handbook.Machinability Data Handbook.))

AISIfor “in”

ISOfor “mm”

(for workpiece)

Page 11: Chapter 20 Fundamentals of Machining/Orthogonal Machining (Part I Review) EIN 3390 Manufacturing Processes Spring, 2012

FIGURE 20-4 Examples of a table for selection FIGURE 20-4 Examples of a table for selection of speed and feed for turning. of speed and feed for turning. (Source: (Source: Metcut’s Metcut’s Machinability Data Handbook.Machinability Data Handbook.))

AISIfor “in”

ISOfor “mm”

(for workpiece)

Page 12: Chapter 20 Fundamentals of Machining/Orthogonal Machining (Part I Review) EIN 3390 Manufacturing Processes Spring, 2012

20.2 Fundamentals20.2 FundamentalsTo process different metals, the input parameters to the machine tools must be determined.

For the lathe, the input parameters are DOC, feed, and the rpm value of the spindle.

Ns = 12V / ( D1) = ~ 3.8 V/ D1

Most tables are arranged according to the process being used, the material being machined, the hardness, and the cutting-tool material.

The table in Figure 20-4 is used only for solving turning problems in the book.

Page 13: Chapter 20 Fundamentals of Machining/Orthogonal Machining (Part I Review) EIN 3390 Manufacturing Processes Spring, 2012

20.2 Fundamentals20.2 FundamentalsDOC is determined by the amount of metal removed per pass. Roughing cuts are heavier than finishing cuts in terms of DOC and feed and are run at a lower surface speed.

Once cutting speed V has been selected, the next step is to determine the spindle rpm, Ns.

Use V, fr and DOC to estimate the metal removal rate for the process, or MRR.

MRR = ~ 12V fr dwhere d is DOC (depth of cutt).

MRR value is ranged from 0.1 to 600 in3/min.

Page 14: Chapter 20 Fundamentals of Machining/Orthogonal Machining (Part I Review) EIN 3390 Manufacturing Processes Spring, 2012

20.2 Fundamentals20.2 FundamentalsMRR can be used to estimate horsepower needed to perform cut. Another form of MRR is the ratio between the volume of metal removed and the time needed to remove it.

MRR = (volume of cut)/Tm Where Tm – cutting time in min. For turning, Tm = (L + allowance)/ (fr Ns)where L – length of the cut. An allowance is usually

added to L to allow the tool to enter and exit the cut.

MRR and Tm are commonly referred to as shop equations and are fundamental as the processes.

Page 15: Chapter 20 Fundamentals of Machining/Orthogonal Machining (Part I Review) EIN 3390 Manufacturing Processes Spring, 2012

20.2 Fundamentals20.2 Fundamentals

One of the most common is turning:workpiece is rotated and cutting tool removes material as it moves to the left after setting a depth of cut. A chip is produced which moves up the face of the tool.

Page 16: Chapter 20 Fundamentals of Machining/Orthogonal Machining (Part I Review) EIN 3390 Manufacturing Processes Spring, 2012

FIGURE 20-5 Relationship ofspeed, feed, and depth of cut inturning, boring, facing, andcutoff operations typically doneon a lathe.

Page 17: Chapter 20 Fundamentals of Machining/Orthogonal Machining (Part I Review) EIN 3390 Manufacturing Processes Spring, 2012

20.2 Fundamentals20.2 FundamentalsMilling:

A multiple-tooth process. Two feeds: the amount of metal an individual tooth

removes, called the feed per tooth ft, and the rate at which the table translates pass the rotating tool, called the table feed rate fm in inch per min.

fm = ft n Ns

where n – the number of teeth in a cutter, Ns – the rpm value of the cutter.

Standard tables of speeds and feeds for milling provide values for the recommended cutting speeds and feeds and feeds per tooth, fr.

Page 18: Chapter 20 Fundamentals of Machining/Orthogonal Machining (Part I Review) EIN 3390 Manufacturing Processes Spring, 2012

FIGURE 20-6 Basics of milling processes (slab, face, and end milling) including equations for cutting time and metalremoval rate (MRR).

Page 19: Chapter 20 Fundamentals of Machining/Orthogonal Machining (Part I Review) EIN 3390 Manufacturing Processes Spring, 2012

FIGURE 20-7 Basics of the drilling (hole-making) processes, including equations for cutting time andmetal removal rate (MRR).

Page 20: Chapter 20 Fundamentals of Machining/Orthogonal Machining (Part I Review) EIN 3390 Manufacturing Processes Spring, 2012

FIGURE 20-9 (a) Basics of the shaping process, including equations for cutting time (Tm ) and metal removal rate(MRR). (b) The relationship of the crank rpm Ns to the cutting velocity V.

Page 21: Chapter 20 Fundamentals of Machining/Orthogonal Machining (Part I Review) EIN 3390 Manufacturing Processes Spring, 2012

FIGURE 20-10 Operations and machines used for machining cylindrical surfaces.

Page 22: Chapter 20 Fundamentals of Machining/Orthogonal Machining (Part I Review) EIN 3390 Manufacturing Processes Spring, 2012

FIGURE 20-10 Operations and machines used for machining cylindrical surfaces.

Page 23: Chapter 20 Fundamentals of Machining/Orthogonal Machining (Part I Review) EIN 3390 Manufacturing Processes Spring, 2012

FIGURE 20-10 Operations and machines used for machining cylindrical surfaces.

Page 24: Chapter 20 Fundamentals of Machining/Orthogonal Machining (Part I Review) EIN 3390 Manufacturing Processes Spring, 2012

FIGURE 20-10 Operations and machines used for machining cylindrical surfaces.

Page 25: Chapter 20 Fundamentals of Machining/Orthogonal Machining (Part I Review) EIN 3390 Manufacturing Processes Spring, 2012

FIGURE 20-11 Operations and machines used to generate flat surfaces.

Page 26: Chapter 20 Fundamentals of Machining/Orthogonal Machining (Part I Review) EIN 3390 Manufacturing Processes Spring, 2012

FIGURE 20-11 Operations and machines used to generate flat surfaces.

Page 27: Chapter 20 Fundamentals of Machining/Orthogonal Machining (Part I Review) EIN 3390 Manufacturing Processes Spring, 2012
Page 28: Chapter 20 Fundamentals of Machining/Orthogonal Machining (Part I Review) EIN 3390 Manufacturing Processes Spring, 2012
Page 29: Chapter 20 Fundamentals of Machining/Orthogonal Machining (Part I Review) EIN 3390 Manufacturing Processes Spring, 2012

20.3 Energy and Power in Machining20.3 Energy and Power in Machining

Power requirements are important for proper

machine tool selection.

Cutting force data is used to:

properly design machine tools to maintain

desired tolerances.

determine if the workpiece can withstand

cutting forces without distortion.

Page 30: Chapter 20 Fundamentals of Machining/Orthogonal Machining (Part I Review) EIN 3390 Manufacturing Processes Spring, 2012

Cutting Forces and PowerCutting Forces and Power Primary cutting force Fc: acts in the direction of the cutting

velocity vector. Generally the largest force and accounts for 99% of the power required by the process.

Feed Force Ff :acts in the direction of tool feed. The force is

usually about 50% of Fc but accounts for only a small

percentage of the power required because feed rates are

small compared to cutting rate.

Radial or Thrust Force Fr :acts perpendicular to the

machined surface. in the direction of tool feed. The force is

typically about 50% of Ff and contributes very little to the

power required because velocity in the radial direction is

negligible.

Page 31: Chapter 20 Fundamentals of Machining/Orthogonal Machining (Part I Review) EIN 3390 Manufacturing Processes Spring, 2012

FIGURE 20-12 Obliquemachining has three measurablecomponents of forces acting onthe tool. The forces vary withspeed, depth of cut, and feed.

Page 32: Chapter 20 Fundamentals of Machining/Orthogonal Machining (Part I Review) EIN 3390 Manufacturing Processes Spring, 2012

FIGURE 20-12 Obliquemachining has three measurablecomponents of forces acting onthe tool. The forces vary withspeed, depth of cut, and feed.

Page 33: Chapter 20 Fundamentals of Machining/Orthogonal Machining (Part I Review) EIN 3390 Manufacturing Processes Spring, 2012

Cutting Forces and PowerCutting Forces and PowerPower = Force x Velocity

P = Fc . V (ft-lb/min)

Horsepower at spindle of machine is:hp = (FcV) / 33,000

Unit, or specific, horsepower HPs:

HPs = hp / (MRR) (hp/in.3/min)

In turning, MRR =~ 12VFrd, then

HPs = Fc / 396,000Frd This is approximate power needed at the spindle to remove a

cubic inch of metal per minute.

Page 34: Chapter 20 Fundamentals of Machining/Orthogonal Machining (Part I Review) EIN 3390 Manufacturing Processes Spring, 2012
Page 35: Chapter 20 Fundamentals of Machining/Orthogonal Machining (Part I Review) EIN 3390 Manufacturing Processes Spring, 2012

Cutting Forces and PowerCutting Forces and PowerSpecific Power

Used to estimate motor horsepower required to perform a machining operation for a given material.

Motor horsepower HPm

HPm = [HPs . MRR . (CF)]/EWhere E – about 0.8, efficiency of machine to overcome friction

and inertia in machine and drive moving parts; MRR – maximum value is usually used; CF – about 1.25, correction factor, used to account for variation in cutting speed, feed, and rake angle.

Page 36: Chapter 20 Fundamentals of Machining/Orthogonal Machining (Part I Review) EIN 3390 Manufacturing Processes Spring, 2012

Cutting Forces and PowerCutting Forces and PowerPrimary cutting force Fc:

Fc =~ [HPs . MRR . 33,000]/VUsed in analysis of deflection and vibration problems in machining and in design of workholding devices.

In general, increasing the speed, feed, depth of cut, will increase power required.

In general, increasing the speed doesn’t increase the cutting force Fc. Speed has strong effect on tool life.

Page 37: Chapter 20 Fundamentals of Machining/Orthogonal Machining (Part I Review) EIN 3390 Manufacturing Processes Spring, 2012

Cutting Forces and PowerCutting Forces and PowerConsidering MRR =~ 12Vfrd, then

dmax =~ (HPm . E)/[12 . HPs V Fr (CF)]

Total specific energy (cutting stiffness) U:

U = (FcV)/(V fr d) = Fc/(fr . d) =Ks (turning)