Top Banner
© R. Jerz 1 2/24/2006 Chapter 23 Machining Processes Used to Produce Round Shapes: Turning and Hole Making
36

Turning Full Slides

Jul 17, 2016

Download

Documents

Turning
Welcome message from author
This document is posted to help you gain knowledge. Please leave a comment to let me know what you think about it! Share it to your friends and learn new things together.
Transcript
Page 1: Turning Full Slides

© R. Jerz 1 2/24/2006

Chapter 23Chapter 23Machining Processes Used to Produce Round Shapes:

Turning and Hole Making

Page 2: Turning Full Slides

© R. Jerz 2 2/24/2006

ProcessesProcesses

Turning (outside surface)• straight, taper, facing, contour, form, cut-off,

threading, knurlingBoring (internal holes)• taper, form, drilling, threading, reaming

Drilling (internal)Reaming (internal)

Page 3: Turning Full Slides

© R. Jerz 3 2/24/2006

Machining Surface RoughnessMachining Surface Roughness

Page 4: Turning Full Slides

© R. Jerz 4 2/24/2006

Drilling HolesDrilling Holes

Page 5: Turning Full Slides

© R. Jerz 5 2/24/2006

“Drilling” Operations“Drilling” Operations

Various types of drills and drilling and reaming operations.

Page 6: Turning Full Slides

© R. Jerz 6 2/24/2006

Drilling VideoDrilling Video

Page 7: Turning Full Slides

© R. Jerz 7 2/24/2006

Drilling MachinesDrilling Machines

Figure 23.24 (a) Schematic illustration of the components of a vertical drill press. (b) A radial drilling machine. Source: (b) Courtesy of Willis Machinery and Tools.

Page 8: Turning Full Slides

© R. Jerz 8 2/24/2006

Various Types of DrillsVarious Types of Drills

Page 9: Turning Full Slides

© R. Jerz 9 2/24/2006

DrillsDrills

Page 10: Turning Full Slides

© R. Jerz 10 2/24/2006

ReamersReamers

Figure 23.26 (a) Terminology for a helical reamer. (b) Inserted-blade adjustable reamer.

Page 11: Turning Full Slides

© R. Jerz 11 2/24/2006

General Capabilities of DrillingGeneral Capabilities of Drilling

Feed, fSpeed, VDepth of cut, dDiameter, DRPM, N

Page 12: Turning Full Slides

© R. Jerz 12 2/24/2006

Speeds and Feeds in DrillingSpeeds and Feeds in Drilling

Page 13: Turning Full Slides

© R. Jerz 13 2/24/2006

Drilling Design ConsiderationsDrilling Design Considerations

Design for clampingFlat surfaces preferredTolerances requirementsMachinability of materialsAllowance for toolDepth of hole (walking)Diameter of hole

Page 14: Turning Full Slides

© R. Jerz 14 2/24/2006

Boring Process CharacteristicsBoring Process Characteristics

Single point toolEnlarges or straightens an existing holeProduces accurate holes (better tolerances than drilling)Able to produce large internal holesCan be performed on a lathe, boring mill, or jig bore machine tools

Page 15: Turning Full Slides

© R. Jerz 15 2/24/2006

BoringBoring

Page 16: Turning Full Slides

© R. Jerz 16 2/24/2006

Boring and Boring MillBoring and Boring Mill

Page 17: Turning Full Slides

© R. Jerz 17 2/24/2006

Boring Design ConsiderationsBoring Design Considerations

Through holes, not blind holesGreater length to diameter more difficultAvoid intermittent cuts

Page 18: Turning Full Slides

© R. Jerz 18 2/24/2006

Turning ProcessTurning Process

Creates cylindrical external or internal shapesCreates flat surfaces on part ends (faces)Uses a single point toolWide variety of shapesThe machine tool is called a “lathe”

Page 19: Turning Full Slides

© R. Jerz 19 2/24/2006

Lathe CAD VideoLathe CAD Video

Page 20: Turning Full Slides

© R. Jerz 20 2/24/2006

Video – Lathe/TurningVideo – Lathe/Turning

Page 21: Turning Full Slides

© R. Jerz 21 2/24/2006

Lathe Cutting Operations Lathe Cutting Operations Turning: produces straight, conical, curved, or grooved workpieces

Facing: produces flat surfaces at the end of the part and perpendicular to its axis. Also used to produce grooves.

Page 22: Turning Full Slides

© R. Jerz 22 2/24/2006

Lathe Cutting OperationsLathe Cutting OperationsParting or Cutting Off: cuts a piece from the end of a partThreading: produces external or internal threadsKnurling: produces a regularly shaped roughness on cylindrical surfaces, as in making knobs

Page 23: Turning Full Slides

© R. Jerz 23 2/24/2006

Lathe Cutting OperationsLathe Cutting OperationsForm tool: produces axisymmetric partsBoring: enlarges a previous hole or to produce circular internal groovesDrilling: produces a hole

Page 24: Turning Full Slides

© R. Jerz 24 2/24/2006

Cutting Screw ThreadsCutting Screw Threads

Page 25: Turning Full Slides

© R. Jerz 25 2/24/2006

LatheLathe

Figure 23.2 General view of a typical lathe, showing various components. Source: Courtesy of Heidenreich & Harbeck.

Page 26: Turning Full Slides

© R. Jerz 26 2/24/2006

NC Lathe and TurretNC Lathe and Turret

Page 27: Turning Full Slides

© R. Jerz 27 2/24/2006

Parts Made on LathesParts Made on Lathes

Page 28: Turning Full Slides

© R. Jerz 28 2/24/2006

Turning OperationTurning Operation

Figure 23.3 Schematic illustration of the basic turning operation, showing depth-of-cut, d; feed, f; and spindle rotational speed, N in rev/min. Cutting speed is the surface speed of the workpiece at the tool tip.

Page 29: Turning Full Slides

© R. Jerz 29 2/24/2006

ToolTool

Page 30: Turning Full Slides

© R. Jerz 30 2/24/2006

Turning FormulasTurning Formulas

Page 31: Turning Full Slides

© R. Jerz 31 2/24/2006

Turning ParametersTurning Parameters

Page 32: Turning Full Slides

© R. Jerz 32 2/24/2006

Turning Feeds & SpeedsTurning Feeds & Speeds

Page 33: Turning Full Slides

© R. Jerz 33 2/24/2006

Feeds & Speeds for Tool MaterialsFeeds & Speeds for Tool Materials

Page 34: Turning Full Slides

© R. Jerz 34 2/24/2006

Cost ElementsCost Elements

EquipmentToolingSetup timeLoad/unload timeDirect laborIndirect laborCycle time, idle timeOverhead rate

Page 35: Turning Full Slides

© R. Jerz 35 2/24/2006

Safety FactorsSafety Factors

Rotating parts or toolsHot, sharp chipsEye and skin irritation from cutting fluids

Page 36: Turning Full Slides

© R. Jerz 36 2/24/2006

Example from BookExample from Book

A 6-in long, 0.5 in diameter 304 stainless-steel rod is being reduced in diameter to 0.48 in by turning on a lathe. The spindle rotates at N=400 rpm , and the tool is traveling at an axial speed of 8 in/min. Calculate, the cutting speed, material removal rate, cutting time, and power.