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precision
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Published: 01 March 2002
Fig. 6.10 Left to right: oversize, precision-forged, and final machined blades showing size variations
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Published: 01 December 2004
Fig. 8 Proving rings. (a) Elastic proving ring with precision micrometer for deflection/load readout. (b) Load calibration of 120,000 lbf screw-driven testing machine with a proving ring
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Published: 01 November 2013
Fig. 25 Cross sections of (a) precision and (b) conventional forgings. Source: Ref 10
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Published: 01 December 2000
Fig. 6.6 Typical complex shapes cast in titanium alloys. Courtesy of Precision Castparts Corp.
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Published: 01 August 2012
Fig. 11.15 Tooling designed for precision blanking (tool design by Todo Kogyo). Source: Ref 11.9
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Image
Published: 01 August 2012
Fig. 11.16 Process sequence in precision blanking. Source: Ref 11.15
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Published: 01 August 2012
Fig. 11.18 Precision formed part (a) partially blanked and (b) finished blanked. Source: Ref 11.9
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Published: 01 January 2015
Fig. 9.8 German Fabrication Machines’ radial precision forging machine. Courtesy of Timet
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Published: 01 February 2005
Fig. 12.19 Schematic of a GFM radial precision forging machine with two chuck heads. [ Walter, 1965 ]
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Image
Published: 01 February 2005
Fig. 12.20 Forging box of a radial precision forging machine illustrating the tool function and adjustment. (a) Dies. (b) Pitman arm. (c) Guides. (d) Eccentric shaft. (e) Adjustment housing. (f) Adjustment screw. (g) Worm gear drive. (h) Adjustment input. (i) Adjustable cam. (k) Forging box
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Image
Published: 01 February 2005
Fig. 12.21 Typical examples of stepped shafts produced in precision radial forging machines. [ Altan et al., 1973 ]
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in Process Modeling in Impression-Die Forging Using Finite-Element Analysis
> Cold and Hot Forging: Fundamentals and Applications
Published: 01 February 2005
Fig. 16.21 Deformation sequence for flashless precision forging of a connecting rod [ Takemasu et al., 1996 ]
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Published: 01 February 2005
Fig. 22.1 Typical failure modes and locations in precision-forging die [ Schey, 1983 ]
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Published: 01 February 2005
Fig. 22.33 FEM model of hot precision forging process [ Dahl et al., 1999 ]
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Series: ASM Technical Books
Publisher: ASM International
Published: 01 September 2008
DOI: 10.31399/asm.tb.fahtsc.t51130241
EISBN: 978-1-62708-284-6
..., it depends on heat treatment and surface hardening. Thermal and surface work-hardening treatments used industrially cause enhancement of fatigue resistance. Based on research carried out by the Institute of Precision Mechanics, it can be accepted that the fatigue limit σ –1 ) rises 15 to 30% on average...
Abstract
This chapter discusses the various factors influencing the evaluation of fatigue fracture of nitrided layers. It begins by describing the problems of enhancing the fatigue resistance of machine components. The significance and detailed assessment of the effect of a structural flaw are then explained, using investigations of the effect of variable core conditions on fatigue resistance as an example. This is followed by a discussion on the processes involved in the evaluation of fatigue properties of nitrided steels. The chapter also describes the determination of the fatigue characteristics of nitrided steels after the carbonitriding treatment.
Image
Published: 01 November 2010
Fig. 9.32 Cavity tool for precise location of substructure. Al, aluminum
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Book Chapter
Series: ASM Technical Books
Publisher: ASM International
Published: 01 December 1995
DOI: 10.31399/asm.tb.sch6.t68200206
EISBN: 978-1-62708-354-6
... in considering capability and tolerances is the ability to measure with accuracy and precision (repeatability and reproducibility). This chapter discusses the methods for measuring accuracy and precision. It describes the variation of process characteristics, capability indices in general use, and factors...
Abstract
Users of steel castings establish performance requirements for specific characteristics of the castings based on the planned use. They express tolerance for variation in those characteristics to the producer of the castings. One issue which should never be taken for granted in considering capability and tolerances is the ability to measure with accuracy and precision (repeatability and reproducibility). This chapter discusses the methods for measuring accuracy and precision. It describes the variation of process characteristics, capability indices in general use, and factors related to process performance and tolerance specification.