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Heating coils
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Image
Published: 01 August 2015
Image
Published: 01 March 2006
Fig. 6 Induction hardening of a gear. The heating coils are surrounded by the spray quenching head. A thin surface layer of the gear will be heated, power turned off, and the spray turned on, resulting in a thin hard case. Source: Ref 1
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Image
Published: 01 October 2011
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Published: 01 March 2006
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in Coil Design and Fabrication
> Elements of Induction Heating<subtitle>Design, Control, and Applications</subtitle>
Published: 01 June 1988
Fig. 8.5 Multiturn coils designed for heating parts of various shapes: (a) round; (b) rectangular; (c) formed; (d) pancake; (e) spiral-helical; (f) internal. From F. W. Curtis, High Frequency Induction Heating , McGraw-Hill, New York, 1950 ( Ref 1 )
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in Coil Design and Fabrication
> Elements of Induction Heating<subtitle>Design, Control, and Applications</subtitle>
Published: 01 June 1988
Fig. 8.7 Induction coils designed for internal (bore) heating. From F. W. Curtis, High Frequency Induction Heating , McGraw-Hill, New York, 1950 ( Ref 1 )
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in Coil Design and Fabrication
> Elements of Induction Heating<subtitle>Design, Control, and Applications</subtitle>
Published: 01 June 1988
Fig. 8.19 Design of pancake coils to provide (a) uniform, or over-all, heating or (b) peripheral heating only. From F. W. Curtis, High Frequency Induction Heating , McGraw-Hill, New York, 1950 ( Ref 1 )
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in Coil Design and Fabrication
> Elements of Induction Heating<subtitle>Design, Control, and Applications</subtitle>
Published: 01 June 1988
Fig. 8.40 Tapped forging coils for heating off the end of a bar Source: American Induction Heating Corp.
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Image
Published: 01 September 2008
Image
Published: 01 August 2015
Fig. A3.4 Characterization of multiturn coils: (a) uneven heating pattern in a round bar obtained by a coil with an even pitch, a problem that can be corrected by (b) increasing the pitch of the central turns of the coil, (c) varying the coupling, or (d) using a longer coil. L: length
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Image
Published: 01 December 2006
Fig. 6.39 Multibillet induction coil with integrated shock heating coil. TM, temperature sensor
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Image
Published: 01 August 2015
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Published: 01 August 2015
Series: ASM Technical Books
Publisher: ASM International
Published: 01 June 1988
DOI: 10.31399/asm.tb.eihdca.t65220027
EISBN: 978-1-62708-341-6
...Abstract Abstract This chapter focuses on the transfer of energy between the power supply and the induction heating coil. The most efficient transfer requires that the induction heated load and coil be matched to the power supply and that the electrical circuit containing these elements...
Abstract
This chapter focuses on the transfer of energy between the power supply and the induction heating coil. The most efficient transfer requires that the induction heated load and coil be matched to the power supply and that the electrical circuit containing these elements be properly tuned. The chapter describes these procedures, including the processes involved in tuning induction heating circuits and load matching, impedance matching by means of a transformer, and tuning used for specific types of power supplies.
Image
Published: 01 December 2006
Book Chapter
Series: ASM Technical Books
Publisher: ASM International
Published: 01 August 2015
DOI: 10.31399/asm.tb.piht2.t55050057
EISBN: 978-1-62708-311-9
... the transformer secondary. Coil design is application specific, so the type of coil to be used should be selected before designing fixturing. The type of process used, such as whether the workpieces are heated single shot or scanned, influences coil selection. Coil design and construction principals are discussed...
Abstract
This chapter discusses the design and operating principles of various types of electromagnetic coils. It explains how induction coils are classified based on the direction of the eddy currents they induce in the workpiece and the corresponding orientation, whether longitudinal or transverse, of the associated magnetic flux. It then discusses the factors that influence coil design and selection, including coupling efficiency, frequency, the number and spacing of turns, and the use of flux intensifiers. It also includes images and illustrations of various types of coils and coil geometries for basic as well as special purpose applications.
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Published: 01 August 2015
Fig. 10.15 Dual-frequency contour, one coil. A single induction coil provides for heating and quenching, as employed for the thermal treatments indicated. AF, audio frequency; RF, radio frequency. Source: Ref 6
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Image
Published: 01 December 2006
Fig. 6.43 Induction heating furnace with integrated partial-coil boost heating. TM, temperature sensor
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Book Chapter
Series: ASM Technical Books
Publisher: ASM International
Published: 01 June 1988
DOI: 10.31399/asm.tb.eihdca.t65220281
EISBN: 978-1-62708-341-6
... or similar types of apparatus. In these instances, a stainless steel forming die is fabricated with internal channels for water cooling ( Fig. 11.3 ). In operation, the die is heated by an induction coil on an automatic forming machine. When the die is raised to the forming temperature of the plastic...
Abstract
Induction heating has found widespread use as a method to raise the temperature of a metal prior to forming or joining, or to change its metallurgical structure. However, induction heating has specialized capabilities that make it suitable for applications outside of metal treatment and fabrication. This chapter summarizes some of the special applications of induction heating, including those in the plastics, packaging, electronics, glass, chemical, and metal-finishing industries. The chapter concludes with a discussion of the application of induction heating for vacuum processes.
Book Chapter
Series: ASM Technical Books
Publisher: ASM International
Published: 01 August 2015
DOI: 10.31399/asm.tb.piht2.t55050009
EISBN: 978-1-62708-311-9
...Abstract Abstract This chapter discusses the basic principles of induction heating and related engineering considerations. It describes the design and operation of induction coils, the magnitude and distribution of magnetic fields, and the forces that generate eddy currents in metals...
Abstract
This chapter discusses the basic principles of induction heating and related engineering considerations. It describes the design and operation of induction coils, the magnitude and distribution of magnetic fields, and the forces that generate eddy currents in metals. It explains how induced electrical current causes metal to heat in proportion to their electrical resistance and how it affects temperature dependent properties such as resistivity and specific heat and, in turn, heating rates and efficiencies. It also discusses the effect of hysteresis and explains why eddy currents tend to be confined to the outer surface of the workpiece, a phenomenon known as the skin effect. The chapter includes several data plots showing how the depth of heating varies with frequency and how heating time, power density, and thermal conduction rate correspond with hardening depth.