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UNS G43400
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Published: 01 October 2011
Fig. 9.37 Microstructure of quenched and tempered low-alloy UNS G43400 steel showing a mixture of bainite (dark etching constituent) and martensite (lighter gray). 4% picral + 2% nital etch. Original magnification 500×
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Book Chapter
Series: ASM Technical Books
Publisher: ASM International
Published: 01 December 2015
DOI: 10.31399/asm.tb.cpi2.t55030215
EISBN: 978-1-62708-282-2
... and/or a lack of appreciation of the true service conditions ( Ref 5 ). As an example, a type 316 stainless steel (Unified Numbering System, or UNS, S31600) pipe was considered a suitable choice for admitting steam and subsequently air into a chemical slurry in a reaction vessel; however, it experienced...
Abstract
This chapter outlines the step-by-step processes by which materials are selected in order to prevent or control corrosion and includes information on materials that are resistant to the various forms of corrosion. The various forms of corrosion covered are general (uniform) corrosion, localized corrosion, galvanic corrosion, intergranular corrosion, stress-corrosion cracking, hydrogen damage, and erosion-corrosion. In addition, the economic importance of cost-effective materials selection is also considered.
Book Chapter
Series: ASM Technical Books
Publisher: ASM International
Published: 01 March 2006
DOI: 10.31399/asm.tb.pht2.t51440125
EISBN: 978-1-62708-262-4
... 0.56–0.64 0.75–1.00 0.035 0.040 0.15–0.30 … 0.70–0.90 0.25–0.35 4320 G4320 0.17–0.22 0.45–0.65 0.035 0.040 0.15–0.30 1.65–2.00 0.40–0.60 0.20–0.30 4340 G43400 0.38–0.43 0.60–0.80 0.035 0.040 0.15–0.30 1.65–2.00 0.70–0.90 0.20–0.30 E4340 G43406 0.38–0.43 0.65–0.85...
Abstract
This chapter discusses the fundamentals of heat treating of alloy steels. It begins with an overview of the designations of AISI-SAE grades of alloy steels, followed by a description of the purposes served by alloying elements. The effects of specific alloying elements on the heat treatment of alloy steels and of boron on hardenability of alloy steels are then discussed. Procedures for heat treating four specific alloy steels (4037, 4037H; 4140, 4140H; 4340, 4340; and E52100) are subsequently presented. The chapter concludes with a brief account of austempering and martempering treatments.
Book Chapter
Series: ASM Technical Books
Publisher: ASM International
Published: 31 December 2020
DOI: 10.31399/asm.tb.phtbp.t59310095
EISBN: 978-1-62708-326-3
... carbon steel with a manganese content of no greater than 1.0% with a mean (nominal) carbon content of 0.40 wt% carbon. Additionally, there may be equivalent designations using the Unified Numbering System (UNS) established by ASTM International (ASTM E527) and SAE International (SAE J 1086). The first...
Abstract
This chapter describes the designations of carbon and low-alloy steels and their general characteristics in terms of their response to hardening and mechanical properties. The steels covered are low-carbon steels, higher manganese carbon steels, boron-treated carbon steels, H-steels, free-machining carbon steels, low-alloy manganese steels, low-alloy molybdenum steels, low-alloy chromium-molybdenum steels, low-alloy nickel-chromium-molybdenum steels, low-alloy nickel-molybdenum steels, low-alloy chromium steels, and low-alloy silicon-manganese steels. The chapter provides information on residual elements, microalloying, grain refinement, mechanical properties, and grain size of these steels. In addition, the effects of free-machining additives are also discussed.
Series: ASM Technical Books
Publisher: ASM International
Published: 01 December 1995
DOI: 10.31399/asm.tb.sch6.t68200422
EISBN: 978-1-62708-354-6
... 1.65/2.00 0.40/0.60 0.20/0.30 4340 G43400 0.38/0.43 0.60/0.80 0.035 0.040 0.15/0.30 1.65/2.00 0.70/0.90 0.20/0.30 E4340 G43406 0.38/0.43 0.65/0.85 0.025 0.025 0.15/0.30 1.65/2.00 0.70/0.90 0.20/0.30 Ni-Mo Steels 4615 G46150 0.13/0.18 0.45/0.65 0.035 0.040 0.15/0.30...
Book Chapter
Series: ASM Technical Books
Publisher: ASM International
Published: 01 October 2011
DOI: 10.31399/asm.tb.mnm2.t53060197
EISBN: 978-1-62708-261-7
... a carbon-austenite solid solution decomposes into a ferrite-cementite mixture after very slow (near equilibrium) cooling. Plain carbon steel (UNS G10800) showing colonies of pearlite. 4% picral etch. Original magnification 200× Yield strength of eutectoid steels—also called pearlitic steels...
Abstract
This chapter discusses the types, methods, and advantages of heat treating procedures, including annealing, normalizing, tempering, and case hardening. It describes the iron-carbon system, the formation of equilibrium and metastable phases, and the effect of alloy elements on hardenability and tempering response. It discusses the significance of critical temperatures, the use of transformation diagrams, and types of annealing treatments. It also provides information on heat treating furnaces, the effect of heating rate on transformation temperatures, quench and temper procedures, and the use of cold treating.
Book Chapter
Series: ASM Technical Books
Publisher: ASM International
Published: 31 December 2020
DOI: 10.31399/asm.tb.phtbp.t59310055
EISBN: 978-1-62708-326-3
...) (e) 254 (490) (c) Nickel-chromium-molybdenum steels 4320 G43200 725 (1335) 810 (1490) 740 (1365) 630 (1170) 380 (720) (HY-80) K31820 720 (1330) 860 (1580) … … … (HY-100) K32045 … … … … … 4340 G43400 725 (1335) 775 (1425) 710 (1310) 655 (1210) 285 (545...
Abstract
The decomposition of austenite, during controlled cooling or quenching, produces a wide variety of microstructures in response to such factors as steel composition, temperature of transformation, and cooling rate. This chapter provides a detailed discussion on the isothermal transformation and continuous cooling transformation diagrams that characterize the conditions that produce the various microstructures. It discusses the mechanism and process variables of quenching of steel, explaining the factors involved in the mechanism of quenching. In addition, the chapter provides information on the causes and characteristics of residual stresses, distortion, and quench cracking of steel.
Book Chapter
Series: ASM Technical Books
Publisher: ASM International
Published: 01 June 2008
DOI: 10.31399/asm.tb.emea.t52240371
EISBN: 978-1-62708-251-8
... 4820 G48200 0.18–0.32 0.50–0.70 0.035 0.040 0.15–0.35 3.25–3.75 … 0.20–0.30 Nickel (1.83%)-chromium-molybdenum steels 4320 G43200 0.17–0.22 0.45–0.65 0.035 0.040 0.15–0.35 1.65–2.00 0.40–0.60 0.20–0.30 4340 G43400 0.38–0.43 0.60–0.80 0.035 0.040 0.15–0.35 1.65–2.00...
Abstract
Alloy steels are alloys of iron with the addition of carbon and one or more of the following elements: manganese, chromium, nickel, molybdenum, niobium, titanium, tungsten, cobalt, copper, vanadium, silicon, aluminum, and boron. Alloy steels exhibit superior mechanical properties compared to plain carbonsteels as a result of alloying additions. This chapter describes the beneficial effects of these alloying elements in steels. It discusses the mechanical properties, nominal compositions, advantages, and engineering applications of various classes of alloy steels. They are low-alloy structural steels, SAE/AISI alloy steels, high-fracture-toughness steels, maraging steels, austenitic manganese steels, high-strength low-alloy steels, dual-phase steels, and transformation-induced plasticity steels.
Series: ASM Technical Books
Publisher: ASM International
Published: 01 January 2017
DOI: 10.31399/asm.tb.sccmpe2.t55090043
EISBN: 978-1-62708-266-2
... A106B 0.3 C, 0.3–1.1 Mn, 0.1 Si (min) 241 35 415 60 … G41300 4130 (AISI) 0.3 C, 1 Mn, 0.25 Si, 1 Cr, 0.2 Mo 615–1358 89–197 676–1613 98–234 12–28 G43400 4340 (AISI) 0.4 C, 0.7 Mn, 0.25 Si, 0.8 Cr, 1.8 Ni, 0.25 Mo 896–1572 130–228 979–1958 142–284 11–21 K21590 A387 (22...
Abstract
This chapter addresses the issue of stress-corrosion cracking (SCC) in carbon and low-alloy steels. It discusses crack initiation, propagation, and fracture in aqueous chloride, hydrogen sulfide, sulfuric acid, hydroxide, ammonia, nitrate, ethanol, methanol, and hydrogen gas environments. It explains how composition and microstructure influence SCC, as do mechanical properties such as strength and fracture toughness and processes such as welding and cold work. It also discusses the role of materials selection and best practices for welding.