ASTM B935-2005(2009)e1 Standard Guide for Steam Treatment of Ferrous Powder Metallurgy (P M) Materials《黑色粉末冶金(P M)材料蒸汽处理的标准指南》.pdf
《ASTM B935-2005(2009)e1 Standard Guide for Steam Treatment of Ferrous Powder Metallurgy (P M) Materials《黑色粉末冶金(P M)材料蒸汽处理的标准指南》.pdf》由会员分享,可在线阅读,更多相关《ASTM B935-2005(2009)e1 Standard Guide for Steam Treatment of Ferrous Powder Metallurgy (P M) Materials《黑色粉末冶金(P M)材料蒸汽处理的标准指南》.pdf(3页珍藏版)》请在麦多课文档分享上搜索。
1、Designation: B935 05 (Reapproved 2009)1Standard Guide forSteam Treatment of Ferrous Powder Metallurgy (PM)Materials1This standard is issued under the fixed designation B935; the number immediately following the designation indicates the year oforiginal adoption or, in the case of revision, the year
2、of last revision. A number in parentheses indicates the year of last reapproval. Asuperscript epsilon () indicates an editorial change since the last revision or reapproval.1NOTEP/M was changed to PM editorially in December 2009.1. Scope1.1 This guide is intended as an aid in establishing andmaintai
3、ning a procedure for the steam treatment, also referredto as steam blackening, of sintered ferrous PM materials andthe appropriate use and evaluation of these materials. Addi-tional information concerning the effect of this process onferrous PM material properties is contained in Appendix X1.1.2 Thi
4、s standard does not purport to address all of thesafety concerns, if any, associated with its use. It is theresponsibility of the user of this standard to establish appro-priate safety and health practices and determine the applica-bility of regulatory limitations prior to use.2. Summary of Guide2.1
5、 A normal sequence of steps is: (1) preheat the load; (2)introduce a superheated steam-rich atmosphere; (3) heat theload to the processing temperature and maintain the tempera-ture for the duration of the processing cycle; and (4) cool theload to a temperature suitable for handling. This process wil
6、lproduce a layer of black iron oxide (magnetite) on the surfaceof the parts and on the surfaces of the interconnected porosityby the reaction.3Fe 1 4H2O gas!Fe3O41 4H2gas!3. Significance and Use3.1 The performance and quality of steam-treated materialsdepends upon the surface cleanliness of the mate
7、rial prior tosteam treatment and the adequacy of the processing. Steamtreatment can be used as a decorative coating, producing ablue-gray to a blue-black appearance. It can reduce thesusceptibility of ferrous PM materials to further oxidation andcorrosion, thus providing better shelf life. More sign
8、ificantly,improvements in apparent hardness, compressive strength,wear characteristics, and some mechanical properties (seeAppendix X1) can be observed due to steam treatment. Thehardness of magnetite (Fe3O4) formed during steam treatmentis typically equivalent to 50 HRC, and when present in sintere
9、dmaterials, their wear resistance can be improved significantly.Steam treatment is also used to seal parts or provide a basematerial for additional coatings. Steam treated ferrous PMmaterials are used in many industries, including automotive,marine, home appliances and lawn and garden applications.4
10、. Apparatus4.1 The material can be processed in either a batch-typefurnace or a continuous belt-type furnace. The furnace must becapable of heating the load, maintaining it at the processingtemperature, and maintaining a steam atmosphere free of airleaks. Both batch type and continuous furnaces must
11、 meet thesame criteria described in the following procedure section.When both batch and continuous furnaces are operated to meetthe same processing times, temperatures, and atmosphere, theresults should be similar.5. Procedure5.1 Place the load in the furnace and heat in air until thetemperature of
12、the entire load is above 100C (212F) withoutexceeding 430C (800F).5.2 Once the load is preheated, introduce superheated steaminto the furnace until all of the air is purged from the furnaceor processing zone. This steam atmosphere must be maintaineduntil the processing cycle is complete.NOTE 1The te
13、mperature of the parts must be in excess of 100C(212F) before the superheated steam is introduced. If it is not, water willcondense on the parts and rust spots will form. The temperature must notexceed 430C (800F) before the superheated steam is introduced or theparts will be covered with a smooth e
14、ven coating of rust caused by air inthe furnace atmosphere.5.3 Raise the temperature of the furnace to the processingtemperature of between 430C (800F) and 590C (1100F)while maintaining the atmosphere of superheated steam.1This guide is under the jurisdiction of ASTM Committee B09 on MetalPowders an
15、d Metal Powder Products and is the direct responsibility of Subcom-mittee B09.05 on Structural Parts.Current edition approved Nov. 1, 2009. Published December 2009. Originallyapproved in 2005. Last previous edition approved in 2005 as B935 05. DOI:10.1520/B0935-05R09E01.1Copyright ASTM International
16、, 100 Barr Harbor Drive, PO Box C700, West Conshohocken, PA 19428-2959, United States.NOTE 2The processing temperature depends on the desired proper-ties. Lower temperatures result in deeper oxide penetration while highertemperatures produce a thicker surface oxide layer.NOTE 3Processes that decreas
17、e the amount or the size of theinterconnected porosity such as copper infiltration, grinding, vibratoryfinishing, sizing, machining, burnishing, shot peening, or polishing willreduce the effectiveness of the steam treatment by limiting the ability ofsteam to penetrate the part. Increasing the densit
18、y reduces the pore size,which reduces penetration unless sufficiently large porosity is available tomaintain a pathway for the steam. Copper infiltration also coats thesurface of iron particles with copper, which prevents steam from reactingwith the iron and decreases the effectiveness of steam trea
19、tment as asurface treatment.5.4 Hold the load at the processing temperature for 30 to120 min depending on the desired properties. Steam treatmentbuilds an oxide layer on pore surfaces and gradually restrictsthe access of the steam to the interior of the part. Highertemperature causes the metal to be
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