SAE ARP 982D-2007 Minimizing Stress-Corrosion Cracking in Wrought Titanium Alloy Products《钛合金制品中断裂的最小化金属超应力引起的腐蚀》.pdf
《SAE ARP 982D-2007 Minimizing Stress-Corrosion Cracking in Wrought Titanium Alloy Products《钛合金制品中断裂的最小化金属超应力引起的腐蚀》.pdf》由会员分享,可在线阅读,更多相关《SAE ARP 982D-2007 Minimizing Stress-Corrosion Cracking in Wrought Titanium Alloy Products《钛合金制品中断裂的最小化金属超应力引起的腐蚀》.pdf(4页珍藏版)》请在麦多课文档分享上搜索。
1、_ SAE Technical Standards Board Rules provide that: “This report is published by SAE to advance the state of technical and engineering sciences. The use of this report is entirely voluntary, and its applicability and suitability for any particular use, including any patent infringement arising there
2、from, is the sole responsibility of the user.” SAE reviews each technical report at least every five years at which time it may be revised, reaffirmed, stabilized, or cancelled. SAE invites your written comments and suggestions. Copyright 2016 SAE International All rights reserved. No part of this p
3、ublication may be reproduced, stored in a retrieval system or transmitted, in any form or by any means, electronic, mechanical, photocopying, recording, or otherwise, without the prior written permission of SAE. TO PLACE A DOCUMENT ORDER: Tel: 877-606-7323 (inside USA and Canada) Tel: +1 724-776-497
4、0 (outside USA) Fax: 724-776-0790 Email: CustomerServicesae.org SAE WEB ADDRESS: http:/www.sae.org SAE values your input. To provide feedback on this Technical Report, please visit http:/www.sae.org/technical/standards/ARP982D AEROSPACE RECOMMENDED PRACTICE ARP982 REV. D Issued 1967-11 Revised 2007-
5、12Reaffirmed 2016-09 Superseding ARP982C Minimizing Stress-Corrosion Cracking in Wrought Titanium Alloy Products RATIONALE ARP982D has been reaffirmed to comply with the SAE five-year review policy. 1. SCOPE Primarily to provide recommendations concerning minimizing stress-corrosion cracking in wrou
6、ght titanium alloy products. 1.1 The detailed recommendations are based on laboratory experience and reflect those design practices and fabrication procedures which should obviate in-service stress-corrosion cracking of wrought titanium alloy products. 1.2 It must be emphasized that while stress-cor
7、rosion cracking in service has been observed, the chemical environmental conditions have, in all instances, been unusual and, although it is possible to produce stress-corrosion cracking of titanium alloys under more common conditions as discussed in these recommendations, there have been few, if an
8、y, failures in such environments. 2. APPLICABLE DOCUMENTS The following publications form a part of this document to the extent specified herein. The latest issue of SAE publications shall apply. The applicable issue of other publications shall be the issue in effect on the date of the purchase orde
9、r. In the event of conflict between the text of this document and references cited herein, the text of this document takes precedence. Nothing in this document, however, supersedes applicable laws and regulations unless a specific exemption has been obtained. 2.1 SAE Publications Available from SAE
10、International, 400 Commonwealth Drive, Warrendale, PA 15096-0001, Tel: 877-606-7323 (inside USA and Canada) or 724-776-4970 (outside USA), www.sae.org. ARP1795 Stress Corrosion of Titanium Alloys, Effect of Cleaning Agents on Aircraft Engine Materials SAE INTERNATIONAL ARP982D Page 2 of 4 3. GENERAL
11、 All metal alloy systems are subject to stress-corrosion cracking under appropriate conditions; titanium alloys are no exception to this rule. Stress-corrosion failures of wrought titanium alloy parts are possible if the following combination of factors is met: a. Presence of a sustained high surfac
12、e tensile stress developed as a result of assembly stresses or residual stresses due to heat treatment or forming (or plane strain produced by the tensile stress concentration at the root of a pre-existing crack), and b. Presence of environmental conditions (media, temperature, stress, time) specifi
13、c to the material under consideration. 3.1 There are several types of environments in which stress cracking of titanium alloy parts may occur. These environments and the alloys currently known to be susceptible to cracking in each type are: a. Environments in which both initiation and propagation ma
14、y occur at low stress concentration factors; that is, cracking of smooth machined components may occur at sufficiently high applied stress. 1. Alkali halide salts (and halide salts of some other metal) above 500 F (260 C) (oxygen and water vapor are contributing factors). In general, all commerciall
15、y available titanium alloys are believed to be susceptible to hot salt cracking. 2. Silver, cadmium, and mercury have been found to promote cracking in titanium alloys; temperature (even room) and stress limits for cracking have not been firmly established and caution should therefore be exercised.
16、3. Methyl alcohol (methanol). Susceptibility of titanium to SCC in methanol is the greatest at room temperature 68 F (20 C) with increasing temperatures resulting in decreased SCC susceptibility. Time to cracking is decreased by the presence of halides, acidification, or presence of strong oxidizers
17、. A minimum water content of 3 wt. % is sufficient to prevent SCC for most titanium alloys during sustained exposure to methanol solutions. 4. Nitrogen tetroxide (N2O4). Titanium 6Al-4V tankage holding N2O4with no measurable amounts of NO in a temperature range of 86 to 167 F (30 to 75 C) has failed
18、 by stress corrosion. Other titanium alloys are also susceptible. Cracking is inhibited by presence of 0.4 to 0.8 % NO in propellant grade N2O4. 5. Red fuming nitric acid caused one of the early stress-corrosion problems encountered with titanium. It has been determined that red fuming nitric acid w
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