SAE MA 2003-1981 Rotary Flexure Testing of Hydraulic Tubing Joints and Fittings《液压管接头和配件的旋转弯曲试验》.pdf
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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 2015 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/MA2003 AEROSPACE STANDARD MA2003 Issued 1981-12 Reaffirmed 2015-08 Rotary Flexure
5、 Testing of Hydraulic Tubing Joints and Fittings RATIONALE MA2003 has been reaffirmed to comply with the SAE five-year review policy. INTRODUCTIONThis document was prepared following an ISO/TC20/SC10 agreement to describe a flexure fatigue test procedure which allows evaluation of various tube fitti
6、ng designs or material combinations. This evaluation is performed by fatigue testing the tube joints over a spectrum of bending stresses and then plotting the cycles to failure. This test procedure is intended for comparative evaluation of fatigue characteristics only, the qualification test procedu
7、re for tube fittings being specified in MA 2005. Other test methods may be used as long as they develop the same data as the rotary flexure test.1. SCOPE:This standard establishes flexure test procedures to determine and classify the fatigue strengths of reconnectable or permanent hydraulic tube joi
8、nts.The procedure is intended for conducting flexure tests of fittings and joints with high strength hydraulic tubes of various alloys such as corrosion resistant steel, Nimonic, titanium and aluminum alloy hydraulic tube for use on commercial and military aircraft.A mean stress is applied by holdin
9、g system pressure in the specimens and then flexing in a rotary bending test machine. This test method conforms with ARP 1185 for inch-dimensioned tubing and fittings.2. REFERENCES:ISO 2964 Aircraft Tubing Outside Diameters and Thicknesses, Metric DimensionsMA 2005 Tube Fittings, Fluid Systems Separ
10、able, General Specification forARP 1185 Flexure Testing of Hydraulic Tubing Joints and FittingsSAE INTERNATIONAL MA2003 Page 2 of 11 3. REQUIREMENTS:3.1 Flexure Test Device:The test device should be capable of testing in-line or bulkhead union test specimens and other configurations such as elbows a
11、nd tees.The rotary flexure test device should be similar to that shown in Figure 1. Each rotary flexure test device should be capable of testing one specimen, but several specimens may be tested in parallel at one time.The device should be capable of constantly maintaining the required operating pre
12、ssure during the test. The test fluid shall be water or system fluid (working fluid) unless otherwise specified by the responsible authorities. A typical pressurization and automatic shutdown system is shown in Figure 2. The shutdown should be automatic in the event of failure or pressure drop. The
13、device should be capable of testing at controlled constant temperature, if specified by the procuring agency. The tailstock of the test device should be designed to permit alignment during initial installation and specimen mounting, and to serve as a pressure manifold. The rotating headstock should
14、have a low-friction, self-aligning bearing and should be designed to permit total deflections of up to 25 mm, and a constant rotational frequency within the range of 1500 to 3600 rpm. The base should be of rigid construction.3.2 Flexure Test Specimen:The test specimen should consist of an adapter fi
15、tting (headstock end), a section of straight tubing, and a test fitting at the tailstock end. Typical test specimens are shown in Figure 3. The tubing shall be of a size and wall thickness as specified by the user or procuring agency.SAE INTERNATIONAL MA2003 Page 3 of 11 FIGURE 13.3 Specimen Length
16、and Deflection Requirements:3.3.1 Specimen Length: The length “L“ of the specimens for rotary flexure testing shall be per Table I and measured as shown in Figure 1 or 3, depending on the fitting design.TABLE I - Test Specimen LengthSAE INTERNATIONAL MA2003 Page 4 of 11 FIGURE 2FIGURE 3SAE INTERNATI
17、ONAL MA2003 Page 5 of 11 FIGURE 4FIGURE 5SAE INTERNATIONAL MA2003 Page 6 of 11 3.3.1 (Continued):NOTE: The correlation between the strain gage reading and deflection may vary for different fitting designs. For example, a flareless fitting will show some movement in the fitting, whereas a weld joint
18、will be rigid. Also, a significant difference is noted if the S/N and D/N curves are compared for different tubing such as titanium alloy and corrosion resistant steel.3.3.2 Stress Determination: The desired strain or bending stress level for each set of specimens is induced by deflection of the spe
19、cimen in the headstock. The bending stress levels for the various deflection settings should be determined prior to applying pressure, using strain gauges and procedures as outlined in Section 4. Strain gauges should always be used unless continual use of the same specimens and equipment makes setti
20、ngs by dial indicator acceptable. Such settings by dial indicator, however, must be established in prior testing by the use of strain gauges. Strain gauges should be used whenever new test equipment is used or new tubing materials or tubing walls tested. A typical stress cycle is illustrated in Figu
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