SAE AIR 1228A-2009 Standard Impulse Machine Equipment and Operation《标准脉冲发送机设备和操作》.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 theref
2、rom, is the sole responsibility of the user.” SAE reviews each technical report at least every five years at which time it may be reaffirmed, revised, or cancelled. SAE invites your written comments and suggestions. Copyright 2008 SAE International All rights reserved. No part of this publication ma
3、y 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: 724-776-4970 (outside USA)
4、Fax: 724-776-0790 Email: CustomerServicesae.org SAE WEB ADDRESS: http:/www.sae.orgSAE values your input. To provide feedback on this Technical Report, please visit http:/www.sae.org/technical/standards/AIR1228AAEROSPACEINFORMATIONREPORTAIR1228A Issued 1972-11 Reaffirmed 2007-08 Revised 2009-01 Super
5、seding AIR1228 (R) Standard Impulse Machine Equipment and Operation RATIONALEThis document has been revised to describe current technology in impulse machine design. 1. SCOPE This SAE Aerospace Information Report (AIR) establishes the specifications and descriptions of the critical components and op
6、erational guidelines for the standard hydraulic impulse machine for testing hydraulic hose assemblies, tubing, coils, fittings and similar fluid system components. This revision to the AIR1228 provides a description of a system that meets the requirements for specifications including: AS603, AS4265,
7、 and ARP1383. This impulse system utilizes closed loop servo control with specifically generated command signal waveforms.Data accuracy and integrity are emphasized in this revision. Knowing the uncertainty of the pressure measurement is important whether using a resonator tube system, as described
8、in the original release of this document, or a closed-loop systems as described in this release. The accuracy of the data measurement system and consistency of the pressure waveform are fundamental to test validity, regardless of the system type. This is discussed in more detail in Section 5.The sta
9、ndard impulse test system is established for the following purposes: A. As referee in the event of conflicting data from two or more nonstandard impulse machines. Such a referee system might be built by an impartial testing activity. B. A design guide for future test systems being built by manufactu
10、rers and users, or the upgrading of present systems. C. A design guide for higher pressure test systems or special purpose machines being designed. It is not the intention of this document to obsolete present resonator type machines. The specification for the resonator type machine is available in t
11、he original release of this document. A simple block diagram of the revised system is shown in Figure 1. Copyright SAE International Provided by IHS under license with SAENot for ResaleNo reproduction or networking permitted without license from IHS-,-,-SAE AIR1228A Page 2 of 33FIGURE 1 - SIMPLE BLO
12、CK DIAGRAM OF SERVO CONTROLLED IMPULSE SYSTEM The simplified block diagram shown in Figure 1 does not use a resonator tube as in the original release of the specification. To eliminate undesired resonances the hydraulic system is as closely coupled as possible. In this design, the pressure waveform
13、is created in closed loop proportional control via the command signal generated by the test controller system. If the test controller is a computer with an impulse specific software application, it is possible to control all parameters ofthe specified waveform, within the capabilities of the hydraul
14、ic system. These parameters include things such as rise rate, damping, secondary oscillation amplitude, etc. In a resonator tube system, it is difficult to make adjustments to these parameters. 2. REFERENCES 2.1 Applicable Documents 1. Keller, George R., Hydraulic System Analysis, Penton/IPC, 1969 2
15、. Merritt, Herbert E., Hydraulic Control Systems, John Wiley and Sons, Inc., 19673. DAzzo and Houpis, Linear Control System Analysis and Design, 1981 4. Nelson and Englund “Proposed revisions to AIR1228, AS4265, and AIR4298“, SAE G-3 Conference, 3/14/2005 5. Mills Jr., Blake D., “The Fluid Column”,
16、American Journal of Physics, April 1960 Copyright SAE International Provided by IHS under license with SAENot for ResaleNo reproduction or networking permitted without license from IHS-,-,-SAE AIR1228A Page 3 of 332.2 U.S. Government Publications Available from US Government Printing Office, 732 Nor
17、th Capitol Street, NW, Washington, DC 20401, 202.512.0000, http:/www.gpo.gov/.MIL-PRF-5606 Hydraulic Fluid, Petroleum Base MIL-PRF-83282 Hydraulic Fluid, Fire Resistant, Synthetic Hydrocarbon Base MIL-PRF-87257 Hydraulic Fluid, Fire Resistant; Low Temperature, Synthetic Hydrocarbon Base, Aircraft an
18、d Missile2.3 Definitions General: The impulse test system can be divided into four subsystems. HYDRAULIC SYSTEM The hydraulic system provides the power for generating the impulse pressure waveform. Hydraulic components include the hydraulic power supply (HPS), supply and return lines, accumulators,
19、servovalve, intensifier, and test manifold as described in Figure 2. If the test pressure is higher than the HPS output, the system utilizes an intensifier. If the test pressure is lower than the HPS output, the system operates without an intensifier (also called straight servovalve). The system sho
20、wn in Figure 2 can be switched to either mode with three manual valves. This document will use “servovalve“ to represent all types of valves that can be used in a proportional manner for pressure testing. CONTROL SYSTEM The control system includes the test controller and the servo-controller in Figu
21、re 1. Physically this can be one integrated unit, or it can be comprised of several interconnected subsystems. This system controls the HPS, generates the pressure waveform signal in accordance with standard specifications, closes the control pressure control loop (servo-controller), and ensures pre
22、ssures are within the test specification.INSTRUMENTATION SYSTEM The instrumentation system consists of the pressure transducers, cabling, signal conditioning, amplifiers and filters used to convert the pressure measurement into electrical signals as shown in Figure 3. The amplifiers and signal condi
23、tioning may be integral with the pressure transducers. When using computerized data acquisition, the analog-to-digital converters and associated software application are also considered part of the instrumentation system. TEST ENCLOSURE OR ENVIRONMENTAL CHAMBER The test enclosure provides a safety b
24、arrier for testing high pressure specimens. When required, the enclosure may be an environmental chamber capable of controlling the test temperatures of the air surrounding the test specimens (and the fluid temperatures inside the test articles) within the parameters of the test document.3. DETAILED
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