SAE ARP 6255-2013 Aviation Lubricant Tribology Evaluator (ALTE) Method to Determine the Lubricating Capability of Gas Turbine Lubricants《用于燃气发动机油润滑能力测定的航空工业润滑剂摩擦学评估者(ALTE)方法 n》.pdf
《SAE ARP 6255-2013 Aviation Lubricant Tribology Evaluator (ALTE) Method to Determine the Lubricating Capability of Gas Turbine Lubricants《用于燃气发动机油润滑能力测定的航空工业润滑剂摩擦学评估者(ALTE)方法 n》.pdf》由会员分享,可在线阅读,更多相关《SAE ARP 6255-2013 Aviation Lubricant Tribology Evaluator (ALTE) Method to Determine the Lubricating Capability of Gas Turbine Lubricants《用于燃气发动机油润滑能力测定的航空工业润滑剂摩擦学评估者(ALTE)方法 n》.pdf(9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 reaffirmed, revised, or cancelled. SAE invites your written comments and suggestions. Copyright 2013 SAE International All rights reserved. No part of this publication m
3、ay 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: +1 724-776-4970 (outside U
4、SA) 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/ARP6255 AEROSPACE RECOMMENDED PRACTICE ARP6255 Issued 2013-03 Aviation Lubricant Tribology Ev
5、aluator (ALTE) Method to Determine the Lubricating Capability of Gas Turbine Lubricants RATIONALE The Aviation Lubricant Tribology Evaluator (ALTE) is a device designed to assess the relative lubricating performance of aviation turbine oils. The aim of the ALTE is to produce test conditions which al
6、low lubricants to be evaluated on a laboratory scale, in a timely manner without deviating greatly from representative wear mechanisms. 1. SCOPE Employing ball-on-cylinder philosophy, a non-rotating steel ball is held in a vertically mounted chuck and using an applied load is forced against an axial
7、ly mounted steel cylinder. The test cylinder is rotated at a fixed speed while being partially immersed in a lubricant reservoir. This maintains the cylinder in a wet condition and continuously transports a lubricating film of test fluid to the ball and cylinder interface. The diameter of the wear s
8、car generated on the test ball is used as a measure of the fluids lubricating properties. The apparatus can be used, by adjusting the operating conditions, to reproduce two different wear mechanisms; mild and severe wear, the ALTE therefore has the ability to assess a lubricants performance in that
9、regard. These mechanisms are described below. 1.1 Mild Wear As the test cylinder rotates, the lubricant is continuously transported to the ball and cylinder interface. At this interface under abrasive wear conditions, there is an elastohydrodynamic/boundary layer of lubricant which only allows conta
10、ct of the surface asperities of the ball and cylinder. Due to the difference in hardness of these asperities and motion of one surface relative to the other, abrasion and hence mild wear occurs (two body abrasive wear). Hard wear debris carried from the cylinder to the wear scar area can result in t
11、hree body abrasive wear of the softer surface. Abrasive wear gives a characteristic surface topography consisting of long parallel grooves in the sliding direction. 1.2 Severe Wear At a specific load, a transition from mild to severe wear can be observed, at this transition, a reduction and subseque
12、nt breakdown of boundary lubrication and film thickness occurs. This results in full metal-to-metal contact of the sliding surfaces, leading to adhesive wear and a large wear scar. If loading is increased beyond this transition point then localized welding and eventual seizure will occur. It should
13、be noted that the mild and severe wear mechanisms described above are entirely different tribological phenomena where a transition of lubricating film thickness gives a change in the amount of metal surface contact. SAE ARP6255 Page 2 of 9 2. APPLICABLE DOCUMENTS The following publications form a pa
14、rt 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 order. In the event of conflict between the text of this document and references cited herein, the
15、 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 AIR4978, Temporary Methods for Assessing the Load Carrying Capacity of Aircraft Propulsion System Lubricating Oils. 2.2 Aviation L
16、ubricant Tribology Evaluator (MkII), Operating Manual 2.3 Aviation Lubricant Tribology Evaluator (MkIII), Installation the load arm and support are arranged with a moment such that the ball load is four times that applied to the arm. The test ring is rotated and the ball is lowered to contact the ri
17、ng surface throughout the test period. SAE ARP6255 Page 3 of 9 4.3 Assessment The diameter of the wear scar generated at a given ball load is measured. Testing can be carried out to determine the load at which a specific wear scar diameter is obtained or conversely the wear scar diameter formed at a
18、 specific load. 5. APPARATUS 5.1 Aviation Lubricant Tribology Evaluator MkII or Validata MkIII to the specifications tabulated below, these values represent the required upper limit of the equipment, the ALTE however will also be required to operate below these values depending on the specific test
19、requirements. The tabulated values have been found to enable the user to determine the load required to generate a 1.5 mm wear scar diameter for the majority of current gas turbine lubricants. TABLE 2 Requirement Test Ring Rotation Speed (rpm) g149 220 Oil Temperature (C) g149 150 Oil Heater Power (
20、Watts) g149 400 Arm Load Capacity (kg) g149 25 Ball Load Capacity (kg) g149 100 Timer Range (s) 0 to g149 3600 5.2 A set of calibrated test weights (1 to 20 kg). 5.3 Desiccator, dedicated solely for this test, filled with a suitable desiccant. 5.4 A travelling microscope or an optical microscope in
21、conjunction with suitable measurement software. The microscope used should be capable of 100 times magnification (minimum) and calibrated to ensure measurement to the nearest 0.01 mm can be achieved. 5.5 Ultrasonic bath suitable for cleaning components. 6. CONSUMABLES 6.1 Test balls to the following
22、 specification: TABLE 3 Material Chrome Alloy AISI 52100 Steel Hardness 64-66 HRC Surface finish Grade 5-10 EP (extra polish) Dimensions 12.7 mm diameter The balls are described in ISO 3290-1:2008. The HRC shall be 64 to 66, a closer limit than is found in the ISO requirement. SAE ARP6255 Page 4 of
23、9 6.2 Test rings to the following specification: TABLE 4 Material SAE 8270 Steel Hardness 58-62 HRC Surface finish 0.56-0.71 m rms Metallurgical Treatment Carburized Steel Dimensions 49.25 +0.00/-0.15 mm diameter The ball and test ring specifications described above are identical to those listed in
24、ASTM D5001, Measurement of Lubricity of Aviation Turbine Fuels by Ball-On-Cylinder Lubricity Evaluator (BOCLE). The sole source of supply of test rings known to the committee at this time is: Falex Timken Test Ring, Part Number 002-560-001, Falex Corp., 1020 Airpark Drive, Sugar Grove, IL, 60554 USA
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