
【国外标准】 Standard Test Method for Facesheet Properties of Sandwich Constructions by Long Beam Flexure
本网站 发布时间:
2024-02-28
开通会员免费在线看70000余条国内标准,赠送文本下载次数,单本最低仅合13.3元!还可享标准出版进度查询、定制跟踪推送、标准查新等超多特权!  
查看详情>>

适用范围:
5.1 Flexure tests on flat sandwich construction may be conducted to determine the sandwich flexural stiffness, the core shear strength, and shear modulus, or the facesheets’ compressive and tensile strengths. Tests to evaluate core shear strength may also be used to evaluate core-to-facesheet bonds.5.2 This test method is limited to obtaining the strength and stiffness of the sandwich panel facesheets, and to obtaining load-deflection data for use in calculating sandwich beam flexural and shear stiffness using Practice D7250/D7250M. Due to the curvature of the flexural test specimen when loaded, facesheet compression strength from this test may not be equivalent to the facesheet compression strength of sandwich structures subjected to pure edgewise (in-plane) compression.5.3 Core shear strength and shear modulus are best determined in accordance with Test Method C273/C273M provided bare core material is available. Test Method C393/C393M may also be used to determine core shear strength. Practice D7250/D7250M may be used to calculate the flexural and shear stiffness of sandwich beams.5.4 This test method can be used to produce facesheet strength data for structural design allowables, material specifications, and research and development applications; it may also be used as a quality control test for bonded sandwich panels.5.5 Factors that influence the facesheet strength and shall therefore be reported include the following: facesheet material, core material, adhesive material, methods of material fabrication, facesheet stacking sequence and overall thickness, core geometry (cell size), core density, adhesive thickness, specimen geometry, specimen preparation, specimen conditioning, environment of testing, specimen alignment, loading procedure, speed of testing, facesheet void content, adhesive void content, and facesheet volume percent reinforcement. Further, facesheet strength may be different between precured/bonded and co-cured facesheets of the same material.NOTE 2: Concentrated forces on beams with thin facesheets and low density cores can produce results that are difficult to interpret, especially close to the failure point. Wider loading blocks and rubber pressure pads may assist in distributing the forces.NOTE 3: To ensure that simple sandwich beam theory is valid, a good rule of thumb for the four-point bending test is the support span length divided by the sandwich thickness should be greater than 20 (S/d > 20) with the ratio of facesheet thickness to core thickness less than 0.1 (t/c < 0.1).1.1 This test method covers determination of facesheet properties of flat sandwich constructions subjected to flexure in such a manner that the applied moments produce curvature of the sandwich facesheet planes and result in compressive and tensile forces in the facesheets. Permissible core material forms include those with continuous bonding surfaces (such as balsa wood and foams) as well as those with discontinuous bonding surfaces (such as honeycomb).1.2 Units—The values stated in either SI units or inch-pound units are to be regarded separately as standard. The values stated in each system are not necessarily exact equivalents; therefore, to ensure conformance with the standard, each system shall be used independently of the other, and values from the two systems shall not be combined.1.2.1 Within the text, the inch-pound units are shown in brackets.1.3 This standard does not purport to address all of the safety concerns, if any, associated with its use. It is the responsibility of the user of this standard to establish appropriate safety, health, and environmental practices and determine the applicability of regulatory limitations prior to use.NOTE 1: Alternate procedures for determining the compressive strength of unidirectional polymer matrix composites materials in a sandwich beam configuration may be found in Test Method D5467/D5467M.1.4 This international standard was developed in accordance with internationally recognized principles on standardization established in the Decision on Principles for the Development of International Standards, Guides and Recommendations issued by the World Trade Organization Technical Barriers to Trade (TBT) Committee.
标准号:
ASTM D7249/D7249M-20
标准名称:
Standard Test Method for Facesheet Properties of Sandwich Constructions by Long Beam Flexure
英文名称:
Standard Test Method for Facesheet Properties of Sandwich Constructions by Long Beam Flexure标准状态:
Active-
发布日期:
-
实施日期:
出版语种:
- 推荐标准
- ASTM B1-13(2018) Standard Specification for Hard-Drawn Copper Wire
- ASTM B100-20 Standard Specification for Wrought Copper-Alloy Bearing and Expansion Plates and Sheets for Bridge and Other Structural Use
- ASTM B1002-16(2020) Standard Specification for Refined Indium
- ASTM B1003-16(2023) Standard Specification for Seamless Copper Tube for Linesets
- ASTM B1004-16(2022) Standard Practice for Contact Performance Classification of Electrical Connection Systems
- ASTM B1005-17(2023) Standard Specification for Copper-Clad Aluminum Bar for Electrical Purposes (Bus Bar)
- ASTM B1008-18 Standard Test Method for Stress-Strain Testing for Overhead Electrical Conductors
- ASTM B1010/B1010M-19 Standard Specification for Copper-Clad Steel Electrical Conductor for Tracer Wire Applications
- ASTM B1011/B1011M-22 Standard Specification for Cobalt Alloy Spring Wire
- ASTM B1013-22 Standard Specification for High Fluidity (HF) Zinc-Aluminum Alloy Thin Wall Die Castings
- ASTM B1014-20 Standard Specification for Welded Copper and Copper Alloy Condenser and Heat Exchanger Tubes with a Textured Surface(s)
- ASTM B1019-21 Standard Test Method for Determination of Surface Oxides on Copper Rod(for Electrical Purposes)
- ASTM B1020/B1020M-22 Standard Specification for Seamless Nickel Alloy Mechanical Tubing and Hollow Bar
- ASTM B1021-21 Standard Test Method for Peel Resistance of Metal Sheets Joined by High Strength Bonds
- ASTM B1022-22 Standard Specification for Zinc-Aluminum-Magnesium Alloys in Ingot Form for Coating Steel Sheet by the Hot-Dip Process