
【国外标准】 Standard Practice for Determining Sandwich Beam Flexural and Shear Stiffness
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 constructions may be conducted to determine the sandwich flexural stiffness, the core shear strength and shear modulus, or the facing’s compressive and tensile strengths. Tests to evaluate core shear strength may also be used to evaluate core-to-facing bonds.5.2 This practice provides a standard method of determining sandwich flexural and shear stiffness and core shear modulus using calculations involving measured deflections of sandwich flexure specimens. Tests can be conducted on short specimens and on long specimens (or on one specimen loaded in two ways), and the flexural stiffness, shear rigidity, and core shear modulus can be determined by simultaneous solution of the complete deflection equations for each span or each loading. If the facing modulus values are known, a short span beam can be tested and the calculated bending deflection subtracted from the beam's total deflection. This gives the shear deflection from which the transverse shear modulus can be determined.NOTE 1: Core shear strength and shear modulus are best determined in accordance with Test Method C273, provided bare core material is available.NOTE 2: For cores with high shear modulus, the shear deflection will be quite small and ordinary errors in deflection measurements will cause considerable variations in the calculated shear modulus.NOTE 3: To ensure that simple sandwich beam theory is valid, a good rule of thumb for a four-point bending test is the span length divided by the sandwich thickness should be greater than 20 (L1/d > 20) with the ratio of facing thickness to core thickness less than 0.1 (t/c < 0.1).1.1 This practice covers determination of the flexural and transverse shear stiffness properties of flat sandwich constructions subjected to flexure in such a manner that the applied moments produce curvature of the sandwich facing planes. 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). The calculation methods in this practice are limited to sandwich beams exhibiting linear force-deflection response. This practice uses test results obtained from Test Methods C393/C393M or D7249/D7249M, or both.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.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 D7250/D7250M-20
标准名称:
Standard Practice for Determining Sandwich Beam Flexural and Shear Stiffness
英文名称:
Standard Practice for Determining Sandwich Beam Flexural and Shear Stiffness标准状态:
Active-
发布日期:
-
实施日期:
出版语种:
- 推荐标准
- AS/NZS 2341.20:1998 Methods of testing bitumen and related roadmarking products Determination of sieve residue for bituminous materials
- AS/NZS 4266.20:1996 Reconstituted wood-based panels - Methods of test Determination of resistance to surface abrasion (Taber abrasion test)
- AS/NZS 4276.20:2003 (R2013) Water microbiology Examination for coagulase positive staphylococci, including Staphylococcus aureus, by membrane filtration
- AS/NZS 60079.20.1:2012 Explosive atmospheres Material characteristics for gas and vapour classification - Test methods and data
- AS/NZS 60695.11.20:2001/Amdt 1:2004 Fire hazard testing Test flames - 500 W flame test methods
- AS/NZS 60745.2.20:2003 Hand-held motor-operated electric tools - Safety - Particular requirements for band saws
- ASTM 51026-23 Standard Practice for Using the Fricke Dosimetry System
- ASTM 52303-24 Standard Guide for Absorbed-Dose Mapping in Radiation Processing Facilities
- ASTM A1-00(2018) Standard Specification for Carbon Steel Tee Rails
- ASTM A1000/A1000M-17(2023) Standard Specification for Steel Wire, Carbon and Alloy Specialty Spring Quality
- ASTM A1001-18 Standard Specification for High-Strength Steel Castings in Heavy Sections
- ASTM A1002-16(2020) Standard Specification for Castings, Nickel-Aluminum Ordered Alloy
- ASTM A1004/A1004M-99(2018) Standard Practice for Establishing Conformance to the Minimum Expected Corrosion Characteristics of Metallic, Painted-Metallic, and Nonmetallic-Coated Steel Sheet Intended for Use as Cold Formed Framing Members
- ASTM A1009-18 Standard Specification for Soft Magnetic MnZn Ferrite Core Materials for Transformer and Inductor Applications
- ASTM A101-04(2019) Standard Specification for Ferrochromium