관심표준 등록 : 표준업데이트 시 알림을 받을 수 있습니다.
PDF : 직접 파일 다운로드 및 인쇄 (마이페이지 확인)
PRINT : 인쇄본 우편발송, 2~3일 소요(PDF파일 미제공)
분야 | |
---|---|
적용범위 | 1.1?This test method covers the determination of fatigue properties of nominally homogeneous materials by the use of test specimens subjected to uniaxial forces. It is intended as a guide for fatigue testing performed in support of such activities as materials research and development, mechanical design, process and quality control, product performance, and failure analysis. While this test method is intended primarily for strain-controlled fatigue testing, some sections may provide useful information for force-controlled or stress-controlled testing. 1.2?The use of this test method is limited to specimens and does not cover testing of full-scale components, structures, or consumer products. 1.3?This test method is applicable to temperatures and strain rates for which the magnitudes of time-dependent inelastic strains are on the same order or less than the magnitudes of time-independent inelastic strains. No restrictions are placed on environmental factors such as temperature, pressure, humidity, medium, and others, provided they are controlled throughout the test, do not cause loss of or change in dimension with time, and are detailed in the data report. Note 1:?The term inelastic is used herein to refer to all nonelastic strains. The term plastic is used herein to refer only to the time-independent (that is, noncreep) component of inelastic strain. To truly determine a time-independent strain the force would have to be applied instantaneously, which is not possible. A useful engineering estimate of time-independent strain can be obtained when the strain rate exceeds some value. For example, a strain rate of 1?×?10?3 sec?1 is often used for this purpose. This value should increase with increasing test temperature. 1.4?This test method is restricted to the testing of uniform gage section test specimens subjected to axial forces as shown in Fig. 1(a). Testing is limited to strain-controlled cycling. The test method may be applied to hourglass specimens, see Fig. 1(b), but the user is cautioned about uncertainties in data analysis and interpretation. Testing is done primarily under constant amplitude cycling and may contain interspersed hold times at repeated intervals. The test method may be adapted to guide testing for more general cases where strain or temperature may vary according to application specific histories. Data analysis may not follow this test method in such cases. FIG. 1?Recommended Low-Cycle Fatigue Specimens Note 1:?*?Dimension d is recommended to be 6.35 mm [0.25 in.]. See 7.1. Centers permissible. **?This diameter may be made greater or less than 2d depending on material hardness. In typically ductile materials diameters less than 2d are often employed and in typically brittle materials diameters greater than 2d may be found desirable. Note 2:?Threaded connections are more prone to inferior axial alignment and have greater potential for backlash, particularly if the connection with the grip is not properly designed. 1.5?The values stated in either SI units or inch-pound units are to be regarded separately as standard. The values stated in each system may not be exact equivalents; therefore, each system shall be used independently of the other. Combining values from the two systems may result in non-conformance with the standard. 1.6?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. |
국제분류(ICS)코드 | |
페이지수 | 16 |
Edition | 21 |
No. | 표준번호 | 표준명 | 발행일 | 상태 |
---|---|---|---|---|
1 | ASTM E606/E606M-21 | Standard Test Method for Strain-Controlled Fatigue Testing | 2021-06-01 | 표준 |
2 | ASTM E606/E606M-21 REDLINE | Standard Test Method for Strain-Controlled Fatigue Testing | 2021-06-01 | 표준 |
3 | ASTM E606/E606M-19 | Standard Test Method for Strain-Controlled Fatigue Testing | 2019-11-01 | 구판 |
4 | ASTM E606/E606M-19 REDLINE | Standard Test Method for Strain-Controlled Fatigue Testing | 2019-11-01 | 구판 |
5 | ASTM E606/E606M-19e1 | Standard Test Method for Strain-Controlled Fatigue Testing | 2019-11-01 | 구판 |
6 | ASTM E606/E606M-12 REDLINE | Standard Test Method for Strain-Controlled Fatigue Testing | 2012-06-01 | 구판 |
7 | ASTM E606/E606M-12 | Standard Test Method for Strain-Controlled Fatigue Testing | 2012-06-01 | 구판 |
관련상품이 존재하지 않습니다.
ASTM E1820-23b REDLINE - Standard Test Method for Measurement of Fracture Toughness 상세보기
ASTM E8/E8M-22 REDLINE - Standard Test Methods for Tension Testing of Metallic Materials 상세보기
ASTM E18-22 REDLINE - Standard Test Methods for Rockwell Hardness of Metallic Materials 상세보기
ASTM E466-21 REDLINE - Standard Practice for Conducting Force Controlled Constant Amplitude Axial Fatigue Tests of Metallic Materials 상세보기
IEC TS 63134:2020 - Active assisted living (AAL) use cases 상세보기
IEC 60034-5:2020 RLV - Rotating electrical machines - Part 5: Degrees of protection provided by the integral design of rotating electrical machines (IP code) - Classification 상세보기
KS B ISO TS 25740-1 - 에스컬레이터 및 무빙워크에 대한 안전요건 — 제1부: 세계공통 필수 안전요건(GESRs) 상세보기
KS B ISO TS 8100-21 - 승객 및 화물 운송용 엘리베이터 —제21부: 세계공통 필수안전요건(GESRs)을 충족하는 세계공통 안전 파라미터(GSPs) 상세보기
KS C IEC TS 62872 - 산업 시설과 스마트 그리드 사이의 산업 공정 측정, 제어 및 자동화 시스템 인터페이스 상세보기