ASTM C1609 C1609M-2010 Standard Test Method for Flexural Performance of Fiber-Reinforced Concrete (Using Beam With Third-Point Loading)《纤维增强混凝土的弯曲性能的标准试验方法(使用三点负荷简支梁)》.pdf
《ASTM C1609 C1609M-2010 Standard Test Method for Flexural Performance of Fiber-Reinforced Concrete (Using Beam With Third-Point Loading)《纤维增强混凝土的弯曲性能的标准试验方法(使用三点负荷简支梁)》.pdf》由会员分享,可在线阅读,更多相关《ASTM C1609 C1609M-2010 Standard Test Method for Flexural Performance of Fiber-Reinforced Concrete (Using Beam With Third-Point Loading)《纤维增强混凝土的弯曲性能的标准试验方法(使用三点负荷简支梁)》.pdf(9页珍藏版)》请在麦多课文档分享上搜索。
1、Designation: C1609/C1609M 10Standard Test Method forFlexural Performance of Fiber-Reinforced Concrete (UsingBeam With Third-Point Loading)1This standard is issued under the fixed designation C1609/C1609M; the number immediately following the designation indicates theyear of original adoption or, in
2、the case of revision, the year of last revision. A number in parentheses indicates the year of lastreapproval. A superscript epsilon () indicates an editorial change since the last revision or reapproval.1. Scope*1.1 This test method evaluates the flexural performance offiber-reinforced concrete usi
3、ng parameters derived from theload-deflection curve obtained by testing a simply supportedbeam under third-point loading using a closed-loop, servo-controlled testing system.1.2 This test method provides for the determination offirst-peak and peak loads and the corresponding stressescalculated by in
4、serting them in the formula for modulus ofrupture given in Eq 1. It also requires determination of residualloads at specified deflections, the corresponding residualstrengths calculated by inserting them in the formula formodulus of rupture given in Eq 1 (see Note 1). It provides fordetermination of
5、 specimen toughness based on the area underthe load-deflection curve up to a prescribed deflection (seeNote 2) and the corresponding equivalent flexural strengthratio.NOTE 1Residual strength is not a true stress but an engineering stresscomputed using simple engineering bending theory for linear ela
6、sticmaterials and gross (uncracked) section properties.NOTE 2Specimen toughness expressed in terms of the area under theload-deflection curve is an indication of the energy absorption capabilityof the particular test specimen, and its magnitude depends directly on thegeometry of the test specimen an
7、d the loading configuration.1.3 This test method utilizes two preferred specimen sizesof 100 by 100 by 350 mm 4 by 4 by 14 in. tested on a 300 mm12 in. span, or 150 by 150 by 500 mm 6 by 6 by 20 in.tested on a 450 mm 18 in. span. A specimen size differentfrom the two preferred specimen sizes is perm
8、issible.1.4 UnitsThe values stated in either SI units or inch-pound units are to be regarded separately as standard. Thevalues 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-co
9、nformance with the standard.1.5 This standard does not purport to address all of thesafety concerns, if any, associated with its use. It is theresponsibility of the user of this standard to establish appro-priate safety and health practices and determine the applica-bility of regulatory limitations
10、prior to use.2. Referenced Documents2.1 ASTM Standards:2C31/C31M Practice for Making and Curing Concrete TestSpecimens in the FieldC42/C42M Test Method for Obtaining and Testing DrilledCores and Sawed Beams of ConcreteC78 Test Method for Flexural Strength of Concrete (UsingSimple Beam with Third-Poi
11、nt Loading)C125 Terminology Relating to Concrete and Concrete Ag-gregatesC172 Practice for Sampling Freshly Mixed ConcreteC192/C192M Practice for Making and Curing ConcreteTest Specimens in the LaboratoryC823 Practice for Examination and Sampling of HardenedConcrete in ConstructionsC1140 Practice fo
12、r Preparing and Testing Specimens fromShotcrete Test Panels3. Terminology3.1 DefinitionsThe terms used in this test method aredefined in Terminology C125.3.2 Definitions of Terms Specific to This Standard:3.2.1 end-point deflection, nthe deflection value on theload-deflection curve equal to1150 of t
13、he span length, or alarger value as specified at the option of the specifier of tests.3.2.2 first-peak load, P1, nthe load value at the first pointon the load-deflection curve where the slope is zero.3.2.3 first-peak deflection, d1, nthe net deflection value onthe load-deflection curve at first-peak
14、 load.3.2.4 first-peak strength f1, nthe stress value obtainedwhen the first-peak load is inserted in the formula for modulusof rupture given in Eq 1.3.2.5 load-deflection curve, nthe plot of load versus netdeflection of a flexural beam specimen loaded to the end-pointdeflection.1This test method is
15、 under the jurisdiction of ASTM Committee C09 onConcrete and Concrete Aggregates and is the direct responsibility of SubcommitteeC09.42 on Fiber-Reinforced Concrete.Current edition approved March 1, 2010. Published April 2010. Originallyapproved in 2005. Last previous edition approved in 2007 as C16
16、09/C1609M07.DOI: 10.1520/C1609_C1609M-10.2For referenced ASTM standards, visit the ASTM website, www.astm.org, orcontact ASTM Customer Service at serviceastm.org. For Annual Book of ASTMStandards volume information, refer to the standards Document Summary page onthe ASTM website.1*A Summary of Chang
17、es section appears at the end of this standard.Copyright ASTM International, 100 Barr Harbor Drive, PO Box C700, West Conshohocken, PA 19428-2959, United States.3.2.6 net deflection, nthe deflection measured at mid-spanof a flexural beam specimen exclusive of any extraneouseffects due to seating or
18、twisting of the specimen on itssupports or deformation of the support and loading system.3.2.7 peak load, PP, nthe maximum load on the load-deflection curve.3.2.8 peak-load deflection, dP, nthe net deflection valueon the load-deflection curve at peak load.3.2.9 peak strength, fP, nthe stress value o
19、btained whenthe peak load is inserted in the formula for modulus of rupturegiven by Eq 1.3.2.10 Dnominal depth of the beam specimen in mm.NOTE 3To simplify nomenclature, the nominal beam depth is shownin units of mm for both the SI and inch-pound version of this test method.3.2.11 Lspan length or di
20、stance between the supports.3.2.12 residual load, P600D, nthe load value correspond-ing to a net deflection of L/600 for a beam of nominal depth D.3.2.13 residual load, P150D, nthe load value correspondingto a net deflection of L/150 for a beam of nominal depth D.3.2.14 residual strength, f600D, nth
21、e stress value obtainedwhen the residual load P600Dis inserted in the formula formodulus of rupture given in Eq 1.3.2.15 residual strength, f150D, nthe stress value obtainedwhen the residual load P150Dis inserted in the formula formodulus of rupture given in Eq 1.3.2.16 specimen toughness, T150D, nt
22、oughness of beamspecimen of nominal depth D at a net deflection of L/150.3.2.17 equivalent flexural strength ratio, RT, 150D, nthevalue obtained when the specimen toughness T150Dis inserted inEq 3.NOTE 4The equivalent flexural strength ratio is calculated as the ratioof the weighted equivalent load
23、up to a net deflection of L/150 over thefirst-peak load multiplied by 100. The RT, 150150value is equivalent to theRe,3value defined in the Technical Report No. 34 of the Concrete Society.34. Summary of Test Method4.1 Molded or sawn beam specimens having a squarecross-section of fiber-reinforced con
24、crete are tested in flexureusing a third-point loading arrangement similar to that speci-fied in Test Method C78 but incorporating a closed-loop,servo-controlled testing system and roller supports that are freeto rotate on their axes. Load and net deflection are monitoredand recorded to an end-point
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