ASTM C1399 C1399M-2010(2015) Standard Test Method for Obtaining Average Residual-Strength of Fiber-Reinforced Concrete《获得纤维增强混凝土的平均残余强度的标准试验方法》.pdf
《ASTM C1399 C1399M-2010(2015) Standard Test Method for Obtaining Average Residual-Strength of Fiber-Reinforced Concrete《获得纤维增强混凝土的平均残余强度的标准试验方法》.pdf》由会员分享,可在线阅读,更多相关《ASTM C1399 C1399M-2010(2015) Standard Test Method for Obtaining Average Residual-Strength of Fiber-Reinforced Concrete《获得纤维增强混凝土的平均残余强度的标准试验方法》.pdf(6页珍藏版)》请在麦多课文档分享上搜索。
1、Designation: C1399/C1399M 10 (Reapproved 2015)Standard Test Method forObtaining Average Residual-Strength of Fiber-ReinforcedConcrete1This standard is issued under the fixed designation C1399/C1399M; the number immediately following the designation indicates theyear of original adoption or, in the c
2、ase 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 covers the determination of residualstrength of a fiberreinforced concr
3、ete test beam. The averageresidual strength is computed using specified beam deflectionsthat are obtained from a beam that has been cracked in astandard manner. The test provides data needed to obtain thatportion of the loaddeflection curve beyond which a significantamount of cracking damage has occ
4、urred and it provides ameasure of postcracking strength, as such strength is affectedby the use of fiberreinforcement.1.2 The values stated in either SI units or inch-pound unitsare to be regarded separately as standard. The values stated ineach system may not be exact equivalents; therefore, eachsy
5、stem shall be used independently of the other. Combiningvalues from the two systems may result in non-conformancewith the standard.1.3 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 establi
6、sh appro-priate safety and health practices and determine the applica-bility of regulatory limitations 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 Sa
7、wed Beams of ConcreteC78 Test Method for Flexural Strength of Concrete (UsingSimple Beam with Third-Point Loading)C172 Practice for Sampling Freshly Mixed ConcreteC192/C192M Practice for Making and Curing Concrete TestSpecimens in the LaboratoryC823 Practice for Examination and Sampling of HardenedC
8、oncrete in ConstructionsC1609/C1609M Test Method for Flexural Performance ofFiber-Reinforced Concrete (Using Beam With Third-PointLoading)3. Terminology3.1 Definitions of Terms Specific to This Standard:3.1.1 deflectionmidspan deflection of the test beam ob-tained in a manner that excludes deflectio
9、n caused by thefollowing: (1) the flexural test apparatus, (2) crushing andseating of the beam at support contact points, and (3) torsion ofthe beam; sometimes termed net deflection.3.1.2 initial loading curvethe loaddeflection curve ob-tained by testing an assembly that includes both the test beama
10、nd a specified steel plate (Fig. 1); plotted to a deflection of atleast 0.20 mm 0.008 in. (Fig. 2).3.1.3 reloading curvethe loaddeflection curve obtainedby reloading and retesting the pre-cracked beam, that is, afterthe initial loading but without the steel plate. (Fig. 2)3.1.4 reloading deflectiond
11、eflection measured during thereloading of the cracked beam and with zero deflectionreferenced to the start of the reloading.3.1.5 residual strengththe flexural stress on the crackedbeam section obtained by calculation using loads obtainedfrom the reloading curve at specified deflection values (SeeNo
12、te 1).NOTE 1Residual strength is not a true stress but an engineering stresscomputed using the flexure formula for linear elastic materials and gross(uncracked) section properties.3.1.6 average residual strengththe average stresscarry-ing ability of the cracked beam that is obtained by calculationus
13、ing the residual strength at four specified deflections.4. Summary of Test Method4.1 Cast or sawed beams of fiberreinforced concrete arecracked using the thirdpoint loading apparatus specified inTest Method C78 modified by a steel plate used to assist insupport of the concrete beam during an initial
14、 loading cycle(Fig. 1). The steel plate is used to help control the rate of1This test method is under the jurisdiction of ASTM Committee C09 onConcrete and Concrete Aggregatesand is the direct responsibility of SubcommitteeC09.42 on Fiber-Reinforced Concrete.Current edition approved July 1, 2015. Pu
15、blished September 2015. Originallyapproved in 1998. Last previous edition approved in 2010 as C139910. DOI:10.1520/C1399_C1399M-10R15.2For referenced ASTM standards, visit the ASTM website, www.astm.org, orcontact ASTM Customer Service at serviceastm.org. For Annual Book of ASTMStandards volume info
16、rmation, refer to the standards Document Summary page onthe ASTM website.*A Summary of Changes section appears at the end of this standardCopyright ASTM International, 100 Barr Harbor Drive, PO Box C700, West Conshohocken, PA 19428-2959. United States1deflection when the beam cracks. After the beam
17、has beencracked in the specified manner, the steel plate is removed andthe cracked beam is reloaded to obtain data to plot a reloadingloaddeflection curve. Load values at specified deflectionvalues on the reloading curve are averaged and used tocalculate the average residual strength of the beam.5.
18、Significance and Use5.1 This test method provides a quantitative measure usefulin the evaluation of the performance of fiberreinforcedconcrete. It allows for comparative analysis among beamscontaining different fiber types, including materials, dimensionand shape, and different fiber contents. Resul
19、ts can be used tooptimize the proportions of fiberreinforced concrete mixtures,to determine compliance with construction specifications, toevaluate fiberreinforced concrete which has been in service,and as a tool for research and development of fiberreinforcedconcrete (See Note 2).NOTE 2Banthia and
20、Dubey3compared results using this test methodwith residual strengths at the same net deflections using a test protocol thatis similar to that described in Test Method C1609/C1609M on 45 beamswith a single fiber configuration at proportions of 0.1, 0.3, and 0.5 % byvolume. The results by this test me
21、thod were on average 6.4 % lower thanby the procedure of Test Method C1609/C1609M.5.2 Test results are intended to reflect either consistency ordifferences among variables used in proportioning the fiber-reinforced concrete to be tested, including fiber type(material), fiber size and shape, fiber am
22、ount, beam preparation(sawed or molded), and beam conditioning.5.3 In molded beams fiber orientation near molded surfaceswill be affected by the process of molding. For tests offiber-reinforced concrete containing relatively rigid or stifffibers of length greater than 35 mm 1.4 in., the use of sawed
23、beams cut from samples with an initial width and depth of atleast 3 times the length of the fiber is required to minimizeeffects of fiber orientation. When sawed beams are employed,and to avoid the effects of fiber orientation, care shall beapplied to ensure that the flexural tensile surface of the
24、beam isa sawed surface.6. Apparatus6.1 Either Screw Gear or Hydraulic Testing Apparatus, withthe ability to control the rate of motion of the loading head andmeeting the requirements of Test Method C78. A load cell witha 44.5 kN capacity 10,000 lbf will generally be required.Closed-loop feed-back co
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