ASTM C1824-2016 Standard Test Method for Full Scale Bending Test of Spun Prestressed Concrete Bases for Tapered Steel Lighting Poles《楔形钢制灯杆用离心铸造的预应力混凝土基座的全尺寸弯曲试验的标准试验方法》.pdf
《ASTM C1824-2016 Standard Test Method for Full Scale Bending Test of Spun Prestressed Concrete Bases for Tapered Steel Lighting Poles《楔形钢制灯杆用离心铸造的预应力混凝土基座的全尺寸弯曲试验的标准试验方法》.pdf》由会员分享,可在线阅读,更多相关《ASTM C1824-2016 Standard Test Method for Full Scale Bending Test of Spun Prestressed Concrete Bases for Tapered Steel Lighting Poles《楔形钢制灯杆用离心铸造的预应力混凝土基座的全尺寸弯曲试验的标准试验方法》.pdf(4页珍藏版)》请在麦多课文档分享上搜索。
1、Designation: C1824 16Standard Test Method forFull Scale Bending Test of Spun Prestressed ConcreteBases for Tapered Steel Lighting Poles1This standard is issued under the fixed designation C1824; the number immediately following the designation indicates the year oforiginal adoption or, in the case o
2、f revision, the year of last revision. A number in parentheses indicates the year of last reapproval. Asuperscript epsilon () indicates an editorial change since the last revision or reapproval.1. Scope1.1 This test method covers determination of ultimate bend-ing moment capacity and cracking moment
3、 capacity of con-crete bases used as foundations for tapered steel lighting polesin accordance to Specification C1804.1.2 The values stated in inch-pound units are to be regardedas standard. The values given in parentheses are mathematicalconversions to SI units that are provided for information onl
4、yand are not considered 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 establish appro-priate safety and health practices and determine the applica-bility of regulatory limitat
5、ions prior to use.2. Referenced Documents2.1 ASTM Standards:C39 Test Method for Compressive Strength of CylindricalConcrete SpecimensC192 Practice for Making and Curing Concrete Test Speci-mens in the LaboratoryC1804 Specification for Spun Cast Prestressed ConcreteBases for Tapered Steel Lighting Po
6、les3. Terminology3.1 Definitions:3.1.1 cracking loada load which creates a bending mo-ment of enough magnitude to produce a tensile stress greaterthan the sum of induced compression plus the tensile strengthof the concrete resulting in tensile cracks on the tension face ofthe base.3.1.2 cylindrical
7、sectionlower portion of base designed tobe buried in concrete backfill below ground line.3.1.3 ground lineis the distance from the butt end of thebase to the point where theoretical embedment in the founda-tion is specified (theoretical buried depth).3.1.4 second crack (re-cracking) loadthe load at
8、which apreviously formed crack will reopen.3.1.5 spun basea base in which the concrete is distributedand compacted through centrifugal force.3.1.6 tapered sectionupper portion of base, which has ataper designed to match overlapping steel pole taper.3.1.7 ultimate loadmaximum test load the base will
9、carryin the specified direction before the steel or concrete will reachits limiting state.4. Summary of Test Method4.1 This test consists of applying transverse loads at apredetermined distance to simulate bending moments inducedby wind forces exerted on the spun concrete base. The base istested in
10、a horizontal orientation. The concrete base specimenis laterally supported at two locations: at the ground line andnear the bottom end of the base. The bending load is appliedthrough a steel test arm consisting of a matching taper steeladaptor with appropriate extension, which is of sufficientlength
11、 to deem shear effects negligible. Bending loads areapplied gradually at a predetermined loading sequence. Thetest bending moment is determined by multiplying the momentarm measured from the simulated ground line to the loadapplication point multiplied by the applied load value. Due tothe relatively
12、 short height of these bases extending aboveground line in comparison to the entire structure height,obtaining deflection data is not required.5. Significance and Use5.1 This test method is intended to provide the user withacceptable apparatus requirements and a prescribed procedureto determine the
13、bending moment capacity of spun pre-stressedconcrete bases for use with tapered steel poles.5.2 The results of this test method are used as a basis forverification of calculated bending moment capacity, qualitycontrol tool for manufacturing process and as a basis fordetermining statistical bending m
14、oment capacity.5.3 This test method shall not be used for full lengthprestressed concrete, steel, or composite poles.1This test method is under the jurisdiction of ASTM Committee C27 on PrecastConcrete Products and is the direct responsibility of Subcommittee C27.20 onArchitectural and Structural Pr
15、oducts.Current edition approved Jan. 1, 2016. Published January 2016. DOI: 10.1520/C182416.Copyright ASTM International, 100 Barr Harbor Drive, PO Box C700, West Conshohocken, PA 19428-2959. United States16. Apparatus6.1 General RequirementsThe test area, fixtures and adap-tors shall be sized to acc
16、ommodate the largest test specimenswith adequate margin to include upper tolerances of testspecimens. The general layout shall allow for application oftransverse loads in direction perpendicular to the centerline oftest specimen (see Fig. 1).6.2 Loading ApparatusThe loading apparatus consists ofa wi
17、nch and a steel cable through which the load is applied tothe test arm. The winch machine shall be capable of threeapplying loads that are required to test the bases to failure. Theloading apparatus shall be capable of applying the requiredloading sequence in continuous manner. The loading apparatus
18、shall be capable of starting and stopping force applicationunder load, as well as, it shall be capable of maintaining a staticload at any point during the test sequence.6.3 Test ArmThe test arm shall consist of tapered steeladaptor and extension. The inside diameter and taper of theadaptor shall mat
19、ch the outside diameter and taper of the testspecimen. The extension shall be long enough to allow for aload application point with a moment arm that will ensure thatthe base primary mode of failure is in flexure with negligibleshear effects. The test arm shall be supported by rollingsupports to eli
20、minate the effects of gravity loading in thevertical direction perpendicular to the test plane due to theweight of the test arm.6.4 Load CellThe load cell shall have a capacity greaterthan the load necessary to test the bases to failure. Resolutionof the load cell shall be smaller than 10 lb or 1 %
21、of theultimate load whichever is greater. The load cell shall beattached to the moment arm extension. The load cell and loadcell controller shall have current calibration certificate. Cali-bration shall be performed annually.6.5 Fixturing of Test SpecimenThe test specimen shall belaterally supported
22、 at the two reaction points by rigid fixturingbrackets with contact area large enough, at least 20 percent ofthe base circumference by 8 in. (200 mm) length, to avoiddamage due to stress concentration. The fixturing bracketsshall be lined with elastomeric material (Neoprene or SBRsheet rubber) at le
23、ast12 in. (12.5 mm) thick and minimum 70durometer hardness. Alternatively, seasoned oak at least 4 in.(100 mm) thick can be used as a lining material. The distancebetween the reaction points (center to center of supports) shallnot be less than 5.5 ft (1680 mm) to minimize the shear effectsat ground
24、line section. The designed ground line location shallbe aligned with the edge of support bracket on the loading side.The bottom end of the test specimen shall extend at least 18 in.from the bottom support bracket7. Setup Tolerances7.1 The test specimen centerline, extension arm centerlineand loading
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