ASTM D6305-2008 866 Standard Practice for Calculating Bending Strength Design Adjustment Factors for Fire-Retardant-Treated Plywood Roof Sheathing《火焰阻滞剂处理的胶合板屋顶盖板计算弯曲强度设计调节因素的标准实施规.pdf
《ASTM D6305-2008 866 Standard Practice for Calculating Bending Strength Design Adjustment Factors for Fire-Retardant-Treated Plywood Roof Sheathing《火焰阻滞剂处理的胶合板屋顶盖板计算弯曲强度设计调节因素的标准实施规.pdf》由会员分享,可在线阅读,更多相关《ASTM D6305-2008 866 Standard Practice for Calculating Bending Strength Design Adjustment Factors for Fire-Retardant-Treated Plywood Roof Sheathing《火焰阻滞剂处理的胶合板屋顶盖板计算弯曲强度设计调节因素的标准实施规.pdf(6页珍藏版)》请在麦多课文档分享上搜索。
1、Designation: D 6305 08Standard Practice forCalculating Bending Strength Design Adjustment Factorsfor Fire-Retardant-Treated Plywood Roof Sheathing1This standard is issued under the fixed designation D 6305; the number immediately following the designation indicates the year oforiginal adoption or, i
2、n the case of 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 practice covers procedures for calculating bendingstrength design adjustment
3、factors for fire-retardant-treatedplywood roof sheathing. The methods utilize the results ofstrength testing after exposure at elevated temperatures andcomputer-generated thermal load profiles reflective of expo-sures encountered in normal service conditions in a widevariety of continental United St
4、ates climates.1.2 Necessarily, common laboratory practices were used todevelop the methods herein. It is assumed that the procedureswill be used for fire-retardant-treated plywood installed usingappropriate construction practices recommended by the fireretardant chemical manufacturers, which include
5、 avoidingexposure to precipitation, direct wetting, or regular condensa-tion.1.3 The heat gains, solar loads, roof slopes, ventilation rates,and other parameters used in this practice were chosen toreflect common sloped roof designs. This practice is applicableto roofs of 3 in 12 or steeper slopes,
6、to roofs designed with ventareas and vent locations conforming to national standards ofpractice, and to designs in which the bottom side of thesheathing is exposed to ventilation air. These conditions maynot apply to significantly different designs and therefore thispractice may not apply to such de
7、signs.1.4 Information and a brief discussion supporting the pro-visions of this practice are in the Commentary in the appendix.A large, more detailed, separate Commentary is also availablefrom ASTM.21.5 The methodology in this practice is not meant to accountfor all reported instances of fire-retard
8、ant plywood undergoingpremature heat degradation.1.6 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 onlyand are not considered standard.1.7 This standard does not purport t
9、o 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 prior to use.2. Referenced Documents2.1 ASTM Standards:3D9 Termi
10、nology Relating to Wood and Wood-Based Prod-uctsD 5516 Test Method for Evaluating the Flexural Propertiesof Fire-Retardant Treated Softwood Plywood Exposed toElevated Temperatures3. Terminology3.1 Definitions:3.1.1 Definitions used in this practice are in accordance withTerminology D9.3.2 Definition
11、s of Terms Specific to This Standard:3.2.1 bin mean temperature10F (5.5C) temperatureranges having mean temperatures of 105 (41), 115 (46), 125(52), 135 (57), 145 (63), 155 (68), 165 (74), 175 (79), 185 (85),195 (91), and 200F (93C).4. Summary of Practice4.1 The test data determined by Test Method D
12、 5516 areused to develop adjustment factors for fire-retardant treatmentsto apply to untreated-plywood design values. The test data areused in conjunction with climate models and other factors andthe practice thus extends laboratory strength data measuredafter accelerated aging to design value recom
13、mendations.5. Significance and Use5.1 This practice develops treatment factors that shall beused by fire retardant chemical manufacturers to adjust bendingstrength design values for untreated plywood to account for thefire-retardant treatment effects. This practice uses data fromreference thermal-lo
14、ad cycles designed to simulate tempera-tures in sloped roofs of common design to evaluate productsfor 50 iterations.1This practice is under the jurisdiction of ASTM Committee D07 on Wood andis the direct responsibility of Subcommittee D07.07 on Fire Performance of Wood.Current edition approved Aug.
15、1, 2008. Published September 2008. Originallyapproved in 1998. Last previous edition approved in 2002 as D 6305 021.2Commentary on this practice is available from ASTM Headquarters. RequestFile No. D071004.3For referenced ASTM standards, visit the ASTM website, www.astm.org, orcontact ASTM Customer
16、Service at serviceastm.org. For Annual Book of ASTMStandards volume information, refer to the standards Document Summary page onthe ASTM website.1Copyright ASTM International, 100 Barr Harbor Drive, PO Box C700, West Conshohocken, PA 19428-2959, United States.5.2 This practice applies to material in
17、stalled using con-struction practices recommended by the fire retardant chemicalmanufacturers that include avoiding exposure to precipitation,direct wetting, or regular condensation. This practice is notmeant to apply to buildings with significantly different designsthan those described in 1.3.5.3 T
18、est Method D 5516 caused thermally induced strengthlosses in laboratory simulations within a reasonably shortperiod. The environmental conditions used in the laboratory-activated chemical reactions that are considered to be similar tothose occurring in the field.This assumption is the fundamentalbas
19、is of this practice.6. Procedure to Calculate Strength Loss RateThe procedure is a multistep calculation where first an initialstrength loss is determined, then the rates of strength loss atvarious temperatures are calculated, and finally the initial lossand rates are combined into the overall treat
20、ment adjustmentfactor.6.1 Use the load-carrying capacity in bending, referred to asmaximum moment (M), as the controlling property for pur-poses of determining allowable spans.6.1.1 The ratio of the average maximum moment (M) forunexposed treated specimens to the average moment forunexposed untreate
21、d specimens shall be designated the Initialtreatment effect, Ro, associated with the room temperatureconditioning exposure of To.Ro5 MTRT, UNEX/MUNTRT,UNEX(1)6.1.2 If testing is done at more than one temperature, Roishall be determined at each temperature and used in subsequentrate calculations for
22、that specific temperature. The average ofthese values, Ro,avgshall be used in initial treatment effectcalculations (see 7.1).6.2 The average maximum moment (M) of the treatedspecimens conditioned at the same temperature for the sameperiod of time shall be computed. The ratio of these momentsto the m
23、oment of the untreated, unexposed specimens asobtained in 6.2.1 and 6.2.2 shall be designated the testtreatment ratio, Rt. Include the ratio for specimens conditionedat room temperature but not exposed to elevated temperatureprior to testing.Rt5 Rtest5 MTRT,UNEX, EX!/MUNTRT,UNEX per 6.2.2!(2)NOTE 1W
24、hen end matching of treated and untreated specimens isemployed to reduce variability in accordance with Test Method D 5516,use the ratio of the matched pairs from each panel to calculate the panelmean. The average of the panel means shall be used to calculate Rt.6.2.1 For untreated specimens, linear
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