ASTM F2029-2000 Standard Practices for Making Heatseals for Determination of Heatsealability of Flexible Webs as Measured by Seal Strength《通过测量密封强度测定挠性网热密封性能用熔焊的标准实施规范》.pdf
《ASTM F2029-2000 Standard Practices for Making Heatseals for Determination of Heatsealability of Flexible Webs as Measured by Seal Strength《通过测量密封强度测定挠性网热密封性能用熔焊的标准实施规范》.pdf》由会员分享,可在线阅读,更多相关《ASTM F2029-2000 Standard Practices for Making Heatseals for Determination of Heatsealability of Flexible Webs as Measured by Seal Strength《通过测量密封强度测定挠性网热密封性能用熔焊的标准实施规范》.pdf(9页珍藏版)》请在麦多课文档分享上搜索。
1、Designation: F 2029 00Standard Practices forMaking Heatseals for Determination of Heatsealability ofFlexible Webs as Measured by Seal Strength1This standard is issued under the fixed designation F 2029; the number immediately following the designation indicates the year oforiginal adoption or, in th
2、e case of revision, the year of last revision. A number in parentheses indicates the year of last reapproval. Asuperscript epsilon (e) indicates an editorial change since the last revision or reapproval.1. Scope1.1 These practices cover laboratory preparation of heat-seals and the treatment and eval
3、uation of heatseal strength datafor the purpose of determining heatsealability of flexiblebarrier materials.1.2 Testing strength or other properties of the heatsealsformed by these practices is not included in this standard. Referto Test Methods F88for testing heatseal strength.1.3 The practices of
4、this standard are restricted to sealingwith a machine employing hot-bar jaws. Impulse, high-frequency, and ultrasonic heating methods are not included.1.4 These practices apply primarily to webs intended to beused on commercial machines employing reciprocating sealingjaws, such as most vertical form
5、-fill packaging machines,platen heatsealers, etc. Conditions of dwell time and sealingpressure on machines of this type typically are different fromthose on rotary machines by an order of magnitude or more.1.5 The procedures of these practices with respect to choiceof heatsealing conditions apply eq
6、ually whether the applicationis to ultimate seal strength or hot tack measurement.1.6 Seals may be made between webs of the same ordissimilar materials. The individual webs may be homoge-neous in structure or multilayered (coextruded, coated, lami-nated, etc.).1.7 Strength of the heatseal is the cri
7、terion for judgingheatsealability employed in these practices.1.8 Determination of heatsealability as judged by seal con-tinuity, typically measured by air-leak, dye penetration, visualexamination, microorganism penetration or other techniques,are not covered by these practices.1.9 Two variations of
8、 the heatsealing procedure are de-scribed herein, differing in whether the objective of the testingis to determine, the heatsealability of the surface, or how wellthe entire web would heatseal in applications where the sealinginterface may not reach jaw temperature.1.9.1 Practice A, Heatsealability
9、of a SurfaceThismethod measures sealability of the web surface, or sealantlayer if there is one, as a function of interface temperature,which is independent of the influence of other web character-istics, such as total thickness and construction.1.9.2 Practice B, Web Sealability at Short Dwell TimeT
10、hetest seal is made at a dwell time shorter than required for thesealing interface to reach the jaw temperature level, simulatingconditions on high-speed vertical form-fill machines, or onslower machines where the condition of nonequilibrium alsoexists. The resulting heatseal strength, under nonequi
11、libriumconditions, is then dependent not only on characteristics of thewebs sealing surface, but also on web thickness, construction,and other factors affecting rate of heat transfer from jaws to thesealing interface. These include machine factors; (for example,anti-stick jaw treatments, etc).1.10 T
12、his 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 prior to use.2. Referenced Docume
13、nts2.1 ASTM Standards:2F88 Test Method for Seal Strength of Flexible BarrierMaterialsF 1921 Test Methods for Hot Seal Strength (Hot Tack) ofThermoplastic Polymers and Blends Comprising the SealingSurfaces of Flexible Webs3. Terminology3.1 Definitions:3.1.1 dwell time, nthe time interval when the sea
14、ling jawsare in contact with, and exerting pressure on, the material beingsealed.3.1.2 equilibrium dwell time, nany dwell time in excess ofthat required for the seal strength to reach its maximum levelfor the jaw temperature employed.3.1.2.1 DiscussionApplies only when both jaws are atequal temperat
15、ure (see Annex A1.3).3.1.3 heatseal curve, na plot of apparent seal strengthversus sealing temperature.1These practices are under the jurisdiction ofASTM Committee F02 on FlexibleBarrier Materials and are the direct responsibility of Subcommittee F02.20 onPhysical Properties.Current edition approved
16、 May 10, 2000. Published July 2000.2For 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.1Copyright ASTM Internatio
17、nal, 100 Barr Harbor Drive, PO Box C700, West Conshohocken, PA 19428-2959, United States.3.1.3.1 DiscussionThis is the basic curve for comparingsealability of materials. It plots the force required to extend asealed test strip to failure, as a function of sealing temperature.The portion of the curve
18、 at higher sealing temperatures may beaffected by failure of the substrate and may not be an accuraterepresentation of seal strength.3.1.4 heatseal strength, nforce required to peel the sealapart, per unit width of seal.3.1.4.1 DiscussionIn many tests of seal strength it is notthe seal that fails, i
19、t is the substrate. In those tests, the trueheatseal strength may be somewhat higher than the measuredforce that caused the specimen to fail. Homogeneous materialswith fusion seals, for example, commonly break along a lineimmediately adjacent to the seal, while the seal itself remainsintact (see Tes
20、t Methods F88).3.1.5 heatsealability, nthe property of thermoplastic poly-mers and blends, when comprising a surface of a flexible web,that defines how well the material heatseals.3.1.5.1 DiscussionHow well the material heatseals isexpressed quantitatively as seal strength as a function of thesealin
21、g conditions of temperature, time, and pressure. Sincestrength of a heatseal can be measured either while the seal isstill hot (hot tack) or after cooling and stabilizing (ultimatestrength), a complete evaluation of heatsealability of a materialmust include both tests.3.1.6 hot tack, nstrength of a
22、hot seal measured at aspecified time interval after completion of the sealing cycle butprior to the temperature of the seal reaching ambient. Refer toTest Methods F 1921.3.1.7 seal initiation temperature, nthe sealing tempera-ture at which a heatseal of significant strength (0.5 N/cm; 125g/25 mm; 0.
23、3 lb/in.) is produced.3.1.8 sealing interface, nthe interface between two websurfaces being sealed.3.1.9 sealing pressure, nthe force per unit area of sealapplied to the material during the sealing process.3.1.9.1 DiscussionDuring the dwell time, the sealingpressure pulse rises from zero usually to
24、a plateau level andthen drops to zero. Frequently, there is an initial spike. Veryshort dwell times may not have a plateau. Sealing pressure iscompletely described by the curve of pressure versus time, buttwo parameters from the curve commonly are used instead tocharacterize the pressure variable. O
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