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LABORATORY AND FIELD EXPOSURES OF FRT PLYWOOD: PART 2—MECHANICAL PROPERTIES1

机译:FRT胶合板的实验室和现场暴露:第2部分—机械性能1

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摘要

Our understanding of how to interpret the laboratory-induced degradation data to real-world in-service performance of fire-retardant (FR) systems is currently limited because we are unable to correlate laboratory steady-state experiments with actual in-service field performance. Current model studies have generally been limited to isothermal rate studies with selected model FR chemicals. Other factors also play a major role in the degradation of FR-treated wood. These factors, which have not been studied in any detail, include RH/MC cycles and thermally induced evolution of ammonia from ammonium phosphates to provide phosphoric acid. Because there exists no known direct comparison of matched samples with one exposed to high-temperature laboratory conditions and the other exposed for an extended period of time as traditionally used in North American light-framed construction, the objective of this study was to determine the relationship for FR model compounds between laboratory and field results based on strength-temperature-RH (MC)-FR chemical interactions. The impact of the variables was evaluated by measuring bending strength properties and comparing matched laboratory and field exposure samples. The physical test data show the positive effectsof adding a buffering system to model FR compounds when exposed to high moisture environments and the negative effects of increasing the moisture in the in-service environment during exposure.
机译:由于我们无法将实验室稳态实验与实际在役现场性能相关联,因此,我们对如何将实验室产生的降解数据解释为阻燃(FR)系统的实际在役性能的了解有限。当前的模型研究通常仅限于使用选定的模型FR化学物质进行的等温速率研究。其他因素在FR处理木材的降解中也起着重要作用。这些因素尚未进行详细研究,包括RH / MC循环以及热诱导的氨从磷酸铵中析出以提供磷酸。由于尚无匹配样品的直接比较已知,其中一个样品暴露于高温实验室条件下,而另一个样品暴露于北美轻框架结构中传统使用的较长时间,因此本研究的目的是确定这种关系基于强度-温度-RH(MC)-FR化学相互作用的实验室模型和现场结果之间的FR模型化合物。通过测量弯曲强度特性并比较匹配的实验室和野外暴露样品来评估变量的影响。物理测试数据显示,在暴露于高湿度环境中时,添加缓冲系统以对FR化合物进行建模具有积极的作用,而在使用中的环境中,在使用中增加水分会带来不利的影响。

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