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Thermal loading as a causal factor in exceeding the 0.1 PPM laboratory fume hood control level.

机译:热负荷是超过0.1 PPM实验室通风柜控制水平的原因。

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摘要

Tracer gas testing per ANSI/ASHRAE 110-1995 Method of Testing Performance of Laboratory Fume Hoods was used to investigate the role of thermal loading in exceeding laboratory fume hood control levels. Three types of typical laboratory burners (blast, Meeker, and economy) were used to provide a thermal challenge. Heat outputs of between 0 and 61,610 Btu/hr were based on fuel heat capacity (for liquid propane gas) and fuel gas flow rates. Breathing zone concentrations were measured with a MIRAN 1B2 infrared gas analyzer. Also, for each test, the difference between the room and duct temperatures (delta temperature) was measured. Results indicated a linear relationship between heat loads and tracer gas breathing zone concentrations for both Btu/hr and delta temperature. Control levels of 0.1 ppm were exceeded at less than 12,000 Btu/hr. Also, control levels were exceeded at a lower heat load when the tracer gas generation rate was increased. These results indicate that thermal loads in laboratory fume hoods increase the risk of exceeding laboratory fume hood control levels. Some compensatory measures relative to hood configuration and flow rates are recommended for laboratory operations involving heat sources.
机译:根据实验室通风柜性能测试方法ANSI / ASHRAE 110-1995进行示踪气体测试,以研究热负荷在超出实验室通风柜控制水平方面的作用。三种类型的典型实验室燃烧器(鼓风,Meeker和经济型)用于提供热挑战。 0到61,610 Btu / hr之间的热量输出是基于燃料的热容量(对于液态丙烷气)和燃料气体的流量。用MIRAN 1B2红外气体分析仪测量呼吸区浓度。同样,对于每个测试,测量室内温度与管道温度之间的差异(温度差)。结果表明,对于Btu / hr和差值温度,热负荷与示踪气体呼吸区浓度之间呈线性关系。在低于12,000 Btu /小时的情况下,超出了0.1 ppm的对照水平。同样,当示踪气体的产生速率增加时,在较低的热负荷下超过了控制水平。这些结果表明实验室通风柜中的热负荷增加了超过实验室通风柜控制水平的风险。对于涉及热源的实验室操作,建议采取一些与通风柜配置和流量有关的补偿措施。

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