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    • 9. 发明授权
    • Integrated VOC entrapment system for regenerative oxidation
    • 用于再生氧化的集成VOC捕集系统
    • US5833938A
    • 1998-11-10
    • US650280
    • 1996-05-20
    • Edward G. Blazejewski
    • Edward G. Blazejewski
    • F23L15/02B01D53/44F23G7/06F23J15/00F27D17/00F28D17/00F01N3/08F01N3/10
    • F28D17/00B01D53/44F23G7/068F27D17/008
    • Regenerative thermal oxidizer in which a gas such as contaminated air is first passed through a hot heat-exchange bed and into a communicating high temperature oxidation (combustion) chamber, and then through a relatively cool second heat exchange bed. The apparatus includes a number of internally insulated, ceramic filled heat recovery columns topped by an internally insulated combustion chamber. Process air is fed into the oxidizer through an inlet manifold containing a number of hydraulically or pneumatically operated flow control valves (such as poppet valves). The air is then directed into the heat exchange media which contains "stored" heat from the previous recovery cycle. The process air is heated to near oxidation temperatures. Oxidation is completed as the flow passes through the combustion chamber, where one or more burners are located. The gas is maintained at the operating temperature for an amount of time sufficient for completing destruction of the VOC's. From the combustion chamber, the gas flows vertically downward through another column containing heat exchange media, thereby storing heat in the media for use in a subsequent inlet cycle when the flow control valves reverse. The resulting clean air is directed via an outlet valve through an outlet manifold and released to atmosphere at a slightly higher temperature than inlet, or is recirculated back to the oxidizer inlet. An integrated VOC entrapment chamber entraps any VOC's that leak out during cycling, and recycles them back to the oxidizer inlet for further processing.
    • 首先将诸如污染空气的气体通过热的热交换床并进入连通的高温氧化(燃烧)室,然后通过相对冷却的第二热交换床的再生热氧化器。 该装置包括多个内部绝缘的陶瓷填充的热回收塔,其由内部绝缘的燃烧室顶起。 工艺空气通过含有多个液压或气动操作的流量控制阀(如提升阀)的入口歧管进入氧化器。 然后将空气引导到热交换介质中,该介质包含来自先前的回收循环的“储存”的热量。 工艺空气被加热到接近氧化温度。 当流过燃烧室时,完成氧化,其中一个或多个燃烧器位于其中。 气体在工作温度下保持足够的时间以完成VOC的破坏。 从燃烧室,气体垂直向下流动通过另一个含有热交换介质的塔,从而在流量控制阀反向时将热量存储在介质中用于随后的入口循环。 所得到的清洁空气通过出口阀通过出口歧管引导,并以比入口略高的温度释放到大气中,或者被再循环回到氧化剂入口。 集成的VOC包埋室将挥发性有机化合物在循环过程中泄漏出来,并将其再循环回氧化剂入口进行进一步处理。