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首页> 外文期刊>Journal of Energy Engineering >Feasibility Study on Power Generation from Waste Plastics with Partial Precombustion Carbon Capture and Conversion
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Feasibility Study on Power Generation from Waste Plastics with Partial Precombustion Carbon Capture and Conversion

机译:部分预燃烧碳捕集与转化利用废塑料发电的可行性研究

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The feasibility of upcycling waste plastics into concurrent production of carbon nanotubes (CNTs) and of a hydrogen-enriched gaseous hydrocarbon stream was shown to be possible in a continuous steady-state steady-flow process. The feedstock was post-consumer (waste) low-density polyethylene (LDPE), which was pyrolyticaly gasified at 800 degrees C, in a flow of nitrogen carrier gas. The evolving gaseous hydrocarbon pyrolyzates were first used as carbon growth agents for CNTs in a reactor, a process that lowered their carbon content and increased their hydrogen content. Thereafter, the unreacted hydrocarbon pyrolyzates and the generated hydrogen were mixed with air and burned. This conversion of solid waste plastics to gaseous fuels allowed thorough mixing with air and, upon ignition, the formation of environmentally benign fuel-lean premixed flames for subsequent power generation purposes. The CNT generation in the reactor took place by chemical vapor deposition (CVD) on untreated stainless steel mesh substrates, which also served as catalysts. Provisions were made for automatic motion and replenishment of the substrate/catalyst for continuous CNT production. The reactor was specifically designed to have a cold-wall configuration, where only the catalyst substrate was heated to a temperature of 800 degrees C, in an otherwise unheated chamber. This cold-wall reactor has significantly lower energy consumption than conventional hot-wall reactors of similar dimensions and throughput. This work is part of an overall study that aims at illustrating the upcycling of common recycled post-consumer plastics simultaneously to gaseous fuels and value-added nanomaterials. Its specific goal was to produce the latter in a newly designed low energy input reactor.
机译:已表明,在连续稳态稳态流工艺中,将废塑料升级循环利用以同时生产碳纳米管(CNT)和富氢气态烃物流的可行性。原料是消费后(废)低密度聚乙烯(LDPE),其在氮气载气流中在800摄氏度下热解气化。不断发展的气态碳氢化合物热解产物首先在反应器中用作碳纳米管的碳生长剂,该过程降低了碳的碳含量并增加了氢的含量。此后,将未反应的烃热解产物和产生的氢与空气混合并燃烧。固体废塑料向气体燃料的这种转化允许与空气充分混合,并且在点燃时形成对环境无害的贫燃料的预混合火焰,用于随后的发电目的。通过化学气相沉积(CVD)在未处理的不锈钢网状基材上进行反应器中的CNT生成,该基材也用作催化剂。为连续生产CNT提供了自动运动和补充底物/催化剂的方法。该反应器被特别设计成具有冷壁构造,其中在没有加热的室内仅将催化剂底物加热到800℃的温度。与具有类似尺寸和产量的常规热壁反应器相比,该冷壁反应器的能耗显着降低。这项工作是一项总体研究的一部分,该研究旨在说明普通回收的消费后塑料同时升级为气态燃料和增值纳米材料的过程。它的特定目标是在新设计的低能量输入反应堆中生产后者。

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