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Thermolysis of waste plastics to liquid fuel A suitable method for plastic waste management and manufacture of value added products-A world prospective

机译:废塑料热解成液体燃料一种适用于废塑料管理和制造增值产品的合适方法-世界范围内

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The present rate of economic growth is unsustainable without saving of fossil energy like crude oil, natural gas or coal. Thus mankind has to rely on the alternate/renewable energy sources like biomass, hydropower, geothermal energy, wind energy, solar energy, nuclear energy, etc. On the other hand, suitable waste management strategy is another important aspect of sustainable development. The growth of welfare levels in modern society during the past decades has brought about a huge increase in the production of all kinds of commodities, which indirectly generate waste. Plastics have been one of the materials with the fastest growth because of their wide range of applications due to versatility and relatively low cost. Since the duration of life of plastic products is relatively small, there is a vast plastics waste stream that reaches each year to the final recipients creating a serious environmental problem. Again, because disposal of post consumer plastics is increasingly being constrained by legislation and escalating costs, there is considerable demand for alternatives to disposal or land filling. Advanced research in the field of green chemistry could yield biodegradable/green polymers but is too limited at this point of time to substitute the non-biodegradable plastics in different applications. Once standards are developed for degradable plastics they can be used to evaluate the specific formulations of materials which will find best application in this state as regards their performance and use characteristics. Among the alternatives available are source reduction, reuse, recycling, and recovery of the inherent energy value through waste-to-energy incineration and processed fuel applications. Production of liquid fuel would be a better alternative as the calorific value of the plastics is comparable to that of fuels, around 40 MJ/kg. Each of these options potentially reduces waste and conserves natural resources. Plastics recycling, continues to progress with a wide range of old and new technologies. Many research projects have been undertaken on chemical recycling of waste plastics to fuel and monomer. This is also reflected by a number of pilot, demonstration, and commercial plants processing various types of plastic wastes in Germany, Japan, USA, India, and elsewhere. Further investigations are required to enhance the generation of value added products (fuel) with low investments without affecting the environment. The paper reviews the available literature in this field of active research and identifies the gaps that need further attention.
机译:如果不节省化石能源,例如原油,天然气或煤炭,目前的经济增长速度是不可持续的。因此,人类必须依靠替代​​/可再生能源,如生物质能,水能,地热能,风能,太阳能,核能等。另一方面,适当的废物管理战略是可持续发展的另一个重要方面。在过去的几十年中,现代社会福利水平的提高带来了间接产生废物的各种商品生产的巨大增长。由于多功能性和相对较低的成本,塑料由于其广泛的应用而成为增长最快的材料之一。由于塑料产品的使用寿命相对较短,因此每年都有大量的塑料废物流到达最终接收者,从而造成了严重的环境问题。再次,由于立法和成本不断提高,消费后塑料的处置越来越受到限制,因此对于替代处置或填埋的替代方案的需求量很大。绿色化学领域的高级研究可以生产出可生物降解/绿色的聚合物,但目前仍受限制,无法在不同的应用中替代不可生物降解的塑料。一旦制定了可降解塑料标准,就可以将其用于评估材料的特定配方,这些材料在其性能和使用特性方面将在这种状态下找到最佳的应用。可用的替代方案包括通过废物变能源焚化和加工燃料应用来减少能源,再利用,回收和固有能源价值的回收。液体燃料的生产将是更好的选择,因为塑料的热值可与燃料相媲美,约为40 MJ / kg。这些选择中的每一个都可能减少浪费并节省自然资源。塑料回收利用各种新旧技术不断发展。已经进行了许多关于将废塑料化学循环利用为燃料和单体的研究项目。德国,日本,美国,印度和其他地方的许多处理各种类型的塑料废物的试验,示范和商业工厂也反映了这一点。需要进行进一步的调查,以增加投资少而又不影响环境的增值产品(燃料)的产生。本文回顾了活跃研究领域中的可用文献,并指出了需要进一步关注的空白。

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