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Innovative Concepts of Conversion and High Efficiency using MARTIN Technology

机译:使用MARTIN技术的转换和高效创新概念

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Thermal treatment of waste using grate-based systems has gained world-wide acceptance as the preferred method for sustainable management of residual waste. However, in order to maintain this position and respond to new challenges and/or priorities, it is necessary to further develop innovative concepts that use safe process engineering technology in terms of climate and resource protection as well as reduction of environmental impacts. MARTIN, in collaboration with research institutes, successfully developed and optimized a multi-stage combustion process in the 1990s. Various pilot and full-scale studies and tests followed. Based on this knowledge, MARTIN and its cooperation partners COVANTA ENERGY (USA), CNIM (F) and Mitsubishi Heavy Industries (JP) developed the Very Low NO_x (VLN) process as a large-scale primary measure for NO_x reduction. MARTIN'S next step was to develop the Very Low NO_x gasification mode (VLN-GM) process. This process has been implemented directly in continuous operation at an industrial-scale Energy-from-Waste (EfW) plant in Switzerland. In VLN-GM operation, the excess air rate in the gas above the grate is decreased from λ = 1.2 to about 0.8. The characteristics of municipal solid waste make it suitable for the generation of heat and power. While boiler concepts implemented in the past often focused on factors such as high availability, reduced downtimes and minimized maintenance costs, measures to increase the efficiency of the overall process are also growing in importance. Energy efficiency can be increased by optimizing boiler efficiency itself on the one hand, and on the other hand by improving peripheral plant devices, in particular by improving energy recovery through changes in the steam parameters. MARTIN has developed corrosion-protected wall and radiant superheater solutions, located in the upper furnace area, and installed these as prototypes in full-scale plants. As a result, steam can be heated about 35 ℃ (90 °F) in excess of the current state-of-the-art parameters without adversely affecting plant operation due to superheater corrosion. This paper documents that innovative concepts using MARTIN technology successfully provide solutions for a grate-based conversion technology (VLN-GM) as well as measures for increasing the energy efficiency of Energy-from-Waste plants.
机译:使用基于炉排的系统对废物进行热处理已经获得了全世界的认可,成为可持续管理残余废物的首选方法。但是,为了保持这一地位并应对新的挑战和/或优先事项,有必要进一步开发创新的概念,这些概念在气候和资源保护以及减少环境影响方面使用安全的过程工程技术。 MARTIN与研究机构合作,在1990年代成功开发并优化了多级燃烧过程。随后进行了各种试点和全面研究和测试。基于这些知识,MARTIN及其合作伙伴美国(COVANTA ENERGY),CNIM(F)和三菱重工(JP)开发了极低NO_x(VLN)工艺,作为减少NO_x的大规模主要措施。 MARTIN的下一步是开发极低NO_x气化模式(VLN-GM)工艺。此过程已在瑞士一家工业规模的“废能源”(EfW)工厂中连续运行中直接实施。在VLN-GM操作中,炉排上方气体中的过量空气速率从λ= 1.2降至约0.8。城市固体废物的特性使其适合于热能和电力的产生。尽管过去实施的锅炉概念通常集中在诸如高可用性,减少停机时间和最小化维护成本等因素上,但是提高整体过程效率的措施也越来越重要。通过一方面自身优化锅炉效率,另一方面通过改进外围设备,特别是通过改变蒸汽参数来提高能量回收率,可以提高能源效率。 MARTIN开发了位于上部炉膛区域的防腐蚀壁和辐射过热器解决方案,并将其作为原型安装在大型工厂中。结果,可以将蒸汽加热到超过当前最新技术参数的约35℃(90°F),而不会由于过热器腐蚀而对工厂运行产生不利影响。本文记录了使用MARTIN技术的创新概念成功地为基于炉排的转换技术(VLN-GM)提供了解决方案,并提供了提高废料能源工厂能源效率的措施。

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