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CAREER: Sustainable Chemical Synthesis by Plasma-Enhanced Solar Energy

CAREER: Sustainable Chemical Synthesis by Plasma-Enhanced Solar Energy
职业:利用等离子体增强太阳能进行可持续化学合成
批准号:
1552037
负责人:
Juan Trelles
金额:
$51.31万
依托单位国家:
美国
项目类别:
Standard Grant
财政年份:
2016
资助国家:
美国
项目状态:
已结题
起止时间:
2016-02-01 至 2022-01-31

项目摘要

项目成果

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中文摘要
翻译
通过可持续工艺生产燃料和化学品是21世纪世纪的关键技术挑战之一。 发电或工业过程产生的二氧化碳气体是燃料和化学品生产的潜在碳源。 然而,二氧化碳的反应性不是很强,目前还不存在将其转化为燃料和化学品的可行技术。 该产品的目标是利用等离子体增强的太阳能将二氧化碳和水转化为燃料和化学品。 在拟议的过程中,太阳能将二氧化碳气体加热到增加其反应性所需的高温。 然后使用电能将加热的气体转化为等离子体,也称为带电气体。 据推测,气体的等离子体状态将提高二氧化碳转化率。 该工艺具有潜在的可持续性,并且具有低碳足迹,因为它使用废二氧化碳和丰富的太阳能,其中产生等离子体所需的电力由太阳能光伏电池提供。 该项目还将开发教学车,用于向包括马萨诸塞州洛厄尔地区的西班牙裔K-12学生在内的广泛受众展示受本研究启发的能源和可持续性主题。 拟议研究的总体目标是发展一个新的化学和燃料合成过程的基本理解从二氧化碳和水使用集中的太阳能驱动反应热化学和非平衡等离子体,以提高化学反应动力学。 等离子体增强太阳能(PESE)结合了太阳热化学和等离子体科学原理。 该项目将通过实验和计算研究PESE用于二氧化碳,水和甲烷的分解和重整。 这项研究将检验这样一个假设,即等离子体中自由电子产生的分子激发增加了太阳光子吸收,从而增强了化学反应动力学。 为此,拟议的研究将寻求了解自由电子和光子系统的非平衡能量传输现象,特别关注具有可比光子和电子能量通量的过程。 为了支持研究计划,将开发和表征配备太阳能接收器和对流动气体的非平衡放电能力的新反应堆系统。 将在可扩展的工艺条件下进行跨越太阳能与电能输入比率的反应堆实验。 新的流体流动和化学动力学模型的非平衡能量传输将推导和实验验证。 研究结果旨在揭示PESE处理过程中能量转换的具体途径,并量化等离子体增强的功效。 此外,研究成果与电子和光子传输具有重要作用的其他领域有关,例如激光材料加工,半导体制造和燃烧增强。 该项目的教育目标是让从中学到研究生的学生参与全球能源可持续性主题。 为了实现拟议的教育计划,将开发和评估用于能源工程可持续性模块化教学和学习的交互式演示车。
英文摘要
The production of fuels and chemicals by sustainable processes is one of key technological challenges of the 21st century. Carbon dioxide gas generated by power generation or industrial processes is a potential source of carbon for fuels and chemicals production. However, carbon dioxide is not very reactive, and no viable technologies for its conversion into fuels and chemicals presently exist. The goal of this product is to convert carbon dioxide and water to fuels and chemical using plasma-enhanced solar energy. In the proposed process, solar energy heats the carbon dioxide gas to the high temperatures needed to increase its reactivity. The heated gas is then converted into plasma, also known as an electrically charged gas, using electrical energy. It is reasoned that the plasma state of the gas will enhance the rate of carbon dioxide conversion. The process is potentially sustainable and has a low carbon footprint because it uses waste carbon dioxide and abundant solar energy, where electricity needed to generate the plasma is provided by solar photovoltaic cells. The project will also develop instructional carts for demonstrating energy and sustainability topics inspired by this research to a broad audience that includes Hispanic K-12 students in the Lowell, Massachusetts area. The overall goal of the proposed research is to develop a fundamental understanding of a new process for synthesis of chemical and fuels from carbon dioxide and water using concentrated solar energy to drive the reaction thermochemistry and non-equilibrium plasma to enhance the chemical reaction kinetics. Plasma-Enhanced Solar Energy (PESE) combines solar thermochemistry and plasma science principles. The project will experimentally and computationally investigate PESE for carbon dioxide, water, and methane decomposition and reforming. The research will test the hypothesis that the molecular excitation produced by free electrons in plasmas increases solar photon absorption leading to enhanced chemical reaction kinetics. Towards this end, the proposed research will seek to understand non-equilibrium energy transport phenomena characteristic of free electron and photon systems, with particular focus on processes with comparable photon and electron energy fluxes. To support the research plan, new reactor systems equipped with solar energy receivers and non-equilibrium electrical discharge capability to flowing gas will be developed and characterized. Reactor experiments spanning the ratio of solar to electrical energy inputs will be performed at scalable process conditions. New fluid flow and chemical kinetics models for non-equilibrium energy transport will be derived and experimentally validated. The research outcomes seek to reveal the specific pathways of energy conversion during PESE processing and quantify the efficacy of plasma enhancement. Additionally, the research outcomes are relevant to other fields where electron and photon transport have essential roles, such as laser materials processing, semiconductor manufacturing, and combustion enhancement. The educational goal of the project is to engage students, from middle school to graduate level, on global energy sustainability topics. To enable the proposed education program, interactive demonstration carts for the modular teaching and learning of energy engineering & sustainability will be developed and assessed.
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会议论文
Multi-scale Approach for the Comprehensive Modeling and Simulation of Non-Equilibrium Atmospheric-Pressure Turbulent Plasma Flows
  • 批准号:
    1301935
  • 项目类别:
    Standard Grant
  • 资助金额:
    $15.0万
  • 财政年份:
    2013
  • 负责人:
    Juan Trelles
  • 依托单位:
海外基金