Nanofurnaces and Microreactors for Catalysis
Nanofurnaces and Microreactors for Catalysis
批准号:
RGPIN-2022-04078
负责人:
Braidy, Nadi
金额:
$3.35万
依托单位:
依托单位国家:
加拿大
项目类别:
Discovery Grants Program - Individual
财政年份:
2022
资助国家:
加拿大
项目状态:
已结题
起止时间:
2022-01-01 至 2023-12-31
中文摘要
高温气相催化反应在化学工业和环境中无处不在。这些反应可为下游生产提供基本原料,或可将有毒烟气转化为无害化学品。知道反应发生在催化剂的表面,很大一部分能量是在加热气体、载体和床层时损失的。对于吸热反应尤其如此,因为吸热反应必须不断地向床体供热。对于放热反应,衬底、床层和气体本身都会产生热惯性,从而延长反应器运行前的点火延迟时间。在本研究计划中,我们建议使用磁感应作为传统加热方法的替代方法。通过这种方式,热量被直接输送到反应部位,从而提供更高的能源效率和更快的加热速率。这将使用由磁性纳米颗粒组成的纳米材料组件来完成,这些纳米材料易受磁感应加热(IH)的影响,并由催化剂修饰。在我们的5年研究计划中,我们将在实验室以往成功的基础上,研究和发展高温气相催化反应中纳米炉的概念。研究目标将针对这一新型催化过程的几个方面:(A)设计一种用于诱导催化的新型纳米材料模板,该模板由磁感受器、惰性壳(或基体)和壳内或壳上的催化剂组成。它们在反应过程中的行为将通过原位技术进行研究,这将为纳米结构在操作过程中的演变提供宝贵而独特的见解。(B)研究不同的固定床反应器设计,比较它们的比吸收率。本课题将进一步探索利用感应加热分解乙炔制备纳米碳球的可能性。(C)对过程进行模拟和建模,以支持反应器的设计和优化。一旦根据实验数据验证了模型,我们的目标是使用多尺度方法绘制IH催化剂床和常规反应器类型的温度和反应速率。催化剂可以进一步优化,以提高整体性能。通过对废气、产量、生产率和功耗的详细分析,我们将对各种感应加热配置与传统方式加热的等效反应器进行基准测试。该研究计划提出了研究感应加热催化过程的新方法。这一新兴的研究领域为纳米材料工程、反应堆设计和建模等领域提供了丰富多样的科学挑战。该研究项目为HQP培训和创新提供了肥沃的土壤,这些创新可以带来更高效的反应堆类型和生产蓝氢或减少有毒排放的新途径。
英文摘要
High-temperature gas-phase catalytic reactions are ubiquitous to the chemical industries and the environment. These reactions can provide the building blocks for downstream production or can convert toxic flue gases to innocuous chemicals. Knowing that the reaction takes place at the surface of the catalyst, a large fraction of the energy is lost heating the gas, the support, and the bed. This is especially true for endothermic reactions, for which heat must be continually supplied to the bed. For exothermic reactions, the substrate, the bed, and the gas itself contribute to thermal inertia which extends the light-off delay before the reactor is operational. In this research program, we propose to use magnetic induction as an alternative to traditional heating methods. This way, the heat is administered directly to the reaction site thus providing higher energy efficiency and faster heating rates. This will be done using assemblies of nanomaterials consisting of magnetic nanoparticles, susceptible to magnetic induction heating (IH), decorated by the catalyst. In our 5-year research program, we will build on previous successes of the lab to investigate and develop the concept of nano furnaces in high-temperature gas-phase catalytic reactions. The research objectives will target several aspects of this novel catalytic process: (A) Design a new nanomaterial template for induction catalysis made of a magnetic susceptor, an inert shell (or matrix), and a catalyst within or on the shell. Their behavior during the reaction will be studied with in situ techniques which will provide precious and unique insight into the evolution of the nanostructures during operation. (B) Investigate different fixed-bed reactor designs by comparing their specific absorption rate. This theme will branch to test the possibility of using induction heating to produce carbon nanosphere by the decomposition of acetylene. (C) Simulate and model the process to support the design and the optimization of the reactor. Once the model is validated against experimental data, we aim to map the temperature and the reaction rate across the catalyst bed of IH and conventional types of reactors using a multiscale approach. The catalyst can be further optimized to improve the overall performance. With a detailed analysis of the exhaust gas, the yield, production rate, and the power consumed, we will benchmark the various induction heating configurations against equivalent reactors heated by traditional means. The research program proposes new approaches to investigate induction heated catalytic processes. This emerging field of research offers a rich variety of scientific challenges in the fields of nanomaterials engineering, reactor design, and modeling. The research program provides fertile grounds for HQP training and for innovation that can lead to more efficient types of reactors and novel pathways to produce blue hydrogen or mitigate toxic emissions.
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项目类别:Canada Research Chairs
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资助金额:$2.04万
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项目类别:Discovery Grants Program - Individual
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资助金额:$2.04万
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财政年份:2019
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负责人:Braidy, Nadi
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依托单位:
Engineering of spinels for catalysis
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批准号:RGPIN-2016-04344
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资助金额:$2.04万
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nanomatériaux multifonctionnels
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批准号:1000230733-2014
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资助金额:$8.74万
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依托单位:
nanomatériaux multifonctionnels
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批准号:1000230733-2014
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资助金额:$7.29万
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资助金额:$2.04万
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财政年份:2017
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负责人:Braidy, Nadi
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依托单位:
Engineering of spinels for catalysis
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批准号:RGPIN-2016-04344
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资助金额:$2.04万
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财政年份:2016
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依托单位:
nanomatériaux multifonctionnels
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资助金额:$7.29万
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nanomatériaux multifonctionnels
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