Creating Tunable Adaptive Boiling Heat Transfer Surfaces with Electrowetting
Creating Tunable Adaptive Boiling Heat Transfer Surfaces with Electrowetting
批准号:
1236606
负责人:
Dong Liu
金额:
$30.0万
依托单位:
依托单位国家:
美国
项目类别:
Standard Grant
财政年份:
2012
资助国家:
美国
项目状态:
已结题
起止时间:
2012-09-01 至 2016-08-31
中文摘要
CBET-1236606 PI:刘东热能输送是涉及发电和能量传输的无数工业过程中的一个关键方面。 核态沸腾作为传递大量热能的一种有效手段,已经被应用了几十年。 因此,如果能够更好地控制和增强核态沸腾传热,这些过程的能量效率将显著提高。 核态沸腾传热强化技术有两个主要目标:1)使受热表面每单位温度升高的传热量最大化,以及2)增加核态沸腾传热的上限,也称为临界热通量,在临界热通量下,表面被干蒸汽覆盖,可能发生灾难性烧毁。 目前流行的强化方法是基于化学或形貌结构的沸腾表面。 然而,这种表面结构的主要缺点是它们的静态性质,这阻止了时空动态沸腾过程的主动控制。 因此,核态沸腾的可用热性能远远低于其巨大的潜力。 本计画将探索一个新的途径,借由电湿润的辅助,创造可调的适应性沸腾表面,以强化核态沸腾热传。 它利用了核态沸腾中疏水性和亲水性的互补作用,并利用电润湿的能力来可逆地和鲁棒地改变表面润湿性。 本研究将阐明电润湿调制可逆表面润湿对核态沸腾的影响,并证明这种可调自适应沸腾传热表面的高效和低成本制造。 通过利用电润湿,这项工作将提供一个以前未开发的和强大的工具,主动控制和优化关键核沸腾过程。 核态沸腾传热的强化将提高各种能源系统的效率,减小其体积和成本。 该项目将提供一种变革性的方法来克服核态沸腾传热技术中的性能限制障碍。 因此,它将对依赖核态沸腾作为主要传热手段的工业产生深远的影响。 在这项工作中开发的设计和制造技术将奠定基础,走向经济的大规模生产的功能表面沸腾传热应用。 休斯顿大学将建立一个综合的研究和教育项目,这是全国种族最多样化的研究型大学之一。 该方案将通过积极招聘合格的少数民族和女学生作为本科生/研究生研究助理,为代表性不足的群体创造新的职业机会。 教育推广活动将为K-12教师和学生提供科学培训和实验室经验。
英文摘要
CBET-1236606PI: Dong LiuThermal energy transport is a critical aspect in a myriad of industrial processes involving power generation and energy transmission. Nucleate boiling has been employed for decades as an effective means of transferring large amount of thermal energy. Thus, if nucleate boiling heat transfer can be better controlled and enhanced, energy efficiency of these processes will be improved significantly. There are two primary goals of nucleate boiling heat transfer enhancement technologies: 1) to maximize heat transfer per unit temperature rise in the heated surface, and 2) to increase the upper limit of nucleate boiling heat transfer, also known as the critical heat flux, at which the surface is blanketed with dry vapor and catastrophic burnout may occur. The prevailing enhancement methods are based on chemically or topographically structuring the boiling surface. However, the main disadvantage of such surface structures is their static nature, which prevents active control of the spatiotemporally dynamic boiling process. Consequently, the available thermal performance of nucleate boiling is far below its enormous potentials. This project will explore a new venue to enhance nucleate boiling heat transfer by creating tunable adaptive boiling surfaces with the aid of electrowetting. It capitalizes on the complimentary roles of hydrophobicity and hydrophilicity played in nucleate boiling, and takes advantage of the ability of electrowetting to alter the surface wettability reversibly and robustly. This research will elucidate the effects of electrowetting-modulated reversible surface wetting on nucleate boiling as well as demonstrate the efficient and low-cost manufacturing of such tunable adaptive boiling heat transfer surfaces. By exploiting electrowetting, this work will provide a previously unexplored and powerful tool to actively control and optimize the key nucleate boiling processes. Enhancing nucleate boiling heat transfer will improve the efficiency and reduce the size and cost of various energy systems. This project will provide a transformative approach to conquer the performance-limiting obstacles in nucleate boiling heat transfer technologies. Thus, it will have far-reaching impacts on industries that rely on nucleate boiling as the primary means of heat transfer. The design and fabrication techniques developed in this work will lay the foundation toward economical large-scale production of functional surfaces for boiling heat transfer applications. An integrated research and education program will be established at University of Houston, which is one of the most ethnically diverse research universities in the nation. The program will create new career opportunities for underrepresented groups by actively recruiting qualified minority and female students as undergraduate/graduate research assistants. The educational outreach activities will provide scientific training and laboratory experiences to K-12 teachers and students.
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