globalchange  > 全球变化的国际研究计划
项目编号: 1602984
项目名称:
Collaborative Research: Enhanced Adsorption Cooling with Monolithic Nanoporous Adsorbents
作者: Ming Su
承担单位: Northeastern University
批准年: 2016
开始日期: 2016-09-01
结束日期: 2019-08-31
资助金额: 158839
资助来源: US-NSF
项目类别: Standard Grant
国家: US
语种: 英语
特色学科分类: Engineering - Chemical, Bioengineering, Environmental, and Transport Systems
英文关键词: monolith ; adsorption cooling system ; adsorption ; research ; cooling-adsorption-evaporation ; adsorbent material ; heat ; compact adsorption ; monolithic nanoporous adsorbentsadsorption cooling ; adsorption uptake ; adsorption cycle ; adsorbent mass ; monolithic nanoporous adsorbent layer ; research plan
英文摘要: High Performance Adsorption Cooling Systems Using Monolithic Nanoporous Adsorbents

Adsorption cooling is an alternative technology to vapor compression air conditioning. It is powered by low-grade heat, solar energy, or waste heat from industrial processes or automotive engines. It uses environmentally friendly refrigerants like water as the working fluid. The sorption bed is the core of an adsorption cooling system in which the working fluid is adsorbed/desorbed to compensate for the work needed in a conventional vapor compression cycle. To produce cooling, adsorption cycle undergoes two main processes: heating-desorption-condensation and cooling-adsorption-evaporation. The refrigerant is desorbed by heating the adsorbent material and condensing in the condenser while it vaporizes in the evaporator and is adsorbed by cooling the adsorbent material. Fast thermal response of the bed is the key factor that leads to high performance. Packed beds, which suffer from low thermal conductivity due to the poor particle-to-particle contact and poor particle-to-cooling surface contact, are regularly used in such systems. In this research, an innovative bed will be constructed by growing a monolithic nanoporous adsorbent layer with considerable thickness on copper fins of heat exchangers. The monolith has internal vapor channels to reduce vapor diffusion resistance and its thermal conductivity is expected to be many folds higher than those in packed beds. The proposed monoliths can be used in highly efficient and compact adsorption cooling units. In parallel to the research, senior students will be trained in designing environmental friendly cooling systems.

A radically different and potentially transformative adsorption cooling system will be developed. The system is based on monolithic nanoporous silica or copper. Our research plan will include: preparing monoliths, building an experimental set-up, modeling the heat and mass transfer processes, designing and building new bed using nanoporous monoliths, and measuring surface stresses. First, monoliths will be prepared via complete removal of residue solvent of nanostructured silica gel. The surface of the silica gel will be covered with a layer of liquid paraffin so that the process will be carried out at high temperature and in a mild way to prevent the monolith from cracking. Vertical pillars will be placed to form the vapor paths. After forming the monoliths, the pillars can be removed. Second, an experimental measurement set-up will be built to monitor the change of the adsorbent mass as a function of time at a desired pressure and temperature. The measured data will be used to determine mass diffusion coefficient, activation energy, and heat of adsorption. In the modeling part, the heat and mass transfer processes will be solved in the micropores generated in the nano-monoliths. The model will rely on solving the flow in the pores as well as the adsorption and diffusion processes of vapor in the solid phase. At the interface between the two phases mass and energy balances will be applied. Next, to monitor the performance of the developed monoliths in adsorption cooling system, a new adsorbing bed will be constructed by growing a thick monolith layer on a heat exchanger, which increases adsorption uptake. Different design configurations will be tested to come up with the best design. Specific cooling power (SCP) and coefficient of performance (COP) will be calculated to evaluate the new bed performance. During the operation of the cooling system, the monolithic nanoporous material may experience large surface tension from liquid that may damage the nano structures. So the mechanical stability of the developed material will be tested by measuring the surface stresses of a layer of the material coated on a micro cantilever of Atomic Force Microscope (AFM).
资源类型: 项目
标识符: http://119.78.100.158/handle/2HF3EXSE/91075
Appears in Collections:全球变化的国际研究计划
科学计划与规划

Files in This Item:

There are no files associated with this item.


Recommended Citation:
Ming Su. Collaborative Research: Enhanced Adsorption Cooling with Monolithic Nanoporous Adsorbents. 2016-01-01.
Service
Recommend this item
Sava as my favorate item
Show this item's statistics
Export Endnote File
Google Scholar
Similar articles in Google Scholar
[Ming Su]'s Articles
百度学术
Similar articles in Baidu Scholar
[Ming Su]'s Articles
CSDL cross search
Similar articles in CSDL Cross Search
[Ming Su]‘s Articles
Related Copyright Policies
Null
收藏/分享
所有评论 (0)
暂无评论
 

Items in IR are protected by copyright, with all rights reserved, unless otherwise indicated.