A Computer Architecture for the Automatic Design of Modular Systems With Application to Photovoltaic Reverse Osmosis

被引:13
作者
Bilton, Amy M. [1 ]
Dubowsky, Steven [2 ]
机构
[1] Univ Toronto, Dept Mech & Ind Engn, Toronto, ON M5S 3G8, Canada
[2] MIT, Dept Mech Engn, Cambridge, MA 02139 USA
关键词
modular design; optimization; photovoltaics (PV); reverse osmosis (RO); DESALINATION SYSTEM; RO DESALINATION; PV; OPTIMIZATION; ECONOMICS; NETWORKS;
D O I
10.1115/1.4027879
中图分类号
TH [机械、仪表工业];
学科分类号
0802 ;
摘要
Systems such as electronics, cars, computers, and robots are assembled from modular components for specific applications. Photovoltaic reverse osmosis (PVRO) systems, which can be custom-tailored for the water demands and solar properties of particular communities, are an important potential application of modular systems. Clearly, to be financially viable, such systems must be assembled from commercially available components and subsystems (modules). Designing a system from modular components for a specific application is not simple. Even for a relatively small inventory of modular components, the number of possible system configurations that exist is extremely large. For a small community, determining the best system configuration is an overwhelming task due to lack of expertise. This paper presents a modular design architecture that can be implemented on a laptop so nonexperts can configure systems from modular components. The method uses a hierarchy of filters, which can be provided from an expert system, to limit the large design space. Optimization methods and detailed models are then used to configure the location-specific system from the reduced design space. The method is applied here to community-scale PVRO systems and example cases demonstrate the effectiveness of the approach.
引用
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页数:13
相关论文
共 40 条
[31]   Global optimization of reverse osmosis network for wastewater treatment and minimization [J].
Saif, Yousef ;
Elkamel, Ali ;
Pritzker, Mark .
INDUSTRIAL & ENGINEERING CHEMISTRY RESEARCH, 2008, 47 (09) :3060-3070
[32]  
Small C, 2003, J COASTAL RES, V19, P584
[33]  
Solarbuzz, 2012, INV PRIC
[34]  
Spectra Watermakers, 2009, SSW 3500 DAT
[35]   A photovoltaic-powered seawater reverse-osmosis system without batteries [J].
Thomson, M ;
Infield, D .
DESALINATION, 2003, 153 (1-3) :1-8
[36]   Design of a stand alone PV - desalination system for rural areas [J].
Tzen, E ;
Perrakis, K ;
Baltas, P .
DESALINATION, 1998, 119 (1-3) :327-333
[37]   A tool for the design of desalination plants powered by renewable energies [J].
Voivontas, D ;
Misirlis, K ;
Manoli, E ;
Arampatzis, G ;
Assimacopoulos, D ;
Zervos, A .
DESALINATION, 2001, 133 (02) :175-198
[38]   Optimization of reverse osmosis networks for seawater desalination [J].
Voros, N ;
Maroulis, ZB ;
MarinosKouris, D .
COMPUTERS & CHEMICAL ENGINEERING, 1996, 20 :S345-S350
[39]  
WH Organization, 2006, M MDG DRINK WAT SAN
[40]   Optimal selection of module instances for modular products in reconfigurable manufacturing systems [J].
Yigit, AS ;
Allahverdi, A .
INTERNATIONAL JOURNAL OF PRODUCTION RESEARCH, 2003, 41 (17) :4063-4074