Reducing fuel consumption through modular vehicle architectures

被引:5
作者
Carvalho, Irene [1 ]
Baier, Thomas [2 ]
Simoes, Ricardo [3 ,4 ]
Silva, Arlindo [1 ]
机构
[1] Univ Tecn Lisboa, IST, ICEMS, P-1049001 Lisbon, Portugal
[2] CMUP, Dept Matemat, P-4169007 Oporto, Portugal
[3] Escola Super Tecnol, Inst Politecn Cavado & Ave, P-4750810 Barcelos, Portugal
[4] Univ Minho, Inst Polymers & Composites IPC I3N, P-4800058 Guimaraes, Portugal
关键词
Lightweighting; Modularity; Fuel economy; Design for flexibility in use; Lean driving systems; Driving patterns; MATERIALS SELECTION; DESIGN; OPTIMIZATION; REDUCTION; SUBSTITUTION; EMISSIONS; TRANSPORT; IMPACT;
D O I
10.1016/j.apenergy.2011.12.004
中图分类号
TE [石油、天然气工业]; TK [能源与动力工程];
学科分类号
0807 ; 0820 ;
摘要
By identifying energy waste streams in vehicles fuel consumption and introducing the concept of lean driving systems, a technological gap for reducing fuel consumption was identified. This paper proposes a solution to overcome this gap, through a modular vehicle architecture aligned with driving patterns. It does not address detailed technological solutions; instead it models the potential effects in fuel consumption through a modular concept of a vehicle and quantifies their dependence on vehicle design parameters (manifesting as the vehicle mass) and user behavior parameters (driving patterns manifesting as the use of a modular car in lighter and heavier mode, in urban and highway cycles). Modularity has been functionally applied in automotive industry as manufacture and assembly management strategies; here it is thought as a product development strategy for flexibility in use, driven by environmental concerns and enabled by social behaviors. The authors argue this concept is a step forward in combining technological solutions and social behavior, of which eco-driving is a vivid example, and potentially evolutionary to a lean, more sustainable, driving culture. (C) 2011 Elsevier Ltd. All rights reserved.
引用
收藏
页码:556 / 563
页数:8
相关论文
共 55 条
[1]   How much transport can the climate stand?: Sweden on a sustainable path in 2050 [J].
Åkerman, J ;
Höjer, M .
ENERGY POLICY, 2006, 34 (14) :1944-1957
[2]   Modelling transport energy demand: A socio-technical approach [J].
Anable, Jillian ;
Brand, Christian ;
Martino Tran ;
Eyre, Nick .
ENERGY POLICY, 2012, 41 :125-138
[3]   Metal resource constraints for electric-vehicle batteries [J].
Andersson, BA ;
Råde, I .
TRANSPORTATION RESEARCH PART D-TRANSPORT AND ENVIRONMENT, 2001, 6 (05) :297-324
[4]  
[Anonymous], MACMILLAN ENCY ENERG
[5]  
Ashby M.F., 2009, Materials and the Environment: Eco-Informed Material Choice
[6]  
Ashby M, 2010, MATERIALS AND DESIGN: THE ART AND SCIENCE OF MATERIAL SELECTION IN PRODUCT DESIGN, 2ND EDITION
[7]   Wood-plastic composites as promising green-composites for automotive industries! [J].
Ashori, Alireza .
BIORESOURCE TECHNOLOGY, 2008, 99 (11) :4661-4667
[8]   Optimisation of a GMT-based cold pressing technique for low cost textile reinforced thermoplastic composites [J].
Baeten, S ;
Verpoest, I .
COMPOSITES PART A-APPLIED SCIENCE AND MANUFACTURING, 1999, 30 (05) :667-682
[9]   Eco-driving: An overlooked climate change initiative [J].
Barkenbus, Jack N. .
ENERGY POLICY, 2010, 38 (02) :762-769
[10]   Energy and emissions impacts of a freeway-based dynamic eco-driving system [J].
Barth, Matthew ;
Boriboonsomsin, Kanok .
TRANSPORTATION RESEARCH PART D-TRANSPORT AND ENVIRONMENT, 2009, 14 (06) :400-410