Rotary regenerative shock absorbers for automotive suspensions

被引:19
作者
Galluzzi, Renato [1 ]
Circosta, Salvatore [1 ]
Amati, Nicola [1 ]
Tonoli, Andrea [1 ]
机构
[1] Politecn Torino, Dept Mech & Aerosp Engn, Corso Duca Abruzzi 24, Turin, Italy
关键词
Regenerative; Energy harvesting; Gearbox; Damper; Rotary; DESIGN; EFFICIENCY; SYSTEM;
D O I
10.1016/j.mechatronics.2021.102580
中图分类号
TP [自动化技术、计算机技术];
学科分类号
0812 ;
摘要
The increasingly strict limits on pollutant emissions are pushing the car industry towards the electrification of the powertrain and chassis. This scenario has driven the automotive field to the use of energy harvesters. Among these, regenerative shock absorbers are mechatronic devices that enable the energy recovery from road irregularities, thus yielding benefits in terms of fuel saving and ride quality. The state of the art proposes different technologies for regenerative dampers. In this context, rotary dampers represent an unexplored field from the scientific point of view. These devices feature a linkage and a gearbox to convert the suspension linear motion into rotation of an electric machine. This work proposes a novel system-level design methodology for rotary regenerative shock absorbers and explores their performance from an experimental perspective. The design is focused in yielding a compact solution able to fulfill a given damping specification. Hence, the integrated definition of electric machine, gearbox and linkage is addressed by the proposed method. To support the methodology, a case study is presented. A fully functional prototype is produced and successfully validated in terms of damping capability, total conversion efficiency and acoustic behavior. The obtained results demonstrate the validity of the proposed methodology and the advantageous features of rotary dampers with respect to other regenerative suspension solutions.
引用
收藏
页数:12
相关论文
共 37 条
[21]   Energy-harvesting shock absorber with a mechanical motion rectifier [J].
Li, Zhongjie ;
Zuo, Lei ;
Kuang, Jian ;
Luhrs, George .
SMART MATERIALS AND STRUCTURES, 2013, 22 (02)
[22]   Design, Modeling, Lab, and Field Tests of a Mechanical-Motion-Rectifier-Based Energy Harvester Using a Ball-Screw Mechanism [J].
Liu, Yilun ;
Xu, Lin ;
Zuo, Lei .
IEEE-ASME TRANSACTIONS ON MECHATRONICS, 2017, 22 (05) :1933-1943
[23]  
Lynwander P, 2019, GEAR DRIVE SYSTEMS D
[24]  
Matsuoka Y, 1991, Google Patents. US Patent, Patent No. [5, 074, 581, 5074581]
[25]  
Miller T.J. E., 1989, Monographs in Electrical and Electronic Engineering No. 21 - Brushless permanent-magnet and reluctance motor drives
[26]   Energy-harvesting potential of automobile suspension [J].
Mucka, Peter .
VEHICLE SYSTEM DYNAMICS, 2016, 54 (12) :1651-1670
[27]   A Methodology to Synthesize Gearbox and Control Design for Increased Power Production and Blade Root Stress Mitigation in a Small Wind Turbine [J].
Nejadkhaki, Hamid Khakpour ;
Lall, Amrita ;
Hall, John F. .
JOURNAL OF MECHANICAL DESIGN, 2017, 139 (08)
[28]   Characteristic Analysis of Wind Turbine Gearbox Considering Non-Torque Loading [J].
Park, Young-Jun ;
Lee, Geun-Ho ;
Song, Jin-Seop ;
Nam, Yong-Yun .
JOURNAL OF MECHANICAL DESIGN, 2013, 135 (04)
[29]  
Shigley JE, 2011, Shigley's mechanical engineering design
[30]   Dynamic characteristics of eddy current dampers and couplers [J].
Tonoli, Andrea .
JOURNAL OF SOUND AND VIBRATION, 2007, 301 (3-5) :576-591