Design of a Clutchless Hybrid Transmission for a High-Performance Vehicle

There exists the potential for major simplifications to current hybrid transmission architectures, which can lead to advances in powertrain performance. This paper assesses the technical merits of various hybrid powertrains in the context of high-performance vehicles and introduces a new transmission concept targeted at high performance hybrid applications. While many hybrid transmission configurations have been developed and implemented in mainstream and even luxury vehicles, ultra high performance sports cars have only recently begun to hybridize. The unique performance requirements of such vehicles place novel constraints on their transmissions designs. The goals become less about improved efficiency and smoothness and more centered on weight reduction, complexity reduction, and performance improvement. To identify the most critical aspects of a high performance transmission, a wide range of existing technologies is studied in concert with basic physical performance analysis of electrical motors and an internal combustion engine. The new transmission concepts presented here emphasize a reduction in inertial, frictional, and mechanical losses. A series of conceptual powertrain designs are evaluated against the goals of reducing mechanical complexity and maintaining functionality. The major innovation in these concepts is the elimination of a friction clutch to engage and disengage gears. Instead, the design proposes that the inclusion of a large electric motor enables the gears to be speed-matched and torque-zeroed without the inherent losses associated with a friction clutch. Additionally, these transmission concepts explore the merits of multiple electric motors and their placement as well as the reduction in synchronization interfaces. Ultimately, two strategies for speed-matched gear sets are considered, and a speed-matching prototype of the chosen methodology is presented to validate the feasibility of the proposed concept. The power flow and operational modes of both transmission architectures are studied to ensure required functionality and identify further areas of optimization. While there are still many unanswered questions about this concept, this paper introduces the base analysis and proof of concept for a technology that has great potential to advance hybrid vehicles at all levels.Copyright © 2015 by ASME

[1]  A. Majumdar,et al.  Opportunities and challenges for a sustainable energy future , 2012, Nature.

[2]  Simos A. Evangelou,et al.  Evaluation of the Through-the-Road Architecture for Plug-In Hybrid Electric Vehicle Powertrains , 2013, 2013 IEEE International Electric Vehicle Conference (IEVC).

[3]  R. Farrington,et al.  IMPACT OF VEHICLE AIR-CONDITIONING ON FUEL ECONOMY. TAILPIPE EMISSIONS, AND ELECTRIC VEHICLE RANGE: PREPRINT , 2000 .

[4]  Behzad Asaei,et al.  Design, simulation, and prototype production of a through the road parallel hybrid electric motorcycle , 2013 .

[5]  Poria Fajri,et al.  Equivalent vehicle rotational inertia used for electric vehicle test bench dynamic studies , 2012, IECON 2012 - 38th Annual Conference on IEEE Industrial Electronics Society.

[6]  Wei Zhang,et al.  Analysis and Modeling of Transmission Efficiency of Vehicle Driveline , 2014 .

[7]  Alexandre Ravey,et al.  Design and control strategy of powertrain in hybrid electric vehicles , 2012 .

[8]  Paul D. Walker,et al.  Study of Power Losses in a Two-Speed Dual Clutch Transmission , 2014 .

[9]  Mauro Velardocchia,et al.  Drivability analysis of through-the-road-parallel hybrid vehicles , 2013 .

[10]  Philip T. Krein,et al.  Packaging and performance of an IGBT-based hybrid electric vehicle , 1994, Proceedings of 1994 IEEE Workshop on Power Electronics in Transportation.

[11]  Xiaoping Wang,et al.  Analysis of Heat Transfer in Power Split Device for Hybrid Electric Vehicle Using Thermal Network Method , 2014 .