Kinetic Energy Recovery System Using Spring
Commenced in January 2007
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Edition: International
Paper Count: 32799
Kinetic Energy Recovery System Using Spring

Authors: Mayuresh Thombre, Prajyot Borkar, Mangirish Bhobe

Abstract:

New advancement of technology and never satisfying demands of the civilization are putting huge pressure on the natural fuel resources and these resources are at a constant threat to its sustainability. To get the best out of the automobile, the optimum balance between performance and fuel economy is important. In the present state of art, either of the above two aspects are taken into mind while designing and development process which puts the other in the loss as increase in fuel economy leads to decrement in performance and vice-versa. In-depth observation of the vehicle dynamics apparently shows that large amount of energy is lost during braking and likewise large amount of fuel is consumed to reclaim the initial state, this leads to lower fuel efficiency to gain the same performance. Current use of Kinetic Energy Recovery System is only limited to sports vehicles only because of the higher cost of this system. They are also temporary in nature as power can be squeezed only during a small time duration and use of superior parts leads to high cost, which results on concentration on performance only and neglecting the fuel economy. In this paper Kinetic Energy Recovery System for storing the power and then using the same while accelerating has been discussed. The major storing element in this system is a Flat Spiral Spring that will store energy by compression and torsion.

The use of spring ensure the permanent storage of energy until used by the driver unlike present mechanical regeneration system in which the energy stored decreases with time and is eventually lost. A combination of internal gears and spur gears will be used in order to make the energy release uniform which will lead to safe usage. The system can be used to improve the fuel efficiency by assisting in overcoming the vehicle’s inertia after braking or to provide instant acceleration whenever required by the driver. The performance characteristics of the system including response time, mechanical efficiency and overall increase in efficiency are demonstrated. This technology makes the KERS (Kinetic Energy Recovery System) more flexible and economical allowing specific application while at the same time increasing the time frame and ease of usage.

Keywords: Electric control unit, Energy, Mechanical KERS, Planetary Gear system, Power, Smart braking, Spiral Spring.

Digital Object Identifier (DOI): doi.org/10.5281/zenodo.1091716

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References:


[1] Chibulka. J., "Kinetic Energy Recovery System by means of Flywheel Energy Storage”, Advanced Engineering Vol. 3,No. 1, pp. 27 -38,1998.
[2] Flybrid Systems LLP (2010-09-10). "Flybrid Systems". Flybrid Systems. Retrieved 2010-09-17.
[3] S. J. Clegg, "A Review of Regenerative Braking System”, Institute of Transport Studies, University of Leeds, Working paper of 471, 1996
[4] Dr. Iqbal Husain, "Electric and hybrid Vehicles: Design Fundamentals”, CRC press, Taylor and Francis Group, USA,2012
[5] Papalambros, P.Y., and D.J. Wilde , "Principles of Optimal Design”, 2nd Ed. Cambridge University Press, New Your, NY,2010
[6] Chen, J-X , Jiang, J-Z. Wang, X-J.,"Research of Energy Regeneration Technology in Electric Vehicle”, Shanghai University Press, Vol. 7, No.2, pp.25-36,2008
[7] R.S, Khurmi "Design of Spring” in "Machine Design and Elements,” in 1st edition, S. Chand Publication, 2012, pp.864-866
[8] Dr. Rajendra Karwa "Spring Helical and Leaf,” in "Machine Design,” second edition, ISBN 81-7008-833-X, pp.313-319
[9] Joseph E Shigley & Charles R Mischke "Designing Helical and Coil Torsion Springs” in "Mechanical Engineering Design,” sixth edition, ISBN 0-07-049462-2, New York: Tata Mcgrawhill, pp.661-674
[10] R.S, Khurmi "Design of Gear” in "Machine Design and Elements,” in 1st edition, S. Chand Publication, 2012, pp.1021-1065
[11] Robert L Norton "Gear trains, loading on Spur gears and Stresses in spur gears” in "machine Design,” second edition, Pearson Education, ISBN- 81-2808-434-1, pp. 703-726
[12] Dr. Rajendra Karwa "Gearing,” in "Machine Design,” second edition, ISBN 81-7008-833-X, pp.560-606
[13] Dr. Jagdish Lal "Toothed Gears (Higher pairs-II)” in "Theory pf Mechanism and Machines,” second edition, 1998, ISBN 91-200-0272-5, pp.474-537
[14] Dr. Sadhu Singh "Spur Gears” in "Mechanical Machine Design-II,” first edition, ISBN 98-93-5014-266-0, pp.243-311
[15] Dr. Jagdish Lal "Gear Trains” in "Theory pf Mechanism and Machines,” second edition, 1998, ISBN 91-200-0272-5, pp.543-568
[16] R.S, Khurmi "Shafts” in "Machine Design and Elements,” in 1st edition, S. Chand Publication, 2012, pp.509-557
[17] Dr. Rajendra Karwa "Spring Helical and Leaf,” in "Machine Design,” second edition, ISBN 81-7008-833-X, pp.313-319
[18] Spring and Gear design, Design Data Handbook, K. Mahadevan, K. Balveera Reddy.