ENGINE PERFORMANCE VALIDATION OF THE OPTIMAL DESIGN OF EXPERIMENT VALVETRAIN PARAMETERS

Authors

  • Mohd Shahrudin Mohd Alias Perusahaan Otomobil Nasional Sdn. Bhd., Persiaran Kuala Selangor, Seksyen 26, 40400 Shah Alam, Selangor Darul Ehsan
  • Nor Hayati Saad Faculty of Mechanical Engineering, Universiti Teknologi MARA, 40450 Shah Alam, Selangor, Malaysia
  • Juri Saedon Faculty of Mechanical Engineering, Universiti Teknologi MARA, 40450 Shah Alam, Selangor, Malaysia
  • Nor Hidayahti Hassan Perusahaan Otomobil Nasional Sdn. Bhd., Persiaran Kuala Selangor, Seksyen 26, 40400 Shah Alam, Selangor Darul Ehsan

DOI:

https://doi.org/10.11113/jt.v76.5694

Keywords:

Valvetrain noise, DOHC (Double Overhead Camshaft), gasoline engine, performance test, brake torque, brake power

Abstract

Early stage of engine valvetrain noise improvement involves the implementation of Design of Experiment (DOE) specifically the Taguchi methodology to identify the optimum valvetrain parameters which resulted in significant noise improvement. The parameters are consist of seven controlled factors such as cylinder head tappet bore diameter, mechanical tappet diameter, valve spring load, camshaft exhaust and intake waviness together with tappet exhaust and intake clearance. The confirmation run which was previously completed yields the valvetrain noise level at 67.07db SPL by 1 meter distance in completed vehicle during idling condition. In order to satisfy the final quality of the optimal valvetrain, a test is carried out to validate the performance curve on a dynamometer according to benchmark specification. The objective of the test is to validate the optimal valvetrain based on the experimental result which minimum manufacturing target shall be achieved to indicate that the engine is operated within its intended design. The performance test was conducted at the manufacturing plant on an eddy current dynamometer which runs for 11 hours. As results, the performance are within the standard with approximate increased by 6.9% as compared with baseline valvetrain and confirmed by several follow-up tests made on the improved valvetrain. In order to verify and address the main engine output of the optimal valvetrain, brake specific fuel consumption (BSFC) and emissions test results are then presented at the end of this paper. 

References

Stamatis, D. H. 2002. Six sigma and Beyond: Design of Experiments (Vol. 6). Florida: CRC Press.

Pulkrabek, W. W. 2004. Engineering Fundamentals Of The Internal Combustion Engine. New Jersey: Prentice Hall.

Abuhabaya, A. A. and Fieldhouse, J. D. 2010. Variation Of Engineer Performance And Emissions Using Ethanol Blends. In Proceedings of the 36th International MATADOR Conference Springer London. 413-416.

Mohd Hasnun Arif, H. 2012. Design Of A Dynamometer Engine Coupling Shaft. (Doctoral dissertation, Universiti Malaya).

Proton. 2013. ETM Dyno Test Bench Facilities. Unpublished,

Proton. 2009. Performance Test Module_Eddy Current Dynamometer Test Bench. Unpublished.

Hwang, S. Y., Kang, K. T., Lim, B. S., and Lim, Y. S. 2005. Noise Reduction And Sound Quality Improvement Of Valve Train In V6 Gasoline Engine (No. 2005-01-1834). SAE Technical Paper.

Downloads

Published

2015-09-29

Issue

Section

Science and Engineering

How to Cite

ENGINE PERFORMANCE VALIDATION OF THE OPTIMAL DESIGN OF EXPERIMENT VALVETRAIN PARAMETERS. (2015). Jurnal Teknologi, 76(6). https://doi.org/10.11113/jt.v76.5694