Effects of Air Intake Pressure on the Engine Performance, Fuel Economy and Exhaust Emissions of A Small Gasoline Engine

Authors

  • Nik Rosli Abdullah Faculty of Mechanical Engineering, Universiti Teknologi MARA, 40450 Shah Alam, Selangor, Malaysia
  • Nafis Syabil Shahruddin Faculty of Mechanical Engineering, Universiti Teknologi MARA, 40450 Shah Alam, Selangor, Malaysia
  • Rizalman Mamat Faculty of Mechanical Engineering, Universiti Malaysia Pahang, 26600 Pekan, Pahang, Malaysia
  • Aman Mohd. Ihsan Mamat Faculty of Mechanical Engineering, Universiti Teknologi MARA, 40450 Shah Alam, Selangor, Malaysia
  • Aminuddin Zulkifli Faculty of Mechanical Engineering, Universiti Teknologi MARA, 40450 Shah Alam, Selangor, Malaysia

DOI:

https://doi.org/10.15282/jmes.6.2014.21.0091

Keywords:

Air intake pressure; air filter; air fuel ratio; fuel consumption; exhaust emissions.

Abstract

This study presents the engine performance, fuel economy and exhaust emissions at variations of air intake pressure. In a carburetor system, the air intake pressure is influenced by the degree of opening throttle plate and the Venturi effect which draws the fuel to the combustion chamber. The experimental work was carried out on variations of engine speed and load using a single cylinder four stroke gasoline engine attached to a dynamometer. The measured exhaust emission compositions are used to determine the mode of combustion. The results show that the standard air intake system resulted in rich combustion which then led to incomplete combustion, which was caused by less availability of air for the combustion process. Eliminating the air filter reduces the air flow restriction in the air intake system resulting in better combustion and less unburned components due to higher air availability. Higher air intake pressure is better at increasing the efficiency of combustion within a limited time to improve fuel economy, power output and exhaust emissions. Better combustion also leads to reduced unburned components such as carbon (C), hydrogen (H2), carbon monoxide (CO) and hydroxide (OH), which results in cleaner emissions.

References

Abdullah, N., Mamat, R., Rounce, P., Tsolakis, A., Wyszynski, M., & Xu, H. (2009). Effect of injection pressure with split injection in a v6 diesel engine. Energy, 2009, 03-31.

Bhaskar, K., Nagarajan, G., & Sampath, S. (2010). Experimental investigation on cold start emissions using electrically heated catalyst in a spark ignition engine. International Journal of Automotive and Mechanical Engineering, 2, 105-118.

Cengel, Y. A., Boles, M. A., & Kanoglu, M. (2007). Thermodynamics: An engineering approach (si units) (Vol. 6). Singapore: McGraw-Hill New York.

Ceviz, M. A., & Akın, M. (2010). Design of a new si engine intake manifold with variable length plenum. Energy Conversion and Management, 51(11), 2239-2244.

Kamil, M., Rahman, M. M., & Bakar, R. A. (2011). Performance evaluation of external mixture formation strategy in hydrogen fueled engine. Journal of Mechanical Engineering and Sciences, 1, 87-98.

Mohanamurugan, S., & Sendilvelan, S. (2011). Emission and combustion characteristics of different fuel in a hcci engine. International Journal of Automotive and Mechanical Engineering, 3, 279-292.

Mohanraj, T., & Kumar, K. M. M. (2013). Operating characteristics of a variable compression ration engine using esterified tamanu oil. International Journal of Green Energy, 285 - 301.

Pulkrabek, W. W. (2004). Engineering fundamentals of the internal combustion engine: Pearson Prentice Hall.

Radcliff, R. B., Roark, D. L., & Koloski, D. R. (2009). Small engines (3 ed.): American Technical Publishers.

Rahim, R., Mamat, R., Taib, M. Y., & Abdullah, A. A. (2012). Influence of fuel temperature on a diesel engine performance operating with biodiesel blended. Journal of Mechanical Engineering and Sciences, 2, 226-236.

Saad, I., & Bari, S. (2013). Cfd investigation of in-cylinder air flow to optimize number of guide vanes to improve ci engine performance using higher viscous fuel. International Journal of Automotive and Mechanical Engineering, 8, 1096-1107.

Sayin, C., Gumus, M., & Canakci, M. (2010). Effect of fuel injection timing on the emissions of a direct-injection (di) diesel engine fueled with canola oil methyl ester−diesel fuel blends. Energy and Fuels, 24(4), 2675-2682.

Shannak, B., Damseh, R., & Alhusein, M. (2005). Influence of air intake pipe on engine exhaust emission. Forschung im Ingenieurwesen, 70(2), 128-132.

Sundar Raj, C., & Sendilvelan, S. (2010). Effect of oxygenated hydrocarbon additives on exhaust emission of a diesel engine. International Journal of Automotive and Mechanical Engineering, 2, 144-156.

Van Basshuysen, R., & Schäfer, F. (2004). Internal combustion engine handbook-basics, components, systems and perspectives (Vol. 345): SAE International.

Yusaf, T., Baker, P., Hamawand, I., & Noor, M. M. (2013). Effect of compressed natural gas mixing on the engine performance and emissions. International Journal of Automotive and Mechanical Engineering, 8, 1416-1429.

Yusaf, T., Hamawand, I., Baker, P., & Najafi, G. (2013). The effect of methanol-diesel blended ratio on ci engine performance. International Journal of Automotive and Mechanical Engineering, 8, 1385-1395.

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Published

2014-06-30

How to Cite

[1]
Nik Rosli Abdullah, Nafis Syabil Shahruddin, Rizalman Mamat, Aman Mohd. Ihsan Mamat, and Aminuddin Zulkifli, “Effects of Air Intake Pressure on the Engine Performance, Fuel Economy and Exhaust Emissions of A Small Gasoline Engine”, J. Mech. Eng. Sci., vol. 6, no. 1, pp. 949–958, Jun. 2014.

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