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Auxiliary air conditioner for vehicles storing liquid hydrogen

Yıl 2019, Cilt: 31 Sayı: 4, 336 - 354, 01.11.2019
https://doi.org/10.7240/jeps.590618

Öz

Current Vehicle Air Conditioning
(VAC) systems, which are operated by compressors driven by Internal Combustion
Engines (ICEs) or batteries, increase the fuel consumption and emissions
depending on the thermal load of the vehicle passenger cabin. Since decreasing
the thermal load of the vehicle will decrease the fuel consumption and
emissions, studies in this area is very important from the economic and
environmental aspects. In this study, an Auxiliary Air Conditioning (AAC) system
for Internal Combustion Engine Vehicles (ICEVs) or Fuel Cell Vehicles (FCVs)
that store Liquid Hydrogen (LH2) as a powering source has been proposed
to make contribution to the works in this significant area. ICEVs were
evaluated as Gasoline Equivalent Hydrogen Internal Combustion Engine Vehicles
(GEHICEVs) and Diesel Equivalent Hydrogen Internal Combustion Engine Vehicles (DEHICEVs)
considering their average fuel consumption rates according to the New European
Driving Cycle (NEDC). According to the analyses, approximate hydrogen
consumption values have been found that reach 0.7 g/s for GEHICEVs, 1.6 g/s for
DEHICEVs, and 0.6 g/s for FCVs with maximum cooling rates of 326 W, 704 W, and
250 W, respectively.

Kaynakça

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  • [3] Akar, M.A., Kekilli, E., Bas, O., Yildizhan, S., Serin, H. and Ozcanli, M., (2018) “Hydrogen enriched waste oil biodiesel usage in compression ignition engine”, International Journal of Hydrogen Energy, 43, 38, 18046-18052.
  • [4] Baltacioglu, M.K., Arat, H.T., Özcanli, M. and Aydin, K., (2016) “Experimental comparison of pure hydrogen and HHO (hydroxy) enriched biodiesel (B10) fuel in a commercial diesel engine”, International Journal of Hydrogen Energy, 41, 19, 8347-8353.
  • [5] Ozcanli, M., Akar, M.A., Calik, A. and Serin, H., (2017) “Using HHO (Hydroxy) and hydrogen enriched castor oil biodiesel in compression ignition engine”, International Journal of Hydrogen Energy, 42, 36, 23366-23372.
  • [6] Ozcanli, M., Bas, O., Akar, M.A., Yildizhan, S. and Serin, H., (2018) “Recent studies on hydrogen usage in Wankel SI engine”, International Journal of Hydrogen Energy, 43, 38, 18037-18045.
  • [7] Serin, H. and Yıldızhan, Ş., (2018) “Hydrogen addition to tea seed oil biodiesel: Performance and emission characteristics”, International Journal of Hydrogen Energy, 43, 38, 18020-18027.
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Sıvı hidrojenli taşıtlar için yardımcı bir klima sistemi

Yıl 2019, Cilt: 31 Sayı: 4, 336 - 354, 01.11.2019
https://doi.org/10.7240/jeps.590618

Öz

İçten yanmalı motor veya
batarya ile hareket ettirilen bir kompresör ile çalışan günümüz taşıt
klimaları, taşıt yolcu kabininin ısıl yüküne bağlı olarak yakıt tüketimini ve
emisyonları artırmaktadır. Kabin ısıl yükünün düşürülmesi yakıt tüketimi ve
emisyonları azaltacağı için, bu alandaki çalışmalar ekonomik ve çevresel yönden
çok önemlidir.  Bu çalışmada, içten
yanmalı motor veya yakıt hücresinde yakıt olarak sıvı hidrojen kullanan
taşıtlar için yardımcı bir klima sistemi önerilmektedir. İçten yanmalı motoru
olan taşıtlar, benzin (GEHICEV) ve dizele (DEHICEV) eşdeğer hidrojen yakıtlı
taşıtlar olmak üzere ikiye ayrılmakta ve bu taşıtların yakıt tüketimleri Yeni
Avrupa Sürüş Çevrimi’ne (NEDC) gore hesaplanmaktadır. Analizlere gore; GEHICEV,
 DEHICEV ve yakıt hücreli taşıtlarda
(FCV) yaklaşık hidrojen tüketim değerlerinin sırasıyla 0.7-1.6- 0.6 g/s olduğu,
ve değerlere gore yapılabilecek en yüksek soğutma değerlerinin yine sırasıyla 326-704-250
W olarak ortaya çıktığı bulunmuştur.

Kaynakça

  • [1] Ciniviz, M. and Köse, H., (2011) "The use of hydrogen in internal combustion engine: a review". International Journal of Automotive Engineering and Technologies, 1.
  • [2] Tüccar, G., Tosun, E., Özcanlı, M. and Aydın, K., (2013) "Possibility of Turkey to transit Electric Vehicle-based transportation", International Journal of Automotive Engineering and Technologies 2: 64-69.
  • [3] Akar, M.A., Kekilli, E., Bas, O., Yildizhan, S., Serin, H. and Ozcanli, M., (2018) “Hydrogen enriched waste oil biodiesel usage in compression ignition engine”, International Journal of Hydrogen Energy, 43, 38, 18046-18052.
  • [4] Baltacioglu, M.K., Arat, H.T., Özcanli, M. and Aydin, K., (2016) “Experimental comparison of pure hydrogen and HHO (hydroxy) enriched biodiesel (B10) fuel in a commercial diesel engine”, International Journal of Hydrogen Energy, 41, 19, 8347-8353.
  • [5] Ozcanli, M., Akar, M.A., Calik, A. and Serin, H., (2017) “Using HHO (Hydroxy) and hydrogen enriched castor oil biodiesel in compression ignition engine”, International Journal of Hydrogen Energy, 42, 36, 23366-23372.
  • [6] Ozcanli, M., Bas, O., Akar, M.A., Yildizhan, S. and Serin, H., (2018) “Recent studies on hydrogen usage in Wankel SI engine”, International Journal of Hydrogen Energy, 43, 38, 18037-18045.
  • [7] Serin, H. and Yıldızhan, Ş., (2018) “Hydrogen addition to tea seed oil biodiesel: Performance and emission characteristics”, International Journal of Hydrogen Energy, 43, 38, 18020-18027.
  • [8] Stockhausen, W.F., Natkin, R.J., Kabat, D.M., Reams, L., Tang, X., Hashemi, S., “ Ford P2000 hydrogen engine design and vehicle development program”, SAE Paper No. 2002-01-0240.
  • [9] Tang, X. Kabat, D.M., Natkin, R.J., Stockhausen, W.F., Heffel, J., “Ford P2000 hydrogen engine dynamometer development”, SAE Paper No. 2002-01-0242.
  • [10] Arnold, G., and Wolf, J.,, (2005) “Liquid Hydrogen for Automotive Application Next Generation Fuel for FC and ICE Vehicles”, Teion Kogaku (J. Cryo. Soc. Jpn.), 40, 6.
  • [11] Wallner, T., Lohse-Busch, H., Gurski, S., Duoba, M., Thiel, W., Martin, D., Korn, T., (2008) “Fuel economy and emissions evaluation of BMW Hydrogen 7 Mono-Fuel demonstration vehicles”, International Journal of Hydrogen Energy, 33, 24, 7607-7618.
  • [12] Kiesgen, G., Kluting, M., Bock, C., Fischer, H., “The new 12-cylinder hydrogen engine in the 7 series: the H2 ICE age has begun”, SAE Paper No. 2006-01-0431.
  • [13] Pehr, K., (1996) “Aspects of safety and acceptance of LH2 tank systems in passenger cars”, International Journal of Hydrogen Energy, 21, 5, 387–395.
  • [14] Michel, F., Fieseler, H., Meyer, G., Theissen, F., (1998) “On-board equipment for liquid hydrogen vehicles”, International Journal of Hydrogen Energy, 23, 3, 191–199.
  • [15] Ansarinasab, H., Mehrpooya, M. and Mohammadi, A., (2017) “Advanced exergy and exergoeconomic analyses of a hydrogen liquefaction plant equipped with mixed refrigerant system”, Journal of Cleaner Production, 144, 248-259.
  • [16] Theiler, G., Gradt, T., (2018) “Friction and wear behaviour of polymers in liquid hydrogen”, Cryogenics, 93, 1-6.
  • [17] Lambert, M.A., Jones, B.J., (2006) “Automotive adsorption air conditioner powered by exhaust heat. Part1: conceptual and embodiment design”, Journal of Automobile Engineering, 220, 959-972.
  • [18] Khayyam, H., (2013) “Adaptive intelligent control of vehicle air conditioning system”, Applied Thermal Engineering, 51, 1154-1161.
  • [19] Javani, N., Dincer, I., Naterer, G.F., (2012) “Thermodynamic analysis of waste heat recovery for cooling systems in hybrid and electric vehicles”, Energy, 46, 1, 109-116
  • [20] Farrington, R., Cuddy, M., Keyser, M., and Rugh, J., “Opportunities to Reduce Air-Conditioning Loads Through Lower Cabin Soak Temperatures,” Presented at the 16th Electric Vehicle Symposium, China, October 13-16, 1999.
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Toplam 101 adet kaynakça vardır.

Ayrıntılar

Birincil Dil İngilizce
Konular Mühendislik
Bölüm Araştırma Makaleleri
Yazarlar

Adem Uğurlu 0000-0002-9531-3944

Yayımlanma Tarihi 1 Kasım 2019
Yayımlandığı Sayı Yıl 2019 Cilt: 31 Sayı: 4

Kaynak Göster

APA Uğurlu, A. (2019). Auxiliary air conditioner for vehicles storing liquid hydrogen. International Journal of Advances in Engineering and Pure Sciences, 31(4), 336-354. https://doi.org/10.7240/jeps.590618
AMA Uğurlu A. Auxiliary air conditioner for vehicles storing liquid hydrogen. JEPS. Kasım 2019;31(4):336-354. doi:10.7240/jeps.590618
Chicago Uğurlu, Adem. “Auxiliary Air Conditioner for Vehicles Storing Liquid Hydrogen”. International Journal of Advances in Engineering and Pure Sciences 31, sy. 4 (Kasım 2019): 336-54. https://doi.org/10.7240/jeps.590618.
EndNote Uğurlu A (01 Kasım 2019) Auxiliary air conditioner for vehicles storing liquid hydrogen. International Journal of Advances in Engineering and Pure Sciences 31 4 336–354.
IEEE A. Uğurlu, “Auxiliary air conditioner for vehicles storing liquid hydrogen”, JEPS, c. 31, sy. 4, ss. 336–354, 2019, doi: 10.7240/jeps.590618.
ISNAD Uğurlu, Adem. “Auxiliary Air Conditioner for Vehicles Storing Liquid Hydrogen”. International Journal of Advances in Engineering and Pure Sciences 31/4 (Kasım 2019), 336-354. https://doi.org/10.7240/jeps.590618.
JAMA Uğurlu A. Auxiliary air conditioner for vehicles storing liquid hydrogen. JEPS. 2019;31:336–354.
MLA Uğurlu, Adem. “Auxiliary Air Conditioner for Vehicles Storing Liquid Hydrogen”. International Journal of Advances in Engineering and Pure Sciences, c. 31, sy. 4, 2019, ss. 336-54, doi:10.7240/jeps.590618.
Vancouver Uğurlu A. Auxiliary air conditioner for vehicles storing liquid hydrogen. JEPS. 2019;31(4):336-54.