Research Article
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Year 2021, Volume: 5 Issue: 3, 199 - 205, 30.09.2021
https://doi.org/10.30939/ijastech..935685

Abstract

Thanks

Vermiş olduğu katlılardan dolayı TÜRASAŞ Eskişehir Bölge Müdürlüğü'ne (TÜLOMSAŞ) teşekkür ederiz.

References

  • [1] Özülkü H. Aşırı Doldurmalı Dizel Bir Motorda Ara Soğutmanın Motor Performansı ve Egzoz Emisyonlarına Etkisinin Deneysel Analizi. Yüksek Lisans Tezi, İstanbul Teknik Üniversitesi; 2002.
  • [2] Bhuiyan AA, Amin MR, Islam AK. Three-dimensional performance analysis of plain fin tube heat exchangers in transitional regime. Appl Therm Eng. 2013;50(1):445–54.
  • [3] Yogesh SS, Selvaraj AS, Ravi DK, Rajagopal TK. Heat transfer and pressure drop characteristics of inclined elliptical fin tube heat exchanger of varying ellipticity ratio using CFD code. Int J Heat Mass Transf. 2018; 119:26–39.
  • [4] Matos R, Vargas J, Laursen T, Saboya FE. Optimization study and heat transfer comparison of staggered circular and elliptic tubes in forced convection. Int J Heat Mass Transf. 2001;44(20):3953–61.
  • [5] Tao vd. Y. B. Tao, Y. L. He, Z. G. Wu, and W. Q. Tao, “Three-dimensional numerical study and field synergy principle analysis of wavy fin heat exchangers with elliptic tubes,” Int. J. Heat Fluid Flow, vol. 28, no. 6, pp. 1531–1544, 2007. DOI: https://doi.org/10.1016/j.ijheatfluidflow.. 2007.02.001.
  • [6] Han H, He YL, Li YS, Wang Y, Wu M. A numerical study on compact enhanced fin-and-tube heat exchangers with oval and circular tube configurations. Int J Heat Mass Transf. 2013; 65:686–95.
  • [7] L. Sun, L. Yang, L.-L. Shao, and C.-L. Zhang, “Overall thermal performance-oriented numerical comparison between elliptical and circular finned-tube condensers,” Int. J. Thermal Sci., vol. 89, pp. 234–244, 2015. March https://doi.org/10.1016/j.ijthermalsci.2014.11.017..,
  • [8] Tahseen TA, Rahman M, Ishak M. Experimental study on heat transfer and friction factor in laminar forced convection over flat tube in channel flow. Procedia Eng. 2015; 105:46–55.
  • [9] Park JM, Kim OJ, Kim SJ, Shin YC. Heat transfer characteristics of circular and elliptic cylinders in crossflow. Adv Mech Eng. 2015; 7(11):1687814015619553.
  • [10] Lotfii B, Sunden B, Wang Q. An investigation of the thermo-hydraulic performance of the smooth wavy fin-and-elliptical tube heat exchangers utilizing new type vortex generators. Appl Energy. 2016; 162:1282–302.
  • [11] Yogesh SS, Selvaraj AS, Ravi DK, Rajagopal TK. Heat transfer and pressure drop characteristics of inclined elliptical fin tube heat exchanger of varying ellipticity ratio using CFD code. Int J Heat Mass Transf. 2018; 119:26–39.
  • [12] Lotfi, B. ve Sundén, B. Development of new finned tube heat exchanger: innovative tube-bank design and thermohydraulic performance. Heat Transf Eng. 2019;1–23.
  • [13] Wang P, Jiang J, Li S, Luo X, Wang S, Zhao W. An investigation of influence factor including different tube bundles on inclined elliptical fin-tube heat exchanger. Int J Heat Mass Transf. 2019; 142:118448.
  • [14] Apaydın Ş., 16 PA4 V185 tipi dizel lokomotif motorunda dolgu havası soğutucusunun modernizasyonu, Doktora Tezi, Dumlupınar Üniversitesi, 2018.
  • [15] Lin CN, Jang JY. A two-dimensional fin efficiency analysis of combined heat and mass transfer in elliptic fins. Int J Heat Mass Transf. 2002; 45(18):3839–47.
  • [16] Jang JY, Yang JY. Experimental and 3-D numerical analysis of the thermal-hydraulic characteristics of elliptic finned-tube heat exchangers. Heat Transf Eng. 1998;19(4):55–67.
  • [17] Erek A, Özerdem B, Bilir L, İlken Z. Effect of geometrical parameters on heat transfer and pressure drop characteristics of plate-fin and tube heat exchangers. Appl Therm Eng. 2005; 25(14-15):2421–31.

Experimental comparison of air cooler designs in a heavy-duty diesel engine

Year 2021, Volume: 5 Issue: 3, 199 - 205, 30.09.2021
https://doi.org/10.30939/ijastech..935685

Abstract

This study aims to increase the system efficiency by changing the design of heat exchangers used as intercoolers in locomotive engines. For this purpose, computational fluid dynamics analysis was performed for each of 12 different intercoolers. Since the position and outer dimensions of the intercooler on an en-gine cannot be changed, the new designs had the same dimensions as the outer dimensions of the existing intercooler. The designs made by changing the tube distances and shapes were compared with the existing intercooler in terms of temperature and pressure differences. As a result of the comparisons, the opti-mum design was determined and then a prototype was manufactured. The exist-ing intercooler and the newly designed intercooler were mounted on an engine and tested separately in the engine test unit. In the test program carried out at maximum speed in test engines, it was determined that the air cooler outlet tem-perature was 7 °C lower in the test engine to which the designed air cooler was connected, as compared to the test engine to which the existing air cooler was connected. The effective efficiency of the test engine to which Design 4 and De-sign 8 were connected were found as 31.62% and 33.74%, respectively.

References

  • [1] Özülkü H. Aşırı Doldurmalı Dizel Bir Motorda Ara Soğutmanın Motor Performansı ve Egzoz Emisyonlarına Etkisinin Deneysel Analizi. Yüksek Lisans Tezi, İstanbul Teknik Üniversitesi; 2002.
  • [2] Bhuiyan AA, Amin MR, Islam AK. Three-dimensional performance analysis of plain fin tube heat exchangers in transitional regime. Appl Therm Eng. 2013;50(1):445–54.
  • [3] Yogesh SS, Selvaraj AS, Ravi DK, Rajagopal TK. Heat transfer and pressure drop characteristics of inclined elliptical fin tube heat exchanger of varying ellipticity ratio using CFD code. Int J Heat Mass Transf. 2018; 119:26–39.
  • [4] Matos R, Vargas J, Laursen T, Saboya FE. Optimization study and heat transfer comparison of staggered circular and elliptic tubes in forced convection. Int J Heat Mass Transf. 2001;44(20):3953–61.
  • [5] Tao vd. Y. B. Tao, Y. L. He, Z. G. Wu, and W. Q. Tao, “Three-dimensional numerical study and field synergy principle analysis of wavy fin heat exchangers with elliptic tubes,” Int. J. Heat Fluid Flow, vol. 28, no. 6, pp. 1531–1544, 2007. DOI: https://doi.org/10.1016/j.ijheatfluidflow.. 2007.02.001.
  • [6] Han H, He YL, Li YS, Wang Y, Wu M. A numerical study on compact enhanced fin-and-tube heat exchangers with oval and circular tube configurations. Int J Heat Mass Transf. 2013; 65:686–95.
  • [7] L. Sun, L. Yang, L.-L. Shao, and C.-L. Zhang, “Overall thermal performance-oriented numerical comparison between elliptical and circular finned-tube condensers,” Int. J. Thermal Sci., vol. 89, pp. 234–244, 2015. March https://doi.org/10.1016/j.ijthermalsci.2014.11.017..,
  • [8] Tahseen TA, Rahman M, Ishak M. Experimental study on heat transfer and friction factor in laminar forced convection over flat tube in channel flow. Procedia Eng. 2015; 105:46–55.
  • [9] Park JM, Kim OJ, Kim SJ, Shin YC. Heat transfer characteristics of circular and elliptic cylinders in crossflow. Adv Mech Eng. 2015; 7(11):1687814015619553.
  • [10] Lotfii B, Sunden B, Wang Q. An investigation of the thermo-hydraulic performance of the smooth wavy fin-and-elliptical tube heat exchangers utilizing new type vortex generators. Appl Energy. 2016; 162:1282–302.
  • [11] Yogesh SS, Selvaraj AS, Ravi DK, Rajagopal TK. Heat transfer and pressure drop characteristics of inclined elliptical fin tube heat exchanger of varying ellipticity ratio using CFD code. Int J Heat Mass Transf. 2018; 119:26–39.
  • [12] Lotfi, B. ve Sundén, B. Development of new finned tube heat exchanger: innovative tube-bank design and thermohydraulic performance. Heat Transf Eng. 2019;1–23.
  • [13] Wang P, Jiang J, Li S, Luo X, Wang S, Zhao W. An investigation of influence factor including different tube bundles on inclined elliptical fin-tube heat exchanger. Int J Heat Mass Transf. 2019; 142:118448.
  • [14] Apaydın Ş., 16 PA4 V185 tipi dizel lokomotif motorunda dolgu havası soğutucusunun modernizasyonu, Doktora Tezi, Dumlupınar Üniversitesi, 2018.
  • [15] Lin CN, Jang JY. A two-dimensional fin efficiency analysis of combined heat and mass transfer in elliptic fins. Int J Heat Mass Transf. 2002; 45(18):3839–47.
  • [16] Jang JY, Yang JY. Experimental and 3-D numerical analysis of the thermal-hydraulic characteristics of elliptic finned-tube heat exchangers. Heat Transf Eng. 1998;19(4):55–67.
  • [17] Erek A, Özerdem B, Bilir L, İlken Z. Effect of geometrical parameters on heat transfer and pressure drop characteristics of plate-fin and tube heat exchangers. Appl Therm Eng. 2005; 25(14-15):2421–31.
There are 17 citations in total.

Details

Primary Language English
Subjects Mechanical Engineering
Journal Section Research Articles
Authors

Şule Apaydın 0000-0002-5451-5910

Ramazan Köse 0000-0001-6041-6591

Publication Date September 30, 2021
Submission Date May 14, 2021
Acceptance Date June 8, 2021
Published in Issue Year 2021 Volume: 5 Issue: 3

Cite

APA Apaydın, Ş., & Köse, R. (2021). Experimental comparison of air cooler designs in a heavy-duty diesel engine. International Journal of Automotive Science And Technology, 5(3), 199-205. https://doi.org/10.30939/ijastech..935685
AMA Apaydın Ş, Köse R. Experimental comparison of air cooler designs in a heavy-duty diesel engine. ijastech. September 2021;5(3):199-205. doi:10.30939/ijastech.935685
Chicago Apaydın, Şule, and Ramazan Köse. “Experimental Comparison of Air Cooler Designs in a Heavy-Duty Diesel Engine”. International Journal of Automotive Science And Technology 5, no. 3 (September 2021): 199-205. https://doi.org/10.30939/ijastech. 935685.
EndNote Apaydın Ş, Köse R (September 1, 2021) Experimental comparison of air cooler designs in a heavy-duty diesel engine. International Journal of Automotive Science And Technology 5 3 199–205.
IEEE Ş. Apaydın and R. Köse, “Experimental comparison of air cooler designs in a heavy-duty diesel engine”, ijastech, vol. 5, no. 3, pp. 199–205, 2021, doi: 10.30939/ijastech..935685.
ISNAD Apaydın, Şule - Köse, Ramazan. “Experimental Comparison of Air Cooler Designs in a Heavy-Duty Diesel Engine”. International Journal of Automotive Science And Technology 5/3 (September 2021), 199-205. https://doi.org/10.30939/ijastech. 935685.
JAMA Apaydın Ş, Köse R. Experimental comparison of air cooler designs in a heavy-duty diesel engine. ijastech. 2021;5:199–205.
MLA Apaydın, Şule and Ramazan Köse. “Experimental Comparison of Air Cooler Designs in a Heavy-Duty Diesel Engine”. International Journal of Automotive Science And Technology, vol. 5, no. 3, 2021, pp. 199-05, doi:10.30939/ijastech. 935685.
Vancouver Apaydın Ş, Köse R. Experimental comparison of air cooler designs in a heavy-duty diesel engine. ijastech. 2021;5(3):199-205.


International Journal of Automotive Science and Technology (IJASTECH) is published by Society of Automotive Engineers Turkey

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