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Metanol-Dizel Çift Yakıtlı Reaktivite Kontrollü Sıkıştırma ile Ateşlemeli (RCCI) Bir Motorda Farklı Yüklerin Yanma Karakteristiklerine Etkisinin Deneysel İncelenmesi

Yıl 2025, Cilt: 37 Sayı: 3, 389 - 409, 24.09.2025
https://doi.org/10.7240/jeps.1639522

Öz

Dünyada insan nüfusunun ve taşıt sayısının artmasına bağlı olarak artan emisyon kirliliği, insan sağlığını ve doğayı olumsuz etkilemektedir. Bu kirletici emisyonlar, atmosferde sera gazı ve partiküllerin birikmesine neden olur. Bu da günümüzde, başta iklim değişikliği ve hava kirliliği olmak üzere birçok soruna yol açmaktadır. Dizel ve benzin motorlarının avantajlarını birleştiren RCCI motorlar, daha verimli ve temiz bir yanma sağlayan yenilikçi bir düşük sıcaklıkta yanma konseptidir. Bu konseptte, yüksek reaktiviteli ve düşük reaktiviteli olmak üzere en az iki farklı türde yakıt kullanılmaktadır. Bu çalışmada, düşük sıcak yakıtı olarak, yüksek oktan sayısı ile bilinen bir alkol yakıtı olan metanol ile geleneksel dizel yakıtı kullanılmıştır. Dört silindirli, turboşarjlı, su soğutmalı, common-rail yakıt enjeksiyon sistemine sahip bir dizel motor, emme manifolduna metanol yakıtı püskürtecek yeni bir enjektör eklenmesiyle birlikte RCCI yanma konseptine dönüştürülmüştür. Deneyler 1750 d/d sabit hızda ve dört farklı motor yükünde (40 Nm, 60 Nm, 80 Nm ve 100 Nm) gerçekleştirilmiştir. Bu çalışmada kullanılan metanol, 12,19 ve 26 g/d (M12, M19 ve M26) olmak üzere üç farklı kütlesel debide motora gönderilmiş, elde edilen sonuçlar dizel yakıtı ile elde edilen sonuçlarla karşılaştırılmıştır. Yapılan çalışma ile common-rail yakıt enjeksiyon sistemine sahip metanol-dizel çift yakıtlı bir RCCI motorda, sabit emme havası sıcaklığında (55 oC), farklı metanol enerji oranlarında ve kısmi yüklerde detaylı olarak incelenmesi ve literatüre önemli katkı sağlanması amaçlanmıştır. Yanma karakteristikleri, (silindir basıncı, ısı dağılım oranı, kümülatif ısı dağılımı, basınç artış oranı, tutuşma gecikmesi ve yanma süresi) motor performansı (özgül yakıt tüketimi ve volümetrik verim) ve egzoz emisyon parametreleri (HC, CO2, O2, NOx ve is) incelenmiştir. Deneyler sonucunda, kullanılan metanol oranının artmasıyla birlikte basınç artış oranı değerinin M26 yakıtında vuruntu limitinde olduğu tespit edilmiştir. Motor yükü arttıkça maksimum silindir basınçlarının ve basınç artış oranlarının arttığı, maksimum ısı dağılım oranının ise azaldığı görülmektedir. Minimum tutuşma gecikmesi M12 yakıtı ile 40 Nm’de, 5,63 krank mili açısında meydana gelirken, maksimum tutuşma gecikmesi M26 yakıtı ile 80 Nm’de 15,12 krank mili açısında meydana gelmiş olup motor yükü arttıkça artan bir eğilim göstermektedir. En yüksek yanma süresi M26 yakıtıyla 100 Nm torkta elde edilirken, en düşük yanma süresi aynı yakıtla 40 Nm’de elde edilmiştir. Genel olarak artan yükle azalma eğilimi gösteren özgül yakıt tüketimi için minimum değer geleneksel dizel yakıtı için 100 Nm'de 231,11 g/kWh olurken, en yüksek değeri M21 yakıtı ile 40 Nm’de 350,49 g/kWh olmuştur. Metanol oranı arttıkça NOx ve CO2 emisyonlarında önemli iyileşmeler gözlenirken, HC ve O2 emisyonlarında artış görülmüştür. İs emisyonu ise düşük yüklerde azalırken, yüksek yüklerde artma eğilimi göstermiştir.

Kaynakça

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Experimental Investigation of the Effect of Different Loads on the Combustion Characteristics in a Methanol-Diesel Dual-Fuel Reactivity Controlled Compression Ignition (RCCI) Engine

Yıl 2025, Cilt: 37 Sayı: 3, 389 - 409, 24.09.2025
https://doi.org/10.7240/jeps.1639522

Öz

The increasing emission pollution caused by the growing human population and the rising number of vehicles worldwide negatively affects both human health and the environment. These pollutant emissions lead to the accumulation of greenhouse gases and particulates in the atmosphere, resulting in various problems, primarily climate change and air pollution. RCCI engines, which combine the advantages of diesel and gasoline engines, represent an innovative low-temperature combustion concept that enables more efficient and cleaner combustion. This concept involves the use of at least two different types of fuels: one with high reactivity and the other with low reactivity. In this study, methanol, an alcohol fuel known for its high octane number, was used as the low-reactivity fuel along with conventional diesel fuel. A four-cylinder, turbocharged, water-cooled diesel engine with a common-rail fuel injection system was modified to the RCCI combustion concept by adding an additional injector to spray methanol fuel into the intake manifold. In this study, a detailed investigation was conducted on a methanol-diesel dual-fuel RCCI engine equipped with a common-rail fuel injection system under constant intake air temperature conditions (55 °C), at various methanol energy ratios and partial load operations, with the aim of making a significant contribution to the literature. The study focuses on combustion characteristics (cylinder pressure, heat release rate, cumulative heat release, pressure rise rate, ignition delay, and combustion duration), engine performance

parameters (brake specific fuel consumption and volumetric efficiency), and exhaust emission parameters (HC, CO₂, O₂, NOx, and soot). Experiments were conducted at a constant speed of 1750 rpm under four different engine loads (40 Nm, 60 Nm, 80 Nm, and 100 Nm).The methanol used in this study was supplied to the engine at three different mass flow rates 12, 19, and 26 g/s (M12, M19, and M26) and the results were compared with those obtained using diesel fuel. As a result of the experiments, it was found that with an increasing proportion of methanol, the pressure rise rate in the M26 fuel reached the knock limit. It was also observed that as the engine load increased, the maximum cylinder pressures and pressure rise rates increased, while the maximum heat release rate decreased. The minimum ignition delay occurred with the M12 fuel at 40 Nm, at 5.63 crank angle degrees, while the maximum ignition delay was observed with the M26 fuel at 80 Nm, at 15.12 crank angle degrees, showing an increasing trend with rising engine load. The longest combustion duration was obtained with the M26 fuel at 100 Nm torque, whereas the shortest combustion duration was also recorded with the same fuel at 40 Nm. In terms of brake specific fuel consumption, which generally exhibited a decreasing trend with increasing load, the lowest value was 231.11 g/kWh at 100 Nm with conventional diesel fuel, while the highest value was 350.49 g/kWh at 40 Nm with the M21 fuel. As the methanol ratio increased, significant improvements were observed in NOx and CO₂ emissions, while HC and O₂ emissions showed an increasing trend. Soot emissions decreased at low loads but tended to increase under high load conditions.

Kaynakça

  • Safgönül, B., Ergeneman, M., Arslan, H. E. ve Sorusbay, C. (2008) “İçten Yanmalı Motorlar”, Birsen Yayınevi, İstanbul, 38-41, 196-205.
  • Methanol/Gasoline Blends and Emissions. (1992) Automotive Engineering, vol 10. no.5, pp.17-19 SAE International.
  • Valenti, M. (1991) “Insulating Catalytic Converters” Mechanical Engineering, vol.113, no 12, pp.42-46, ASME.
  • Pulkrabek, W.W. (2016) Çeviri: Yaşar, H. “İçten Yanmalı Motorlar Mühendislik Temelleri”, p.174.
  • Southern California Alternative-Fuel Projects (1995) “Automotive Engineering”, vol.103, no.3, pp.63-66, SAE International.
  • Söyler, H. (2025) “Boost pressure influence on combustion, emission characteristics, and performance of diesel engines with various fuel types”. Engineering Science and Technology, an International Journal, vol.63, 101983.
  • Duraisamy, G., Rangasamy, M., Govindan, N. (2020) “A comparative study on methanol/diesel and methanol/PODE dual fuel RCCI combustion in an automotive diesel engine”. Renewable Energy, vol. 145, p.542-546.
  • Kokabi, H., Najafi, M., Jazayeri, S.F., Jahanian, O. (2023) “Performance optimization of RCCI engines running on landfill gas, propane and hydrogen through the deep neural networks and genetic algorithms.” Sustainable Energy Technologies and Assessments, vol.56, 103045.
  • Wategave, S.P., Banapurmath, N.R., Sawant, M.S., Soudagar, M.E.M., Mujtaba, M.A., Afzal, A., Basha, J.S., Alazwari, A., Safaei, M.R., Elfasakhany, A.,Sajjan, A.M. (2021) “Clean combustion and emissions strategy using reactivity controlled compression ignition (RCCI) mode engine powered with CNG-Karanja biodiesel”. Journal of the Taiwan Institute of Chemical Engineers, Vol.124, p.116-131.
  • Duan, Q., Kou, H., Li, T., Yin, X., Zeng, K., Wang, L. (2023) “Effects of injection and spark timings on combustion, performance and emissions (regulated and unregulated) characteristics in a direct injection methanol engine”. Fuel Processing Technology, vol.247, 107758.
  • Panda, K., Ramesh, A. (2022) “Parametric investigations to establish the potential of methanol based RCCI engine and comparison with the conventional dual fuel mode”. Fuel, vol.308, 122025.
  • Agarwal, A.K., Singh, A.P., Kumar, V. (2023) “Effect of pilot injection strategy on the methanol-mineral diesel fueled reactivity controlled compression ignition combustion engine”. Fuel, vol.338, 127115.
  • Yin, X., Yue G., Liu, J., Duan, H., Duan Q., Kou, H., Wang, Y., Yang, B., Zeng, K. (2023) “Investigation into the operating range of a dual-direct injection engine fueled with methanol and diesel”. Energy, vol.267, 126625.
  • Feng, H., Chen, X., Sun, L., Ma, R., Zhang X., Zhu, X., Yang, C. (2023) “The effect of methanol/diesel fuel blends with co-solvent on diesel engine combustion based on experiment and exergy analysis”. Energy, In Press, 128792.
  • Willems, R., Willems, F., Deen, N., Somers, B. (2021) “Heat release rate shaping for optimal gross indicated efficiency in a heavy-duty RCCI engine fueled with E85 and diesel”. Fuel, vol.288, 119656.
  • Yousefi, A., Guo, H., Dev, S., Liko, B., Lafrance, S. (2022) “Effects of ammonia energy fraction and diesel injection timing on combustion and emissions of an ammonia/diesel dual-fuel engine”. Fuel, vol.314, 122723.
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  • Işık, M.Z. (2016) “Çift yakıtlı reaktivite kontrollü bir dizel motorda biyodizel yakıtların düşük sıcaklıklı yanma performans ve emisyon karakteristiklerinin incelenmesi”. Doktora Tezi, Batman Üniversitesi, Fen Bilimleri Enstitüsü.
  • Chaudhary, N., Subramanian, K.A. (2022) “Experimental investigation of combustion characteristics of a spark ignition engine fueled with methanol-gasoline blends (M15 and M85)”. International Journal of Automotive Science and Technology, 6(1), 54-60.
  • Calam, A., Aydoğan, B., Halis, S. (2020) “The comparison of combustion, engine performance and emission characteristics of ethanol, methanol, fusel oil, butanol, isopropanol and naphtha with n-heptane blends on HCCI engine”, Fuel, Vol. 266, 117071.
  • Gülmez, Y. (2022) “Dizel motorlarda egzoz karşı basıncının motor performansı ve egzoz salımları üzerine etkilerinin analizi”. Yüksek Lisans Tezi, Dokuz Eylül Üniversitesi, Fen Bilimleri Enstitüsü.
  • Can, Ö. (2012) “Bir di dizel motorda etanol ön karışımlı kısmi-HCCI uygulamasının yanma ve emisyonlar üzerine etkilerinin incelenmesi”. Doktora Tezi, Gazi Üniversitesi, Fen Bilimleri Enstitüsü.
  • Vargün, M., Özsezen, A. N., Botsalı, H., Sayın, C. (2023) “A study on the impact of fuel injection parameters and boost pressure on combustion characteristics in a diesel engine using alcohol/diesel blends”. Process Safety and Environmental Protection, Vol.177, pp. 29-41.
  • Yeşilyurt, M. K. (2020) “Dizel yakıtına farklı ağır alkoller (1-Bütanol, 1-Pentanol ve 1-Hekzanol) ilave edilmesinin tek silindirli bir dizel motorunun performans, yanma ve egzoz emisyon karakteristiklerine etkileri”. Uluslararası Mühendislik Araştırma ve Geliştirme Dergisi, Cilt.12, Sayı.2, s.397-426.
  • Özden, C. M. (2005) “Homojen karışımlı içten yanmalı motorlar”. Yıldız Teknik Üniversitesi, Fen Bilimleri Enstitüsü, Makine Mühendisliği Bölümü, Enerji Makineleri Programı, Yüksek Lisans Tezi..
  • Türkmen, Ü. (2012) “Homojen dolgulu motorlarda yüksek basınçlı püskürtme teknolojisinin deneysel olarak uygulanarak performans ve emisyon açısından konvansiyonel dizel ile karşılaştırılması”. Yıldız Teknik Üniversitesi, Fen Bilimleri Enstitüsü, Makina Mühendisliği Bölümü, Yüksek Lisans Tezi.
  • Emiroğlu, A. O. (2019) “Effect of fuel injection pressure on the characteristics of single cylinder diesel engine powered by butanol-diesel blend”. Fuel, vol.256, 115928.
  • Tse, H., Leung, C. W., Cheung, C. S. (2015) “Investigation on the combustion characteristics and particulate emissions from a diesel engine fueled with diesel-biodiesel-ethanol blends”. Energy, vol.83, pp.343-350.
  • Duraisamy, G., Rangasamy, M., Govindan, N. (2020) “A comparative study on methanol/diesel and methanol/PODE dual fuel RCCI combustion in an automotive diesel engine”. Renewable Energy, vol. 145, p.542-546.
  • Ibrahim, A. (2016) “Performance and combustion characteristics of a diesel engine fueled by butanol–biodiesel–diesel blends”. Applied Thermal Engineering, vol.103, pp.651-659.
  • Calam, A., Aydoğan, B., Halis, S. (2020) “The comparison of combustion, engine performance and emission characteristics of ethanol, methanol, fusel oil, butanol, isopropanol and naphtha with n-heptane blends on HCCI engine”, Fuel, Vol. 266, 117071.
  • Wei, J., He, C., Lv, G., Zhuang, Y., Qian, Y. İ., Pan, S. (2021) “The combustion, performance and emissions investigation of a dual fuel diesel engine using silicon dioxide nanoparticle additives to methanol”. Energy, vol.230, 120734.
  • Molina, S., García, A., Pastor, J. M., Belarte, E., Balloul, I. (2015) “Operating range extension of RCCI combustion concept from low to full load in a heavy-duty engine”. Applied Energy, vol.143, pp.211-227.
  • Nanthagopal, K., Ashok, B., Saravanan, B., Pathy, M. R., Sahil, G., Ramesh, A., Nabi, M. N., Rasul, M. G. (2019). “Study on decanol and Calophyllum inophyllum biodiesel as ternary blends in CI engine”. Fuel, vol.239, pp.862-873.
  • Ingale, M., Kawale, H., Thakre, A., Shrikhande, N. (2018) “Performance enhancement of engine using turbocharger-A Review”. International Journal of Creative Research Thoughts, vol.6, pp.2320-2882.
  • Reddy, S.S.K., Pandurangadu, V., Hussain, S.P.A. (2013) “Effect of turbocharging on volumetric efficiency in an insulated DI diesel engine for improved performance”. International Journal of Modern Engineering Research, vol.3, pp.674-677.
  • Müller, M. (2009) “Volumetric efficiency and pumping torque estimation and compressor recirculation control of turbocharged engines”. SAE International Journal of Engines, 2(1), 344-356.
  • Rajak, U., Verma, T. N. (2018) “Spirulina microalgae biodiesel–A novel renewable alternative energy source for compression ignition engine”. Journal of Cleaner Production, vol.201, pp.343-357.
  • Wu, F., Xu, B., Liu, Y., Wu, J. (2019) “Performance and emission characteristics of a diesel engine fueled with alcohol-diesel fuel blends containing low ratio of alcohols”. Environmental Progress & Sustainable Energy, 38(3), e13035.
  • Con, G. J., Kim, J.Y., Yoo, B.O., Song, J.H. (2023) “Effects of engine load and ternary mixture on combustion and emissions from a diesel engine using later injection timing”. Sustainability, vol.15, no. 2, 1391.
  • Wei, L., Cheung, C.S., Ning, Z. (2018) “Effects of biodiesel-ethanol and biodiesel-butanol blends on the combustion, performance and emissions of a diesel engine”. Energy, vol.155, pp.957-970.
  • Zhu, L., Cheung, C.S., Zhang, W.G., Huang, Z. (2011) “Combustion, performance and emission characteristics of a DI diesel engine fueled with ethanol-biodiesel blends”. Fuel, vol.90, pp.1743-1750.
  • Imtenan, S., Varman, M., Masjuki, H.H., Kalam, M.A., Sajjad, H., Arbab. M.I., Fattah, I.M.R. (2014) “Impact of low temperature combustion attaining strategies on diesel engine emissions for diesel and biodiesels”. Energy Conversion and Management vol.80, pp.329-356.
  • Agarwal, A.K., Karare, H., Dhar, A. (2014) “Combustion, performance, emissions and particulate characterization of a methanol-gasoline blend (Gasohol) fueled medium duty spark ignition transportation engine”. Fuel Processing Technology, 121, 16-24.
  • Çelik, B., Özdalyan, B., Alkan, F. (2011) “The use of pure methanol as fuel at high compression ratio in a single cylinder gasoline engine”. Fuel, vol.90, pp.1591-1598.
  • Gonca, G., Hocaoglu, M. F. (2023) “Emission and in-cylinder combustion characteristics of a spark ignition engine operated on binary mixtures of gas and liquid fuels”. International Journal of Hydrogen Energy, vol. 52, pp.1502-1518.
  • Sun, Z., Wang, X., Wang, X., Zhou, J. (2017) “Combustion and emission analysis of heavy-duty vehicle diesel engine”. AIP Conf. Proc. 1820(1), 050003.
  • Sayin, C., Uslu, K., Canakci, M. (2008) “Influence of injection timing on the exhaust emissions of a dual-fuel CI engine”. Renewable Energy, vol.3, pp.1314-1323.
  • Kokjohn S, Hanson R, Splitter D, Kaddatz J, Reitz R. (2011) “Fuel reactivity controlled compression ignition (RCCI) combustion in light-and heavy-duty engines”. SAE, 01-0357.
  • Doğan, B., Erol, D., Yaman, H., Kodanli, E. (2017) “The effect of ethanol-gasoline blends on performance and exhaust emissions of a spark ignition engine through exergy analysis”. Applied Thermal Engineering, vol.120, pp.433-443.
  • Akansu, S.O., Tangöz, S., Kahraman, N., İlhak, M.İ., Açıkgöz, S. (2017) “Experimental study of gasoline-ethanol-hydrogen blends combustion in an SI engine”. International Journal of Hydrogen Energy, vol.42, pp.25781-25790.
  • Hasan, A.O., Al-Rawashdeh, H., Al-Muhtaseb, A.H., Abu-Jrai, A., Ahmad, R., Zeaiter, J. (2018) “Impact of changing combustion chamber geometry on emissions and combustion characteristics of a single cylinder SI (Spark Ignition) engine fueled with ethanol/gasoline blends”. Fuel, vol.231, pp.197-203.
  • Benajes, J., Molina, S., García, A., Belarte, E., Vanvolsem, M. (2014) “An investigation on RCCI combustion in a heavy duty diesel engine using in cylinder blending of diesel and gasoline fuels”. Applied Thermal Engineering, vol.63, pp.66-76.
  • Farouk, E.B., Mohammed, G., Sayeda, A., Hassan, A.H. (2017) “Comparative study of performance and exhaust emissions of a diesel engine fueled with algal, used cooked and Jatropha oils biodiesel mixtures”. International Journal of Mechanical & Mechatronics Engineering, vol.17, pp.90-100.
  • Khalaf, M., Abdel-Fadeel, W., Abdelhady, S., Esmail, M. (2022) “Performance and emissions of a diesel engine fueled with a biofuel extracted from Jatropha seeds”. International Journal of Applied Energy Systems, vol.4, no.2.
  • Cheng, C.H., Cheung, C.S., Chana, T.L., Lee, S.C., Yao, C.D. (2008) “Experimental investigation on the performance, gaseous and particulate emissions of a methanol fumigated diesel engine”. Science of the Total Environment, vol.389, pp.115-124.
  • Pilusa, T.J., Mollagee, M.M., Muzenda, E. (2012) “Reduction of vehicle exhaust emissions from diesel engines using the whale concept filter”. Aerosol and Air Quality Research, vol.12, pp.994-1006.
  • Papagiannakis, R.G., Rakopoulos, C.D., Hountalas, D.T., Rakopoulos, D.C. (2010) “Emission characteristics of high-speed, dual-fuel, compression ignition engine operating in a wide range of natural gas/diesel fuel proportions”. Fuel, vol.89(7), pp.1397-1406.
Toplam 68 adet kaynakça vardır.

Ayrıntılar

Birincil Dil Türkçe
Konular Makine Mühendisliği (Diğer)
Bölüm Araştırma Makaleleri
Yazarlar

Mustafa Temür 0000-0001-5076-1922

Cenk Sayın 0000-0001-7286-472X

Erken Görünüm Tarihi 15 Eylül 2025
Yayımlanma Tarihi 24 Eylül 2025
Gönderilme Tarihi 13 Şubat 2025
Kabul Tarihi 20 Ağustos 2025
Yayımlandığı Sayı Yıl 2025 Cilt: 37 Sayı: 3

Kaynak Göster

APA Temür, M., & Sayın, C. (2025). Metanol-Dizel Çift Yakıtlı Reaktivite Kontrollü Sıkıştırma ile Ateşlemeli (RCCI) Bir Motorda Farklı Yüklerin Yanma Karakteristiklerine Etkisinin Deneysel İncelenmesi. International Journal of Advances in Engineering and Pure Sciences, 37(3), 389-409. https://doi.org/10.7240/jeps.1639522
AMA Temür M, Sayın C. Metanol-Dizel Çift Yakıtlı Reaktivite Kontrollü Sıkıştırma ile Ateşlemeli (RCCI) Bir Motorda Farklı Yüklerin Yanma Karakteristiklerine Etkisinin Deneysel İncelenmesi. JEPS. Eylül 2025;37(3):389-409. doi:10.7240/jeps.1639522
Chicago Temür, Mustafa, ve Cenk Sayın. “Metanol-Dizel Çift Yakıtlı Reaktivite Kontrollü Sıkıştırma ile Ateşlemeli (RCCI) Bir Motorda Farklı Yüklerin Yanma Karakteristiklerine Etkisinin Deneysel İncelenmesi”. International Journal of Advances in Engineering and Pure Sciences 37, sy. 3 (Eylül 2025): 389-409. https://doi.org/10.7240/jeps.1639522.
EndNote Temür M, Sayın C (01 Eylül 2025) Metanol-Dizel Çift Yakıtlı Reaktivite Kontrollü Sıkıştırma ile Ateşlemeli (RCCI) Bir Motorda Farklı Yüklerin Yanma Karakteristiklerine Etkisinin Deneysel İncelenmesi. International Journal of Advances in Engineering and Pure Sciences 37 3 389–409.
IEEE M. Temür ve C. Sayın, “Metanol-Dizel Çift Yakıtlı Reaktivite Kontrollü Sıkıştırma ile Ateşlemeli (RCCI) Bir Motorda Farklı Yüklerin Yanma Karakteristiklerine Etkisinin Deneysel İncelenmesi”, JEPS, c. 37, sy. 3, ss. 389–409, 2025, doi: 10.7240/jeps.1639522.
ISNAD Temür, Mustafa - Sayın, Cenk. “Metanol-Dizel Çift Yakıtlı Reaktivite Kontrollü Sıkıştırma ile Ateşlemeli (RCCI) Bir Motorda Farklı Yüklerin Yanma Karakteristiklerine Etkisinin Deneysel İncelenmesi”. International Journal of Advances in Engineering and Pure Sciences 37/3 (Eylül2025), 389-409. https://doi.org/10.7240/jeps.1639522.
JAMA Temür M, Sayın C. Metanol-Dizel Çift Yakıtlı Reaktivite Kontrollü Sıkıştırma ile Ateşlemeli (RCCI) Bir Motorda Farklı Yüklerin Yanma Karakteristiklerine Etkisinin Deneysel İncelenmesi. JEPS. 2025;37:389–409.
MLA Temür, Mustafa ve Cenk Sayın. “Metanol-Dizel Çift Yakıtlı Reaktivite Kontrollü Sıkıştırma ile Ateşlemeli (RCCI) Bir Motorda Farklı Yüklerin Yanma Karakteristiklerine Etkisinin Deneysel İncelenmesi”. International Journal of Advances in Engineering and Pure Sciences, c. 37, sy. 3, 2025, ss. 389-0, doi:10.7240/jeps.1639522.
Vancouver Temür M, Sayın C. Metanol-Dizel Çift Yakıtlı Reaktivite Kontrollü Sıkıştırma ile Ateşlemeli (RCCI) Bir Motorda Farklı Yüklerin Yanma Karakteristiklerine Etkisinin Deneysel İncelenmesi. JEPS. 2025;37(3):389-40.