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Influence of liquid properties on atomization characteristics of flow-blurring injector at ultra-low flow rates

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  • Khan, Mohammed Asad
  • Gadgil, Hrishikesh
  • Kumar, Sudarshan

Abstract

Atomization and efficient evaporation at extremely small flow rates is an additional challenge for liquid fueled small-scale combustor and burner applications. In the present study, experiments are conducted to investigate the effects of liquid properties on atomization of flow-blurring atomizer at ultra-low liquid flow rate (2.78–41.7 μL/s). Shadowgraphy, backlight imaging technique and laser based spray visualization methodology were employed for atomization characterization. Formation of three different atomization regimes namely bubble bursting, weak spray and fully developed spray was observed with a gradual increase in airflow rate (8.33–83.3 mL/s). Prompt mode of atomization in weak spray regime produces coarse droplets, while a sudden reduction in droplet size is observed in fully developed spray regime. Fine atomization in fully developed spray regime is attributed to flow-blurring effect due to air recirculation and thereby formation of highly turbulent two-phase flow inside the injector. This investigation reports that the criterion proposed in literature is not sufficient to achieve enhanced atomization through flow-blurring phenomenon. Experiments demonstrate that viscosity has marginal effect on atomization, however, surface tension dominates the atomization characteristics in a flow-blurring atomizer. Meanwhile, Weber number appears an appropriate parameter to predict the atomization regime transition.

Suggested Citation

  • Khan, Mohammed Asad & Gadgil, Hrishikesh & Kumar, Sudarshan, 2019. "Influence of liquid properties on atomization characteristics of flow-blurring injector at ultra-low flow rates," Energy, Elsevier, vol. 171(C), pages 1-13.
  • Handle: RePEc:eee:energy:v:171:y:2019:i:c:p:1-13
    DOI: 10.1016/j.energy.2019.01.006
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    References listed on IDEAS

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    1. Liu, Z. & Qiu, K., 2017. "A TPV power system consisting of a composite radiant burner and combined cells," Energy, Elsevier, vol. 141(C), pages 892-897.
    2. Jedelsky, Jan & Jicha, Miroslav, 2014. "Energy considerations in spraying process of a spill-return pressure-swirl atomizer," Applied Energy, Elsevier, vol. 132(C), pages 485-495.
    3. Wan, Jianlong & Xu, Zuwei & Zhao, Haibo, 2018. "Methane/air premixed flame topology structure in a mesoscale combustor with a plate flame holder and preheating channels," Energy, Elsevier, vol. 165(PB), pages 802-811.
    4. Ismail, Ahmad Kamal & Abdullah, Mohd Zulkifly & Zubair, Mohammed & Ahmad, Zainal Arifin & Jamaludin, Abdul Rashid & Mustafa, Khairil Faizi & Abdullah, Mohamad Nazir, 2013. "Application of porous medium burner with micro cogeneration system," Energy, Elsevier, vol. 50(C), pages 131-142.
    5. Wan, Jianlong & Zhao, Haibo, 2018. "Thermal performance of solid walls in a mesoscale combustor with a plate flame holder and preheating channels," Energy, Elsevier, vol. 157(C), pages 448-459.
    6. Li, Yueh-Heng & Chen, Guan-Bang & Cheng, Tsarng-Sheng & Yeh, Yean-Ling & Chao, Yei-Chin, 2013. "Combustion characteristics of a small-scale combustor with a percolated platinum emitter tube for thermophotovoltaics," Energy, Elsevier, vol. 61(C), pages 150-157.
    7. Fan, Aiwu & Zhang, He & Wan, Jianlong, 2017. "Numerical investigation on flame blow-off limit of a novel microscale Swiss-roll combustor with a bluff-body," Energy, Elsevier, vol. 123(C), pages 252-259.
    8. Um, Dong Hyun & Kim, Tae Young & Kwon, Oh Chae, 2014. "Power and hydrogen production from ammonia in a micro-thermophotovoltaic device integrated with a micro-reformer," Energy, Elsevier, vol. 73(C), pages 531-542.
    9. de Azevedo, Cláudia Gonçalves & de Andrade, José Carlos & de Souza Costa, Fernando, 2016. "Effects of injector tip design on the spray characteristics of soy methyl ester biodiesel in a blurry injector," Renewable Energy, Elsevier, vol. 85(C), pages 287-294.
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    Cited by:

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    3. Ma, Xin & Wang, Shuang & Li, Fashe & Zhang, Huicong & Jiang, Shang & Sui, Meng, 2022. "Effect of air flow rate and temperature on the atomization characteristics of biodiesel in internal and external flow fields of the pressure swirl nozzle," Energy, Elsevier, vol. 253(C).
    4. Shin, Jisoo & Kim, Donghwan & Seo, Jeawon & Park, Sungwook, 2020. "Effects of the physical properties of fuel on spray characteristics from a gas turbine nozzle," Energy, Elsevier, vol. 205(C).

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