Measurement of the air bubble size and velocity from micro air bubble generation (MBG) in diesel using optical methods
-
Published:2020-10-30
Issue:2
Volume:4
Page:155-162
-
ISSN:2520-1166
-
Container-title:Energy Transitions
-
language:en
-
Short-container-title:Energy Transit
Author:
Alfarraj Bader A.ORCID, Alkhedhair Abdullah M., Al-Harbi Ahmed A., Nowak Wojciech, Alfaleh Saleh A.
Abstract
AbstractIn this paper, we determine the bubble size and velocity from air bubble generation (MBG) in a diesel using optical methods. A KTM Series Pump was used to generate micro air bubbles in diesel. The air bubble radius and velocity measurements can be useful parameters to optimize the bubble generation process. Two optical systems were used for measurement air bubble sizes and their velocities in diesel. First, the optical system without an objective lens was used to determine the velocity of air bubbles in diesel. Another optical system with a 10× objective lens was used to obtain the size distribution of air bubbles generated in diesel. An available optical system with a 10× objective lens can detect a bubble diameter greater than 3.3 µm that air bubble images were processed using the ImageJ program. We measured the size distribution of air bubbles generated using the ImageJ program. The micro air bubble radius measured in diesel was found to be 6.26 µm in the sample after a month from air bubble generation. In addition, the particle image velocimetry (PIV) technique was used to measure the velocity field. Then, we used the OpenPIV program for PIV image processing. The highest velocity distribution was determined to be 90 mm/s for diesel without air bubbles and 20 mm/s for diesel with air bubbles after a month of the bubble generation.
Publisher
Springer Science and Business Media LLC
Reference20 articles.
1. Nakatake, Y., Kisu, S., Shigyo, K., Eguchi, T., Watanabe, T.: Effect of nano air-bubbles mixed into gas oil on common-rail diesel engine. Energy. 59, 233–239 (2013) 2. Huang, J., Sun, L., Liu, H., Mo, Z., Tang, J., Xie, G., Du, M.: A review on bubble generation and transportation in Venturi-type bubble generators. Exp. Comput. Multiph. Flow. 2, 123–134 (2020). https://doi.org/10.1007/s42757-019-0049-3 3. Ghiji, M., Goldsworthy, L., Garaniya, V., Brandner, P.A., Hield, P., Novozhilov, V., Moinuddin, K., Joseph, P.: Effect of residual air bubbles on diesel spray structure at the start of injection. Fuel 241, 25–32 (2019). https://doi.org/10.1016/j.fuel.2018.12.013 4. Guo, G., He, Z., Lai, M.C., Duan, X., Leng, X., Duan, L., Chen, Z.: Optical experiment and Large Eddy Simulation on effects of in-nozzle stagnant air bubbles and diesel on near-nozzle spray structure variation in diesel injector. Fuel 255, 115721 (2019). https://doi.org/10.1016/j.fuel.2019.115721 5. Jeon, S.-Y., Yoon, J.-Y., Jang, C.-M.: Bubble size and bubble concentration of a microbubble pump with respect to operating conditions. Energies. 11, 1864 (2018)
Cited by
5 articles.
订阅此论文施引文献
订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献
|
|