[1] |
TANAKA E. The interference of two-dimensional parallel jets-experiments on the combined flow of dual jet[J]. Bulletin of JSME, 1974, 17(109):920-927.
|
[2] |
NASR A, LAI J C S. Comparison of flow characteristics in the near field of two parallel plane jets and an offset plane jet[J]. Physics of Fluids, 2001, 19(9):2919-2931.
|
[3] |
WANG H H, LEE S, HASSAN Y A. Particle image velocimetry measurements of the flow in the converging region of two parallel jets[J]. Nuclear Engineering & Design, 2016, 306:89-97.
|
[4] |
WANG H H, LEE S, HASSAN Y A, et al. Laser-Doppler measurements of the turbulent mixing of two rectangular water jets impinging on a stationary pool[J]. International Journal of Heat and Mass Transfer, 2016, 92:206-207.
|
[5] |
LIN Y F, SHEU M J. Interaction of parallel turbulent plane jets[J]. AIAA Journal, 1991, 29:1372-1373.
|
[6] |
FUJISAWA N, NAKAMURA K, SRINIVAS K. Interaction of two parallel plane jets of different velocities[J]. Journal of Visualization, 2004, 7(2):135-142.
|
[7] |
郭庆杰, 张济宇, 刘振宇, 等. 大型双射流流化床的流体动力学特性[J]. 化工学报, 2001, 52(11):974-981. GUO Q J, ZHANG J Y, LIU Z Y, et al. Hydrodynamic characteristics in large jetting fluidized bed with double nozzles[J]. Journal of Chemical Industrial and Engineering(China), 2001, 52(11):974-981.
|
[8] |
陈力哲, 宋稚娟, 邢春礼. 双平行平面射流输运特性研究[J]. 节能技术, 2009, 27(5):421-422. CHEN L Z, SONG Z J, XING C L. Mixing of two -dimensional two plane jets[J]. Energy Conservation Technology, 2009, 27(5):421-422.
|
[9] |
郭天琪, 黄正梁, 王靖岱, 等. 射流鼓泡反应器的混合特性[J]. 化工学报, 2015, 66(11):4438-4445. GUO T Q, HUANG Z L, WANG J D, et al. Mixing characteristics in jet bubbling reactor[J]. CIESC Journal, 2015, 66(11):4438-4445.
|
[10] |
AHMED S, HART J, NIKOLOV J, et al. The effect of jet velocity ratio on aerodynamics of a rectangular slot-burner in the presence of cross-flow[J]. Experimental Thermal & Fluid Science, 2007, 32(2):362-374.
|
[11] |
WANG X K, TAN S K. Experimental investigation of the interaction between a plane wall jet and a parallel offset jet[J]. Experiments in Fluids, 2007, 42(4):551-562.
|
[12] |
QIN Y, ZHANG Z, WU S, et al. Experimental study of jet characteristics of a rectangular nozzle with different height-to-width ratios in a tangentially-fired combustion flow field[J]. Journal of Engineering for Thermal Energy and Power, 2000, 15(86):125-127.
|
[13] |
ANDERSON E A, SPALL R E. Experimental and numerical investigation of two-dimensional parallel jets[J]. Journal of Fluids Engineering, 2001, 123(2):401-406.
|
[14] |
ABDEL-SALAM T M, TIWARI S N. Mixing characteristics of two-dimensional parallel jets[C]//42nd AIAA Aerospace Sciences Meeting and Exhibit. 2013:1882-1883.
|
[15] |
DURVE A, PATWARDHANA A W, BANARJEE I, et al. Numerical investigation of mixing in parallel jets[J]. Nuclear Engineering and Design, 2012, 242:78-90.
|
[16] |
金晗辉, 许跃敏, 樊建人, 等. 矩形喷嘴射流近喷口流场的大涡模拟[J]. 化工学报, 2004, 55(8):1243-1248. JIN H H, XU Y M, FAN J R, et al. Large eddy simulation of flow field near nozzle of rectangular jet[J]. Journal of Chemical Industrial and Engineering (China), 2004, 55(8):1243-1248.
|
[17] |
TANMOY M, MANAB K D, ABHIJIT G. Periodic vortex shedding phenomenon for various separation distances between two plane turbulent parallel jets[J]. International Journal of Heat and Mass Transfer, 2016, 99:576-588.
|
[18] |
MONDAL T, GUHA A, DAS M K. Computational study of periodically unsteady interaction between a wall jet and an offset jet for various velocity ratios[J]. Computers & Fluids, 2015, 123:146-161.
|
[19] |
MONDAL T, DAS M K, GUHA A. Numerical investigation of steady and periodically unsteady flow for various separation distances between a wall jet and an offset jet[J]. Journal of Fluids & Structures, 2014, 50:528-546.
|
[20] |
KUANG M, LI Z Q, JING X J, et al. Characterization of combustion and NOx emissions with respect to overfire air damper opening in a down-fired pulverized-coal furnace[J]. Energy & Fuels,2013, 27(9):5518-5526.
|
[21] |
FAN W D, LIN Z C, LI Y Y, et al. Effect of air-staging on anthracite combustion and NOx formation[J].Energy Fuels, 2009, 23(1):2437-2443.
|
[22] |
LI Z Q, REN F, CHEN Z C, et al. Influence of declivitous secondary air on combustion characteristics of a down-fired 300-MWe utility boiler[J]. Fuel, 2010, 89:410-416.
|
[23] |
WESTERWEEL J. Efficient detection of spurious vectors in particle image velocimetry data sets[J]. Experiments in Fluids, 1994, 16(3):236-247.
|
[24] |
OZALP C, PINARBASI A, FAKILAR M S, et al. PIV measurements of flow through a sudden contraction[J]. Flow Measurement and Instrumentation, 2007, 18(3):121-128.
|
[25] |
ADRIAN R J. Particle imaging techniques for experimental fluid mechanics[J]. Annual Review of Fluid Mechanics, 1991, 23:261-304.
|
[26] |
TROPEA C, YARIN A L, FOSS J F, et al. Springer Handbook of Experimental Fluid Mechanics[M]. Berlin, Heidelberg:Springer Science & Business Media, 2007:289.
|
[27] |
MELLING A. Tracer particles and seeding for particle image velocimetry[J]. Measurement Science and Technology, 1997, 8(12):1406.
|
[28] |
李之光. 相似与模化[M]. 北京:国防工业出版社, 1982:27-31. LI Z G. Similarity and Modeling[M]. Beijing:National Defend Industry Press, 1982:27-31.
|
[29] |
LIU P Y, GAO J J, ZHANG H, et al. Performance of the primary air concentrators on anthracite ignition and combustion in a 600 MW supercritical arch-fired boiler[J]. Fuel Processing Technology, 2017, 158:172-179.
|
[30] |
CUI K, LIU B, ZHANG H, et al. Modeling of pulverized coal combustion in turbulent flow with the consideration of intermediate reactions of volatile matter[J]. Energy Fuels, 2013, 27(4):2246-2254.
|