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碎煤加压固定床气化炉出炉粗煤气含尘粒级分析 被引量:1

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摘要 通过理论分析方法,对碎煤加压固定床加压气化出炉粗煤气含尘的最大粒级水平进行了研究,得到了可根据粗煤气性质、气化炉结构和工艺条件等参数,计算出炉粉尘最大粒级水平的公式,用以指导实际生产。
出处 《煤炭加工与综合利用》 CAS 2014年第12期30-33,共4页 Coal Processing & Comprehensive Utilization
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  • 1王志斌,陈文梅,褚良银,王升贵.水力旋流器固体颗粒运动行为的分析[J].流体机械,2005,33(11):57-60. 被引量:16
  • 2Giles D K, Andersen P G, Nilars M. Pulsed sprays from oversized orifices for increased momentum and kinetic energy in depositing agricultural sprays[J]. Atomization and Sprays, 2001, 11:701 -709.
  • 3Krishnan P, Evans T, Ballal K. Scanning electron mieroscopic studies of new and used fan nozzles for agricultural sprayers[J]. Applied Engineering in Agriculture, 2004, 20(2): 133- 137.
  • 4ASAE STANDARDS 2008. Procedure for measuring sprayer nozzle wear rate[J]. Transactions of the ASAE $471,1991: 1-2.
  • 5Spraying Systems Company. Leaders in precision application components, control system technology, and application data manage[Z]. U.S.A: Spraying systems Company, 2004.
  • 6Ohm T R, Setter D W, Lefebvre A H. Geometrical effects on discharge coefficients for plain-orifice atomizers[J]. Atomization and Sprays, 1991, 1(2): 137-153.
  • 7Reichard D L, Ozkan H E, fox R D. Nozzle wear rates and test procedure[J]. Transaction of the ASAE, 1991, 34(6): 2309- 2316.
  • 8Krause C R, Reiehard D L, Zhu H. Evaluation of fan-pattern apray nozzle wear using scanning electron microscopy[J]. Scanning, 2003, 25(1): 8- 11.
  • 9Zhu H, Reichard D L, Ozkan H E, et al. A mathematical model to predict the wear rate of nozzles with elliptical orifices[J]. Transactions of the ASAE, 1995, 37(5): 1297- 1303.
  • 10Fife J P, Derksen R C, Ozkan H E Grewal. Using CFD methods to predict damage of a biological pest control agent during passage through a Hydraulic Nozzle[C]//2003 ASAE Annual International Meeting, Las Vegas, Nevada, USA, 2003:27-30.

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  • 1钱付平,章名耀.不同排尘结构旋风分离器的分离特性[J].燃烧科学与技术,2006,12(2):169-174. 被引量:20
  • 2吴小林,熊至宜,姬忠礼,时铭显.旋风分离器旋进涡核的数值模拟[J].化工学报,2007,58(2):383-390. 被引量:61
  • 3Irfan Karagoz, Atakan Avci. Modelling of the pressure drop in tangential inlet cyclone separators [J]. Aerosol Science and Technology, 2005, 39 (9) : 857-865.
  • 4Slack MD., PrasadRO., BakkerA., BoysanF. Advances in cyclone modeling using unstructured grids[J]. IChemE, 2000, 78 (8).- 1098-1104.
  • 5J. Chen, M. Shi. A universal model to calculate cyclone pressure drop[J]. Powder Technology, 2007, (171) : 184- 191.
  • 6HoffmannAC., SantenAv., AllenRWK., CliftR. Effects of geometry and solid loading on the performance of gas cyclones[J]. PowderTeclmology, 1992, (70) : 83-91.
  • 7ZhaoB. A theoretical approach to pressure drop across cyclone separators [J]. Chemical Engineering & Technology, 2004, 27 (10) . 1105-1108.
  • 8AvciA, KaragozI. Theoretical investigation of pressure losses in cyclone separators[J]. International Communications in Heat and Mass Transfer, 2001, 28 (1).- 107-117.
  • 9FunkPA. Reducing cyclone pressure drop with evas6s[J]. Powder Technology, 2015, (272) : 276-281.
  • 10BernardoS, MoriM, PeresAP, DionisioRP. 3-D computational fluid dynamics for gas and gas-particle flows in a cyclone with different inlet section angles[J]. Powder Technology, 2006, 162 (3). 190-200.

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