Journal of Shanghai Jiaotong University ›› 2017, Vol. 51 ›› Issue (8): 962-969.
Previous Articles Next Articles
JI Yongbin1,DU Shiqiang2,YU Jiangpeng1,GE Bing1, ZANG Shusheng1
Online:
2017-08-30
Published:
2017-08-30
Supported by:
CLC Number:
JI Yongbin1,DU Shiqiang2,YU Jiangpeng1,GE Bing1, ZANG Shusheng1. Comparative Experimental Investigation of Effusion Cooling
Performance on the Annular Combustor Liners at
Nonreacting/Reacting Flow Conditions[J]. Journal of Shanghai Jiaotong University, 2017, 51(8): 962-969.
[1]SCHULZ A. Combustor liner cooling technology in scope of reduced pollutant formation and rising thermal efficiencies[J]. Heat Transfer in Gas Turbine Systems, 2001,934(1): 135146. [2]KREWINKEL R. A review of gas turbine effusion cooling studies[J]. International Journal of Heat and Mass Transfer, 2013, 66: 706722. [3]林宇震. 燃烧室多斜孔壁气膜冷却研究[D]. 北京: 北京航空航天大学能源动力与工程学院, 1997. [4]LEGER B, MIRON P, EMIDIO J M. Geometric and aerothermal influences on multiholed plate temperature: Application on combustor wall[J]. International Journal of Heat and Mass Transfer, 2003, 46: 12151222. [5]OGUNTADE H I, ANDREWS G E, BURNS A D, et al. The influence the number of holes on effusion cooling effectiveness for an X/D of 4.7[C]∥Proceeding of ASME TURBO EXPO. Montreal: ASME,2015, GT201542248. [6]HUANG Z, XIONG Y B, LIU Y Q, et al. Experimental investigation of fullcoverage effusion cooling through perforated flat plates[J]. Applied Thermal Engineering, 2015, 76: 7685. [7]GOLDSTEIN R J, STONE L D. Rowofholes film cooling of curved walls at low injection angles[J]. Journal of Turbomachinery, 1997, 119(3): 574579. [8]KOC I, PARMAKSIZOGLU C, CAKAN M. Numerical investigation of film cooling effectiveness on the curved surface[J]. Energy Conversion and Management, 2006, 47(9/10): 12311246. [9]PATIL S, ABRAHAM S, TAFTI D, et al. Experimental and numerical investigation of convective heat transfer in a gas turbine can combustor[J]. Journal of Turbomachinery, 2011, 133(1): 011028. [10]PATIL S, SEDALOR T, TAFTI D, et al. Study of flow and convective heat transfer in a simulated scaled up low emission annular combustor[J]. Journal of Thermal Science and Engineering Applications, 2011, 3(3): 031010. [11]GOMEZ R D, KUMAR V, EKKAD S, et al. Flow field and liner heat transfer for a model annular combustor equipped with radial swirlers[C]∥50th AIAA/ASME/SAE/ASEE Joint Propulsion Conference. Cleveland: AIAA,2014: 3436. [12]CARMACK A, EKKAD S, KIM Y, et al. Comparison of flow and heat transfer distributions in a can combustor for radial and axial swirlers under cold flow conditions[J]. Journal of Thermal Science and Engineering Applications, 2013, 5(3): 031012. [13]WURM B, SCHULZ A, BAUER H J. A new test facility for investigating the interaction between swirl flow and wall cooling films in combustors[C]∥Proceeding of ASME TURBO EXPO. Orlando: ASME,2009: 59961. [14]WURM B, SCHULZ A, BAUER H J, et al. Cooling efficiency for assessing the cooling performance of an effusion cooled combustor liner[C]∥Proceeding of ASME TURBO EXPO. San Antonio: ASME, 2013: 94304. [15]WURM B, SCHULZ A, BAUER H J, et al. Impact of swirl flow on the penetration behaviour and cooling performance of a starter cooling film in modern lean operating combustion chambers[C]∥Proceeding of ASME TURBO EXPO. Dusseldorf: ASME,2014: 25520. [16]ANDREINI A, BECCHI R, FACCHINI B, et al. Adiabatic effectiveness and flow field measurements in a realistic effusion cooled lean burn combustor[J]. Journal of Engineering for Gas Turbines and Power, 2016, 138(3): 031506. [17]ANDREINI A, FACCHINI B, BECCHI R, et al. Effect of slot injection and effusion array on the liner heat transfer coefficient of a scaled leanburn combustor with representative swirling flow[J]. Journal of Engineering for Gas Turbines and Power, 2016, 138(4): 041501. [18]ANDREINI A, SOGHE R D, FACCHINI B, et al. Local source based CFD modeling of effusion cooling holes: Validation and application to an actual combustor test case[J]. Journal of Engineering for Gas Turbines and Power, 2014, 136(1): 011506. [19]ANDREINI A, FACCHINI B, INSINNA M, et al. Hybird RansLes modeling of a hot streak generator oriented to the study of combustorturbine interaction[C]∥Proceeding of ASME TURBO EXPO. Montreal: ASME,2015: 42402. |
[1] |
YANG Zhen,FU Zhuang,GUAN Enguang,XU Jiannan,TIAN Shihe,ZHENG Hui.
The Kinematic Analysis and Structure Optimization of MLattice Modular Robot [J]. Journal of Shanghai Jiaotong University, 2017, 51(10): 1153-1159. |
[2] |
ZHAO Jun1,YU Haidong2.
Dynamic Analysis of TwoLink Flexible Manipulators Based on the Absolute Nodal Coordinate Formulation [J]. Journal of Shanghai Jiaotong University, 2017, 51(10): 1160-1165. |
[3] |
ZHAO Ziren1,DU Shichang1,HUANG Delin1,REN Fei2,LIANG Xinguang2.
Modelling and Bottleneck Analysis of Product Quality in Transient Phase of MultiStage Manufacturing Systems Based on Markovian Chains [J]. Journal of Shanghai Jiaotong University, 2017, 51(10): 1166-1173. |
[4] |
HUANG Xuangui.
Algorithm for Relatively Small Planted Clique with Small Edge Probability [J]. Journal of Shanghai Jiaotong University, 2017, 51(10): 1202-1206. |
[5] |
LUO Jingjinga,YU Haidonga,ZHAO Chunzhanga,b,WANG Haoa,b.
Study on Motion Stability of Variable CrossSection Flexible Beams Based on the Absolute Nodal Coordinate Formulation [J]. Journal of Shanghai Jiaotong University, 2017, 51(10): 1174-1180. |
[6] |
WANG Yibo1,HUANG Yixiang1,LI Bingchu1,LING Xiao1 ZHAO Shuai1,LIU Chengliang1,ZHANG Daqing2.
An Improved Modal Simulation Method for Switched Reluctance Motor Based on Static PreComputation [J]. Journal of Shanghai Jiaotong University, 2017, 51(10): 1181-1188. |
[7] |
ZHOU Binghai,LI Ming.
Scheduling Method of Manufacturing Cells with Robot Restricted Processing [J]. Journal of Shanghai Jiaotong University, 2017, 51(10): 1214-1219. |
[8] |
CHEN Jinping1,ZHANG Shusheng1,HE Weiping1,WANG Mingwei1,HUANG Hui2.
Feasible Change Path Search and Optimization Method Based on Driving Parameter Modeling [J]. Journal of Shanghai Jiaotong University, 2017, 51(10): 1220-1227. |
[9] |
ZHOU Penghui,MA Hongzhan,CHEN Dongping,CHEN Mengyue,CHU Xuening.
Identification of Product Redesign Modules Based on Fuzzy Random Failure Mode and Effects Analysis [J]. Journal of Shanghai Jiaotong University, 2017, 51(10): 1189-1195. |
[10] |
PENG Cheng,ZHU Jianyun,CHEN Li.
Mode Transition for a Hybrid Electric Vehicle Based on Model Reference Control [J]. Journal of Shanghai Jiaotong University, 2017, 51(10): 1196-1201. |
[11] |
LIU Wei,YANG Chao .
A Study on Injection Mould Part Quotation Model Based on Back Propagation Neural Network [J]. Journal of Shanghai Jiaotong University, 2017, 51(10): 1207-1213. |
[12] | CHEN Suting,WANG Zhuo,WANG Qi. Aerial Scene Classification Based on Nonlinear Scale Space [J]. Journal of Shanghai Jiaotong University, 2017, 51(10): 1228-1234. |
[13] |
CHEN Ning,HE Xiaobin,GUI Weihua,YANG Chunhua.
Research on Image Encryption System Based on Chaotic Discrete Sequence [J]. Journal of Shanghai Jiaotong University, 2017, 51(10): 1273-1280. |
[14] | LIU Kaia,ZHANG Liminb,ZHOU Lijuna. Design of Random Restricted Boltzmann Machine Group [J]. Journal of Shanghai Jiaotong University, 2017, 51(10): 1235-1240. |
[15] |
ZHU Xinyao1,SONG Baowei2,XU Gang1,YANG Songlin1.
Research on Landing Strategy and Influencing Factors of an Autonomous Underwater Vehicle with Supporting Mechanism [J]. Journal of Shanghai Jiaotong University, 2017, 51(10): 1241-1251. |
Viewed | ||||||
Full text |
|
|||||
Abstract |
|
|||||