| Citation: | Fatigue properties of HTPB propellant at low temperature[J]. Journal of Aerospace Power, 2017, 32(5): 1234-1240. doi: 10.13224/j.cnki.jasp.2017.05.025 |
| [1] |
邢耀国,曲凯,许俊松,等.舰船摇摆条件下固体火箭发动机舰载寿命预估[J].推进技术,2011,32(1):32-35.XING Yaoguo,QU Kai,XU Junsong,et al.Life prediction of shipborne solid rocket motor under the ship swing motion[J].Journal of Propulsion Technology,2011,32(1):32-35.(in Chinese)
|
| [2] |
曲凯,邢耀国,张旭东.摇摆载荷作用下舰载固体火箭发动机药柱疲劳损伤[J].航空动力学报,2011,26(11):2636-2640.QU Kai,XING Yaoguo,ZHANG Xudong.Fatigue damage of ship borne solid rocket motor propellant under swing loading[J].Journal of Aerospace Power,2011,26(11):2636-2640.(in Chinese)
|
| [3] |
高艳宾,许进升,陈雄,等.应变控制下NEPE推进剂非线性疲劳损伤[J].航空动力学报,2015,30(6):1486-1491.GAO Yanbin,XU Jinsheng,CHEN Xiong,et al.Nonlinear fatigue damage of nitrate ester plasticized polyether propellant for strain-control[J].Journal of Aerospace Power,2015,30(6):1486-1491.(in Chinese)
|
| [4] |
邓斌,董可海,谢燕.基于能量耗散的药柱粘弹性累积损伤[J].国防科技大学学报,2013,35(1):24-27.DENG Bin,DONG Kehai,XIE Yan.Viscoelastic cumulative damage of solid propellant grain based on energy dissipation[J].Journal of National University of Defense Technology,2013,35(1):24-27.(in Chinese)
|
| [5] |
高艳宾.NEPE推进剂疲劳损伤特性研究[D].南京:南京理工大学,2015.GAO Yanbin.Research on fatigue damage of NEPE propellant[D].Nanjing:Nanjing University of Science and Technology,2015.(in Chinese)
|
| [6] |
张艳辉,史明丽.空空导弹工作温度分析[J].装备环境工程,2015,12(2):99-103.ZHANG Yanhui,SHI Mingli.Analysis on operating temperature for air-to-air missiles[J].Equipment Environmental Engineering,2015,12(2):99-103.(in Chinese)
|
| [7] |
DeLuca L T,Galfetti L,Maggi F,et al.Characterization of HTPB-based solid fuel formulations:performance,mechanical properties,and pollution[J].Acta Astronautica,2013,92(2):150-162.
|
| [8] |
吴旷怀,杨国良,张肖宁.考虑松弛的沥青混合料疲劳损伤累计模型研究[J].深圳大学学报(理工版),2008,25(4):345-350.WU Kuanghuai,YANG Guoliang,ZHANG Xiaoning.A fatigue damage model of asphalt mixture considering stress relaxation[J].Journal of Shenzhen University (Science and Technology),2008,25(4):345-350.(in Chinese)
|
| [9] |
Fekete B.New energy-based low cycle fatigue model for reactor steels[J].Materials and Design,2015,79:42-52.
|
| [10] |
高艳宾,陈雄,许进升,等.NEPE 推进剂动态力学特性分析[J].推进技术,2015,36(9):1410-1415.GAO Yanbin,CHEN Xiong,XU Jinsheng,et al.Dynamic mechanical properties analysis of NEPE propellant[J].Journal of Propulsion Technology,2015,36(9):1410-1415.(in Chinese)
|
| [11] |
常武军,鞠玉涛,王蓬勃.HTPB 推进剂脱湿与力学性能的相关性研究[J].兵工学报,2012,33(3):261-266.CHANG Wujun,J Yutao,WANG Pengbo.Research on correlation between dewetting and mechanical property of HTPB propellant[J].Acta Armamentarii,2012,33(3):261-266.(in Chinese)
|
| [12] |
孟红磊,赵秀超,鞠玉涛,等.基于累积损伤的双基推进剂强度准则及实验[J].推进技术,2011,32(1):109-112.MENG Honglei,ZHAO Xiuchao,J Yutao,et al.Strength criterion based on accumulative damage for double-base propellant and experiment[J].Journal of Propulsion Technology,2011,32(1):109-112.(in Chinese)
|
| [13] |
Guo S,Zhou Y,Zhang H,et al.Thermographic analysis of the fatigue heating process for AZ31B magnesium alloy[J].Materials and Design,2015,65:1172-1180.
|
| [14] |
王玉峰,李高春,刘著卿,等.应变率和加载方式对 HTPB 推进剂力学性能及耗散特性的影响[J].含能材料,2010,18(4):377-382.WANG Yufeng,LI Gaochun,LIU Zhuqing,et al.Effect of strain rate and loading on mechanical properties and dissipated energy for HTPB propellant[J].Chinese Journal of Energetic Materials,2010,18(4):377-382.(in Chinese)
|
| [15] |
Taylor G I,Quinney H.The latent energy remaining in a metal after cold working[J].Proceedings of the Royal Society of London:Series A,1934,143(849):307-326.
|
| [16] |
Knysh P,Korkolis Y P.Determination of the fraction of plastic work converted into heat in metals[J].Mechanics of Materials,2015,86:71-80.
|
| [17] |
TONG Xin,CHEN Xiong,XU Jinsheng,et al.Excitation of thermal dissipation of solid propellants during the fatigue process[J].Materials and Design,2017,128:47-55.
|
| [18] |
许进升.复合推进剂热粘弹性本构模型实验及数值仿真研究[D].南京:南京理工大学,2013.XU Jinsheng.Experimental and numerical research on thermo-viscoelastic constitutive model of composite propellant[D].Nanjing:Nanjing University of Science and Technology,2015.(in Chinese)
|
| [19] |
Liu R,Zhang Z J,Zhang P,et al.Extremely-low-cycle fatigue behaviors of Cu and Cu-Al alloys:damage mechanisms and life prediction[J].Acta Materialia,2015,83:341-356.
|