智能轮胎
上QQ阅读APP看书,第一时间看更新

2.7 参考文献

[1] 马连湘,刘志春,刘江省.轮胎生热与温度场的研究[J].轮胎工业,22(6):323-326,2002.

[2] 张德彦,许延琳,杨志宏.合理使用轮胎-确保高速公路行车安全.[J].轮胎工业,19(7):438-441,1999.

[3] Jaime A. Hernandez, Imad L. Al-Qadi. Contact Phenomenon of Free-Rolling Wide-Base Tires: Effect of Speed and Temperature [J]. Journal of Transportation Engineering, 142 (12): 1-9, 2016.

[4] 张岩,李庆领.滚动轮胎温度场分布及温度控制研究进展[J].橡胶工业,61(4):251-255,2014.

[5] 危银涛,刘宇艳,杜星文,吴宝国.子午线轮胎滚动阻力与温度场非线性有限元分析[J].轮胎工业,18(6):330-335,1998.

[6] 赵子亮,王庆年,李幼德,李杰,初亮.ANSYS在滚动轮胎稳态温度场分析中的应用[J].农业机械学报,32(2):15-17,20,2001.

[7] 马连湘,李晨,刘志春,黄素逸.滚动轮胎温度场的有限元模拟计算[J].橡胶工业,50(8):493-497,2003.

[8] 李杰,王庆年,赵子亮,姜立勇,赵伟强.高速滚动汽车轮胎稳态温度场分布的数值研究[J].汽车工程,25(3):256-259,2003.

[9] 王晓军,李炜,夏源明.基于实验的数值反演的滚动轮胎稳态温度场的有限元分析[J].实验力学,20(1):1-9,2005.

[10] 宋君萍,刘丽,马连湘.滚动轮胎稳态温度场的有限元计算[J].橡胶工业,53(3):161-165,2006.

[11] 王泽鹏.滚动轮胎全过程温度场数值与试验分析[J].橡胶工业,57(8):489-492,2010.

[12] 蒋辰飞,左曙光,李勇,段向雷.滚动轮胎有限元建模及温度场仿真分析[J].计算机仿真,29(10):348-352,2012.

[13] 王学瑞,王泽君,王友善.无内胎全钢轻型载重子午线轮胎稳态滚动温度场有限元分析[J].橡胶工业,59(3):173-176,2012.

[14] 王国林,童鑫,董自龙,徐海青.子午线轮胎接地特性与胎冠温度场关系的研究[J].橡胶工业,63(5):276-280.2016.

[15] Ziliang Zhao, Youde Li, Qingnian Wang, Jie Li, Liang Chu, Zhimin Ma, Pi Liu. Application of Infrared Thermometer in Testing of Temperature Field for a Rolling Tire [C]. Proceedings of the IEEE International Vehicle Electronics Conference, pp. 98-101, 1999.

[16] 初亮,李杰,王庆年,赵子亮,鲁和安.高速滚动轮胎表面稳态温度场的实验研究[J].农业机械学报,30(6):22-26,1999.

[17] 李杰,王庆年,赵子亮.中型载货汽车轮胎表面温度的稳态特性[J].吉林大学学报(工学版),33(2):1-5,2003.

[18] 李幼德,赵子亮,王庆年,初亮,李杰.高速滚动汽车轮胎温度场的非稳态热分析[J].汽车工程,24(1):60-64,2002.

[19] Yeong-Jyh Lin, Sheng-Jye Hwang. Temperature Prediction of Rolling Tires by Computer Simulation [J]. Mathematics and Computers in Simulation, 67 (3): 235-249, 2004.

[20] K. V. Narasimha Rao, R. Krishna Kumar, P. C. Bohara. A Sensitivity Analysis of Design Attributes and Operating Conditions on Tyre Operating Temperatures and Rolling Resistance Using Finite Element Analysis [J]. Proceedings of the Institution of Mechanical Engineers Part D-Journal of Automobile Engineering, 220 (D5): 501-517, 2006.

[21] 吴福麒,李子然,夏源明.不同载荷和初始气压下滚动轮胎稳态温度场的测试与有限元分析[J].工程力学,25(1):54-60,70,2008.

[22] Y Li, S Zuo, X Duan, X Guo, C Jiang. Theory Analysis of the Steady-State Surface Tempera ture on Rolling Tire [J]. Proceedings of the Institution of Mechanical Engineers Part C-Journal of Mechanical Engineering Science, 226 (C5): 1278-1289, 2012.

[23] Tian Tang, Daniel Johnson, Robert E. Smith, Sergio D. Felicelli. Numerical Evaluation of the Temperature Field of Steady-State Rolling Tires [J]. Applied Mathematical Modelling, 38 (5-6): 1622-1637, 2014.

[24] 赵子亮,王庆年,李杰,李幼德,初亮.基于滚动状态轮胎温度场的稳态热分析[J].机械工程学报,37(5):30-34,2001.

[25] 方波平,朱自生.轮胎行驶过程中温度及气压变化的试验研究[J].轮胎工业,16(5):302-306,1996.

[26] Raffaele De Rosa, Francesco Di Stazio, Daniele Giordano, Michele Russo and Mario Terzo. ThermoTyre: Tyre Temperature Distribution during Handling Manoeuvres [J]. Vehicle System Dynamics, 46 (9): 831-844, 2008.

[27] Walter H. Waddell, R. Christopher Napier.充气压力损失率对轮胎滚动阻力、汽车燃油经济性和二氧化碳排放量的影响[J]. 轮胎工业,32(1):6-14, 2012.

[28] 刘桂飘,罗玉涛.轮胎气压对汽车性能影响的研究[J].广东公安科技,(1):58-61,2003.

[29] 何燕,马连湘.速率及气压对轮胎胎面胶摩擦性能的影响[J].轮胎工业,27(10):585-588,2007.

[30] Hamid Taghavifar, Aref Mardani. Investigating the Effect of Velocity, Inflation Pressure, and Vertical Load on Rolling Resistance of a Radial Ply Tire [J]. Journal of Terramechanics, 50 (2): 99-106, 2013.

[31] Wismer R. D. and Luth H. J. . Off-road Traction Prediction for Wheeled Vehicles [J]. Transactions of the American Society of Agricultural Engineers, 17 (1): 8-10, 14, 1974.

[32] J. Ejsmont, S. Taryma, G. Ronowski, B. Swiecako-Zurek. Influence of Load and Inflation Pressure on the Tyre Rolling Resistance [J]. International Journal of Automotive Technology, 17 (2): 237-244, 2016.

[33] F. Grappe, R. Candau, B. Barbier, M. D. Hoffman, A. Belli and J. -D. Rouillon. Influence of Tyre Pressure and Vertical Load on Coefficient of Rolling Resistance and Simulated Cycling Performance [J]. Ergonomics, 42 (10): 1361-1371, 1999.

[34] A Cirello, G Marannano, G Virzì Mariotti. Experimental Analysis of the Contact Pressure Distribution in an Off-Road Tyre [J]. Journal of Strain Analysis for Engineering Design, 44 (4): 287-295, 2009.

[35] Smail Hamlat, Ferhat Hammoum, Jean-Pierre Kerzreho. Evaluation of the Distribution of Local Pressures and the Real Contact Area between the Tyre and the Road Surface [J]. International Journal of Pavement Engineering, 16 (9): 832-841, 2015.

[36] M. Hamed, B. Tesfa, M. Aliwan, G. Li, F. Gu, A. D. Ball. The Influence of Vehicle Tyres Pressure on the Suspension System Response by Applying the Time-Frequency Approach [C]. Proceedings of the 19th International Conference on Automation & Computing, pp. 1-6, 2013.

[37] Käppler W. -D., Godthelp H. Effects of Tyre Pressures on Vehicle Handling [J]. International Journal of Vehicle Design, 9 (4-5): 517-532, 1988.

[38] M K Al-Solihat, S Rakheja, A K W Ahmed. Influence of Tyre Pressure on an Urban Bus Transient and Steady State Handling Performance [J]. Proceedings of the Institution of Mechanical Engineers Part D-Journal of Automobile Engineering, 224 (D7): 893-908, 2010.

[39] 韩加蓬,张瑞静,王龙,谭德荣.轮胎气压对汽车行驶稳定性参数影响的试验研究[J].中国安全科学学报,23(9):64-70,2013.

[40] 韩加蓬,张瑞静,张亚新,谭德荣.轮胎气压对转向横拉杆力影响的试验研究[J].重庆交通大学学报(自然科学版),34(1):149-151,156,2015.

[41] 胡强.轮胎气压对汽车安全性及其使用寿命的影响[J].天津汽车,(1):45-48,2000.

[42] Chang Y. P., El-Gindy M., Streit D. A. Influence of Tyre Loading and Inflation Pressure on Standing Waves Phenomenon using PAM-SHOCK [J]. Heavy Vehicle Systems, A Special Issue of International Journal of Vehicle Design, 10 (1-2): 86-111, 2003.

[43] 唐宏.湿滑路面上轮胎最小极限速度的有限元仿真[J].CAD/CAM与制造业信息化,(12):40-42,2005.

[44] Joshua M. Pearce, Jason T. Hanlon. Energy Conservation from Systematic Tire Pressure Regulation [J]. Energy Policy, 35: 2673-2677, 2007.

[45] Naser Sina, Sayyad Nasiri, Vahid Karkhaneh. Effects of Resistive Loads and Tire Inflation Pressure on Tire Power Losses and CO2 Emissions in Real-World Conditions [J]. Applied Energy, 157: 974-983, 2015.

[46] 高东平,李承民.气压是轮胎的生命[J].轮胎工业,19(1):37-39,1999.

[47] 姚钟尧,丁剑平,林惠音.轮胎气压-负荷-下沉量之间的关系[J].特种橡胶制品,20(5):52-55,59,1999.

[48] 王泽鹏,高峰,薛风先.轮胎气压与主要影响因素的关系试验[J].农业机械学报,38(3):205-208,2007.

[49] 严建森.不同气温时的轮胎充气压力[J].矿用汽车,(2):48-51,1997.

[50] 王传铸,李好振,张燕龙.工程机械子午线轮胎温度与压力变化关系研究[J].轮胎工业,32(10):584-586,2012.

[51] 王吉忠,高志斌.充气内压对轮胎和汽车性能的影响及合理胎压的确定[J].公路与汽运,(4):4-6,2004.

[52] 魏清林,郭炳.气压负荷对轮胎使用的影响[J].山西交通科技,(6):86-87,2003.

[53] 王保良,昌宏哲,吕彭民.公路运输车辆轮胎充气压力现状分析[J].轮胎工业,28(3):131-134,2008.

[54] 胡小弟,孙立军.轻型货车轮胎接地压力分布实测[J].公路交通科技,22(8):1-7,11,2005.

[55] 胡小弟,孙立军.重型货车轮胎接地压力分布实测[J].同济大学学报(自然科学版) ,33(11):1443-1448,2005.

[56] 葛锋,曲学春,杨生辉,陈定坤,朱愿.轮胎气压与汽车性能的关系及其选择[J].军事交通学院学报,11(1):53-55,64,2009.

[57] Japanese Industrial Standard B 9202, Dimension and Load Ratings of Tires for Agricultural Machines and Implement[S]. 1982.

[58] Dong Ryol Lee and Kyeong Uk Kim. Effect of Inflation Pressure on Tractive Performance of Bias-ply Tires [J]. Journal of Terramechanics, 34 (3): 187-208, 1997.

[59] Gert Heinrich, Manfred Klüppel. Rubber Friction, Tread Deformation and Tire Traction [J]. Wear, 265: 1052-1060, 2008.

[60] 彭旭东,郭孔辉,丁玉华,单国玲,侯汝成.橡胶和轮胎的摩擦[J].橡胶工业,50(9):562-568,2003.

[61] K. A. Grosch. Rubber Friction and its Relation to Tire Traction [J]. Rubber Chemistry and Technology, 80 (3): 379-411, 2007.

[62] B Lorenz, B N J Persson, G Fortunato, M Giustiniano, F Baldoni. Rubber Friction for Tire Tread Compound on Road Surfaces [J]. Journal of Physics-Condensed Matter, 25 (9): 1-8, 2013.

[63] A. R. Savkoor. Some Aspects of Friction and Wear of Tyres Arising from Deformations Slip and Stresses at Ground Contact [J]. Wear, 9 (1): 66-78, 1966.

[64] Desmond F. Moore. Friction and Wear in Rubbers and Tyres [J]. Wear, 61 (2): 273-282, 1980.

[65] 王野平.论轮胎与路面间的摩擦[J].汽车技术,(2):10-14,1999.

[66] 于清溪.轮胎摩擦特性的探讨[J].橡塑技术与装备,39(3):8-20,2013.

[67] 彭旭东,谢友柏,郭孔辉.轮胎摩擦特性与胎面胶性能间关系的研究[J].润滑与密封,(4):12-15,1998.

[68] 王吉忠,顾善发,宋年秀.轮胎与路面之间的摩擦和附着[J].轮胎工业,22(2):67-70,2002.

[69] 王秀霞.轮胎的摩擦与粘弹性[J].轮胎工业,18(5):269-274,1998.

[70] 刘哲义.对影响轮胎与路面间附着性能因素的分析[J].公路,(6):48-51,2000.

[71] 杨旭东,郑木莲,朱洪涛,李祖仲,王秉纲.轮胎与水泥混凝土路面摩擦接触状况数值模拟[J].长安大学学报(自然科学版) ,30(4):13-17,2010.

[72] 张彦辉,刘小君,王伟,刘焜.潮湿路面上胎面花纹对轮胎附着性能的影响[J].农业工程学报,23(6):33-38,2007.

[73] K. Anupam, S. K. Srirangam, A. Scarpas, C. Kasbergen. Influence of Temperature on Tire-Pavement Friction: Analysis [J]. Transportation Research Record, 2369: 114-124, 2013.

[74] 黄晓明,代琦,平克磊.轮胎胎面与柔性路面摩擦接触的数值分析[J].公路交通科技,25(1):16-20,2008.

[75] 王伟,胡晓军,赵树高.子午线轮胎接触摩擦问题有限元分析[J].弹性体,18(1):13-17,2008.

[76] 程钢,赵国群,管延锦.滚动轮胎侧倾状态接地摩擦性能有限元分析[J].橡胶工业,53(9):553-557,2006.

[77] 王吉忠,庄继德,李日春.轮胎胎面橡胶块与刚性路面摩擦接触数值分析[J].农业工程学报,14(2):104-108,1998.

[78] 杜子学,汪随风,刘竞一.子午线轮胎在混凝土路面上的稳态滚动分析[J].轮胎工业,28(11):658-663,2008.

[79] 路永婕,杨绍普,李韶华.载重子午轮胎与路面相互作用的分析[J].公路交通科技,26(12):12-16,2009.

[80] J. J. Lazeration. Determination of the Coefficient of Friction of Rubber at Realistic Tire Contact Pressures [J]. Rubber Chemistry and Technology, 60 (5): 966-974, 1987.

[81] 管迪华,宋聪慧,范成建.轮胎橡胶摩擦特性的试验研究[J].汽车工程,30(4):357-359,371,2008.

[82] 李钊,李子然,夏源明.滚动轮胎接触摩擦行为的实验研究与数值分析[J].上海交通大学学报,47(5):817-821,2013.

[83] 彭旭东,孟祥铠,郭孔辉,谢友柏,单国玲.提高充气轮胎在冰雪路面上摩擦力的研究[J].轮胎工业,25(7):387-393,2005.

[84] 彭旭东,宗长富,谢友柏,郭孔辉.冰面上轮胎摩擦牵引力的实验研究[J].摩擦学学报,20(1):30-33,2000.

[85] J. Wu, Y. S. Wang, B. L. Su, Q. Liu. Experimental and Numerical Studies on Tire Tread Block Friction Characteristics Based on a New Test Device [J]. Advances in Materials Science and Engineering, 2014: 1-9, 2014.

[86] Sam Ella, Pierre-Yves Formagne, Vasileios Koutsos, Jane R Blackford. Investigation of Rubber Friction on Snow for Tyres [J]. Tribology International, 59 (s1): 292-301, 2013.

[87] 彭旭东,谢友柏.冰雪路面汽车轮胎的摩擦机理研究[J].汽车技术,(4):10-13,1998.

[88] 郭孔辉,庄晔,Shinken Chen,William Lin.轮胎胎面橡胶-冰面摩擦试验方法研究[J].摩擦学学报,25(3):234-237,2005.

[89] 彭旭东,孟祥凯,卢荡,郭孔辉,谢友柏.冰雪路面汽车轮胎摩擦特性研究进展[J].摩擦学学报,23(5):451-456,2003.

[90] 彭旭东,谢友柏,宗长富,郭孔辉.表面粗糙度对冰路面上滑动轮胎摩擦牵引力影响的研究[J].汽车工程,22(4):240-242,255,2000.

[91] V. Ivanov, K. Augsburg. Assessment of Tire Contact Properties by Nondestructive Analysis. Part 1. The Contact Length in the Region of Adhesion at Slow Rolling Velocities [J]. Journal of Friction and Wear, 29 (5): 362-368, 2008.

[92] 彭旭东,谢友柏,郭孔辉.轮胎摩擦学的研究与发展[J].中国机械工程,10(2):215-219,1999.

[93] 管迪华,张艾谦,吴卫东.用模态方法分析轮胎印迹内摩擦力及不同表面垂直特性[J].清华大学学报(自然科学版),39(2):98-101,1999.

[94] 哈尔滨工业大学(威海).轮胎花纹刚度及摩擦特性测试平台:中国,201510808402.9[P].2016-02-17.

[95] 倍耐力轮胎股份公司.计算轮胎的摩擦滑动曲线的方法:中国,200580038515.X[P].2007-10-17.

[96] 奇瑞汽车股份有限公司.一种车辆轮胎-路面附着系数测试方法和测试装置:中国,201310068074.4[P].2013-06-12.

[97] 清华大学.一种轮胎-路面最大附着系数测试方法:中国,200910086541.X[P].2009-11-18.

[98] H. Sakai. Theoretical and Experimental Studies on the Dynamic Properties of Tyres: Part 1 Review of Theories of Rubber Friction [J]. International Journal of Vehicle Design, 2 (1): 78-110, 1981.

[99] H. Sakai. Theoretical and Experimental Studies on the Dynamic Properties of Tyres: Part 2 Experimental Investigation of Rubber Friction and Deformation of a Tyre [J]. International Journal of Vehicle Design, 2 (2): 182-226, 1981.

[100] H. Sakai. Theoretical and Experimental Studies on the Dynamic Properties of Tyres: Part 3 Calculation of the six Components of Force and Moment of a Tyre [J]. International Journal of Vehicle Design, 2 (3): 335-372, 1981.

[101] H. Sakai. Theoretical and Experimental Studies on the Dynamic Properties of Tyres: Part 4 Investigations of the Influences of Running Conditions by Calculation and Experiment [J]. International Journal of Vehicle Design, 3 (3): 333-375, 1982.

[102] T. Ise, M. Higuchi, Y. Suzuki, H. Tachiya. Measurement on Friction Coefficients of Tire Grounding Surface in Arbitrary Directions under High-Load [J]. Experimental Mechanics, 57 (9): 1383-1393, 2017.

[103] J. M. Golden. A Theory of Wet Road-Tyre Friction [J]. Wear, 71 (3): 307-331, 1981.

[104] 刘娜,程钢,贺腾.子午线轮胎在水滑路面上的速度分析[J].弹性体,22(4):25-28,2012.

[105] Kuwajima Masatoshi, Okano Toshihiko, Sugimura Joichi, Yamamoto Yuji. Effects of Microscopic Surface Roughness on Rolling/Sliding Frictional Characteristics of Tire Tread Rubber: Characteristics of Friction at Low Slip Ratios [J]. Japanese Journal of Tribology, 50 (2): 237-248, 2005.

[106] L. Hartikainen, F. Petry, S. Westermann. Frequency-Wise Correlation of the Power Spectral Density of Asphalt Surface Roughness and Tire Wet Friction [J]. Wear, 317 (1-2): 111-119, 2014.

[107] M. M. Villani, I. Artamendi, M. Kane, A. Scarpas. Contribution of Hysteresis Component of Tire Rubber Friction on Stone Surfaces [J]. Transportation Research Record, 2227: 153-162, 2011.

[108] 徐新泉,刘伟,刘焜.湿滑路面上固体颗粒对轮胎附着性能的影响[J].合肥工业大学学报(自然科学版),35(2):149-152,229,2012.

[109] 朱永刚,刘小君,王伟,刘焜.考虑动压与路面粗糙度时轮胎湿牵引性能研究[J].汽车工程,29(7):616-619,629,2007.

[110] R. Savkoor, On the Friction of Rubber [J]. Wear, 8 (3): 222-237, 1965.

[111] Yumrak Oh, Hoguen Lee. Characteristics of a Tire Friction and Performances of a Braking in a High Speed Driving [J]. Advances in Mechanical Engineering, 2014: 1-6, 2014.

[112] B N J Persson. Rubber Friction and Tire Dynamics [J]. Journal of Physics-Condensed Matter, 23 (1): 1-14, 2011.

[113] 马彬,许洪国,刘宏飞.路面分形和橡胶特性对轮胎滑动摩擦因数的影响[J].吉林大学学报(工学版),43(2):317-322,2013.

[114] 张向文,王飞跃.轮胎动态摩擦特性对汽车ABS控制系统的影响[J].汽车技术,(12):26-32,2010.

[115] 凌建明,杜增明.考虑水膜厚度影响的道面轮胎间动态摩擦模型[J].同济大学学报(自然科学版),44(10):1533-1537,1594,2016.

[116] 郭孔辉,庄晔,Chen Shih-Ken,Lin William. 汽车轮胎橡胶摩擦试验研究 [J]. 机械工程学报,40(10):175-180,2004.

[117] Vladimír Panáček, Marek Semela, Vladimír Adamec, Barbora Schüllerová. Impact of Usable Coefficient of Adhesion between Tyre and Road Surface by Modern Vehicle on Its Dynamics while Driving and Braking in the Curve [J]. Transport, 31 (2): 142-146, 2016.

[118] 贺海留.轮胎振动研究综述[J].轮胎工业,14(10):35-44,1994.

[119] 杨宪武,左曙光,雷镭,吴旭东,董保利.轮胎非线性自激振动的动力学稳定性分析[J].中国机械工程,20(10):1251-1254,2009.

[120] T. J. Johnson, D. E. Adams. Composite Indices Applied to Vibration Data in Rolling Tires to Detect Bead Area Damage [J]. Mechanical Systems and Signal Processing, 21 (5): 2161-2184, 2007.

[121] 刘聚德,陈志芳.轮胎垂直振动动力学模型[J].汽车工程,15(5):263-267,1993.

[122] Lu Deng, Ran Cao, Wei Wang, Xinfeng Yin. A Multi-Point Tire Model for Studying Bridge-Vehicle Coupled Vibration [J]. International Journal of Structural Stability and Dynamics, 16 (8): 1-22, 2016.

[123] R. S. Sharp, D. J. Allison. In-plane Vibrations of Tyres and their Dependence on Wheel Mounting Conditions [J]. Vehicle System Dynamics, 29 (s1): 192-204, 1998.

[124] S. C. Huang. The Vibration of Rolling Tires in Ground Contact [J]. International Journal of Vehicle Design, 13 (1): 78-95, 1992.

[125] M. Eichler. A Ride Comfort Tyre Model for Vibration Analysis in Full Vehicle Simulations [J]. Vehicle System Dynamics, 27 (s1): 109-122, 1997.

[126] L. E. Kung, W. Soedel, T. Y. Yang. Free Vibration of a Pneumatic Tire-Wheel Unit Using a Ring on an Elastic Foundation and a Finite Element Model [J]. Journal of Sound and Vibration, 107 (2): 181-194, 1986.

[127] 乔维高,何耀华,苏楚奇,蒋崇贤.车辆运行时轮胎的振动特性[J].农业机械学报,30(2):22-27,1999.

[128] H Sugiyama, Y Suda. Non-Linear Elastic Ring Tyre Model Using the Absolute Nodal Coordinate Formulation [J]. Proceedings of the Institution of Mechanical Engineers Part K-Journal of Multibody Dynamics, 223 (3): 211-219, 2009.

[129] Charles J. Hunckler, T. Y. Yang, Werner Soedel. A Geometrically Nonlinear Shell Finite Element for Tire Vibration Analysis [J]. Computers and Structures, 17 (2): 217-225, 1983.

[130] C. Lecomte, W. R. Graham, M. Dale. A Shell Model for Tyre Belt Vibrations [J]. Journal of Sound and Vibration, 329 (10): 1717-1742, 2010.

[131] Y. -J. Kim, J. S. Bolton. Effects of Rotation on the Dynamics of a Circular Cylindrical Shell with Application to Tire Vibration [J]. Journal of Sound and Vibration, 275 (3-5): 605-621, 2004.

[132] 贾丽萍,徐延海,张建武.基于Bezier曲面的子午线轮胎自由振动分析[J].固体力学学报,24(1):31-39,2003.

[133] L. Jia, Y. Xu, J. Zhang. Free Vibration Analysis of Radial Pneumatic Tires Using Bez′ier Functions [J]. Journal of Sound and Vibration, 285 (4-5): 887-903, 2005.

[134] 危银涛,刘哲,周福强,赵崇雷.考虑面外振动的轮胎三维环模型[J].振动工程学报,29(5):798-803,2016.

[135] D. H. Guan, L. H. Yam, M. P. Mignolet, Y. Y. Li. Experimental Modal Analysis of Tires [J]. Experimental Techniques, 24 (6): 39-45, 2000.

[136] L. H. Yam, D. H. Guan, A. Q. Zhang. Three-dimensional Mode Shapes of a Tire Using Experimental Modal Analysis [J]. Experimental Mechanics, 40 (4): 369-375, 2000.

[137] 管迪华,董培蕾,范成建.轮胎自由与约束悬置的模态试验与综合分析[J].汽车工程,25(4):353-355,359,2003.

[138] 管迪华,彭会,范成建.轮胎模态试验分析的研究[J].汽车工程,27(6):691-695,2005.

[139] 冯希金,危银涛,朱光苗,陈亚龙.子午线轮胎固有频率和阻尼辨识的数值与实验研究[J].弹性体,25(4):26-30,2015.

[140] 赵文奇,陈顺雄,李万琼.轮胎振动模态研究[J].工程力学,15(3):105-110,1998.

[141] 石琴,陈无畏,谷叶水.受地面接触约束的子午线轮胎的模态分析[J].中国科学技术大学学报,35(6):861-867,2005.

[142] 谢永强.轮胎模态分析与应用[D].长春:吉林大学,2007.

[143] 马心坦,蔡琼阳.受载子午线轮胎的模态分析[J].中国农机化学报,37(4):148-151,2016.

[144] 白秀荣,王卫防,葛剑敏.利用有限元进行轮胎模态分析的新方法[J].轮胎工业,21(7):401-404,2001.

[145] X. Zhang, S. Rakheja, R. Ganesan. Modal Analysis of a Truck Tyre Using FE Tyre Model [J]. Heavy Vehicle Systems-International Journal of Vehicle Design, 11 (2): 133-154, 2004.

[146] 方园,吴光强.考虑非线性大变形的轮胎模态分析[J].噪声与振动控制,(2):19-21,2007.

[147] 安登峰,张建,王国林,应世洲,朱长顺.全钢载重子午线轮胎模态的有限元分析[J].轮胎工业,28(7):387-390,2008.

[148] 冯希金,郑小刚,危银涛,李红.轮胎振动特性的有限元分析及关键影响因素研究[J].轮胎工业,33(1):12-20,2013.

[149] 马心坦,蔡琼阳,李磊.考虑胎圈与轮辋接触的子午线轮胎模态分析[J].中国农机化学报,37(5):176-179,2016.

[150] Yanjin Guan, Gang Cheng, Guoqun Zhao, Hongmei Zhang. Investigation of the Vibration Characteristics of Radial Tires Using Experimental and Numerical Techniques [J]. Journal of Reinforced Plastics and Composites, 30 (24) : 2035-2050, 2011.

[151] 程钢,袁文生,赵国群,管延锦.子午线轮胎振动特性实验研究[J].弹性体,16(4):7-10,2006.

[152] H. Oldenettel, H. J. Köster. Test Procedure for the Quantification of Rolling Tire Belt Vibrations [J]. Vehicle System Dynamics, 27 (s1): 37-49, 1997.

[153] 高海慧,陈剑.轮胎振动特性实验研究[J].噪声与振动控制,(1):175-178,2010.

[154] I. F. Kozhevnikov. Vibrations of a Rolling Tyre [J]. Journal of Sound and Vibration, 331 (7): 1669-1685, 2012.

[155] Aniket Deodhar, Subhash Rakheja, Rama B. Bhat. Vibration and Tyre Force Transmissibility of Commercial Vehicles Owing to Wheel Unbalance and Non-Uniformity Defects [J]. International Journal of Heavy Vehicle Systems, 13 (3): 212-240, 2006.