

浏览全部资源
扫码关注微信
1. 复旦大学工程与应用技术研究院,上海,200433
2. 中国科学院苏州生物医学工程技术研究所,江苏,苏州,215163
3. 复旦大学附属华山医院,上海,200040
Online First:10 June 2023,
Published:2023
移动端阅览
CAI Liming, YAN Shuhao, DONG Yuefang, et al. Evaluation Method and Experimental Study of Pilots' Delicate Operation Capability Under Different Loads[J]. 2023, 57(6): 39-46.
CAI Liming, YAN Shuhao, DONG Yuefang, et al. Evaluation Method and Experimental Study of Pilots' Delicate Operation Capability Under Different Loads[J]. 2023, 57(6): 39-46. DOI: 10.7652/xjtuxb202306005.
针对目前飞行员选拔中现有精细操作能力评估设备所提供的数据量化程度低的问题
提出了一种用于上肢精细操作能力评估的方法
并研制了一种基于伺服电机的可变负载精细操作能力评估装置。开发了面向二自由度摇杆操作的实验装置
搭建了控制系统平台; 基于伺服电机可变负载的特性
设计了左右位置精细操作的测试范式; 从实验结果中提取位置数据左右标准差、平均值差、极差等特征值
对精细操作能力进行评估
验证了评估方法的有效性。采用所提方法进行分组对照实验验证
结果表明:在飞行能力不同的被试组之间
精细操作能力呈显著性差异
飞行能力与操作成绩显著相关; 不同负载条件下
同组内成员的精细操作能力未发现显著性差异。研究所提评估方法及装置能够较好地评测操作者的精细操作能力
为飞行员的选拔与训练提供量化依据。
To address the problem of low quantification degree of the data provided by the existing delicate operation capability evaluation equipment in the pilot selection
an evaluation method for upper limb delicate operation was proposed
and an exemplary evaluation device with variable load based on servo motor was developed. Firstly
the experimental apparatus for 2-DOF joystick operation was designed
and the control system platform was built. Next
the test paradigm of left and right position operation was designed based on the variable load characteristics of the servo motor. Finally
the characteristic values such as standard left-right deviation
mean difference
and range were extracted from the experimental results to evaluate the delicate operation capability and verify the effectiveness of the evaluation method. The proposed method was used for verification by grouping the pilot participants. The results showed that the delicate operation capability was significantly different among the groups with varying flying skills. The higher the flying capability level
the better the performance. Under other load conditions
no significant difference was found in the delicate operation capability of the members in the group. It is proved that the evaluation method and device proposed in this study can better evaluate the operator's delicate operation capability and provide a quantitative basis for pilot selection and training.
朱淑佩, 唐伟财, 王笃明, 等. 基本认知与操作能力对机械臂精细对接任务绩效及人误的影响 [J]. 载人航天, 2022, 28(1): 47-54.ZHU Shupei, TANG Weicai, WANG Duming, et al. Influence of basic cognition and operation abilities on performance and human error in manipulator fine docking [J]. Manned Spaceflight, 2022, 28(1): 47-54.[2] 赵后雨, 沈兴华. 美国海军舰载机飞行员心理选拔对我国海军的启示 [J]. 职业与健康, 2019, 35(7): 990-994.ZHAO Houyu, SHEN Xinghua. Inspiration of psychological selection of US navy carrier aircraft pilots to Chinese Navy [J]. Occupation and Health, 2019, 35(7): 990-994.[3] 徐海亮, 吴海平, 张绍勇. 海军舰载战斗机飞行员舰飞与着舰专项身体素质需求分析及专项体能训练对策研究 [J]. 中国体育科技, 2019, 55(8): 26-29.XU Hailiang, WU Haiping, ZHANG Shaoyong. Research on the analysis of specific physical quality demand and physical fitness training countermeasures of shipboard fighter pilots taking-off and landing [J]. China Sport Science and Technology, 2019, 55(8): 26-29.[4] CAREY D P. Eye-hand coordination: eye to hand or hand to eye? [J]. Current Biology, 2000, 10(11): R416-R419.[5] TANG Weicai, XIAO Yi, XU Fenggang, et al. Development and application of test software of fine operation ability of directional motion [C]//Man-Machine-Environment System Engineering. Singapore: Springer Singapore, 2019: 339-346.[6] 李蓓蕾, 林磊, 董奇, 等. 儿童精细动作能力的发展及与其学业成绩的关系 [J]. 心理学报, 2002, 34(5): 494-499.LI Beilei, LIN Lei, DONG Qi, et al. The development of fine motors and their relations to children's academic achievement [J]. Acta Psychologica Sinica, 2002, 34(5): 494-499.[7] 唐伟财, 肖毅, 徐凤刚, 等. 精细操作能力测试方法设计与应用 [J]. 载人航天, 2021, 27(2): 227-233.TANG Weicai, XIAO Yi, XU Fenggang, et al. Design and application of fine operation ability test [J]. Manned Spaceflight, 2021, 27(2): 227-233.[8] FITTS P M. The information capacity of the human motor system in controlling the amplitude of movement [J]. Journal of Experimental Psychology, 1954, 47(6): 381-391.[9] 于雪纯. 基于Fitts实验的眼动、指压及准确性的相关性研究 [D]. 大连: 大连理工大学, 2020.[10] 魏鹏娜, 马鹏程, 张进华, 等. 基于双向长短时记忆神经网络的步态时空参数脑肌电解码方法 [J]. 西安交通大学学报, 2022, 56(9): 142-150.WEI Pengna, MA Pengcheng, ZHANG Jinhua, et al. EEG and sEMG decoding of gait spatiotemporal parameters based on bidirectional long short-term memory neural network [J]. Journal of Xi'an Jiaotong University, 2022, 56(9): 142-150.[11] 赵王芳. 老年人手部精细动作控制能力研究进展 [J]. 中国老年学杂志, 2012, 32(15): 3348-3349.ZHAO Wangfang. Research progress of fine motor control in the elderly [J]. Chinese Journal of Gerontology, 2012, 32(15): 3348-3349.[12] 李睿敏. 基于视觉数据的人体动作精细分类及评估方法研究 [D]. 西安: 中国科学院大学(中国科学院西安光学精密机械研究所), 2020.[13] 惠铎铎, 李晓京, 治洪, 等. 心理运动能力测评系统的开发应用 [J]. 计算机技术与发展, 2014, 24(12): 180-182, 187.HUI Duoduo, LI Xiaojing, ZHI Hong, et al. Development and application of psychomotor ability test system [J]. Computer Technology and Development, 2014, 24(12): 180-182, 187.[14] 魏焕成. 心理运动能力在民航飞行员选拔中的应用研究 [D]. 西安: 第四军医大学, 2013.[15] SANO T, TAKEDA M, NAMBU I, et al. Relations between speed-accuracy trade-off and muscle synergy in isometric contraction tasks [C]//2020 42nd Annual International Conference of the IEEE Engineering in Medicine & Biology Society(EMBC). Piscataway, NJ, USA: IEEE, 2020: 4803-4806.[16] KOJIMA S, TAKEDA M, NAMBU I, et al. Relations between required accuracy and muscle synergy in isometric contraction tasks [C]//2017 IEEE International Conference on Systems, Man, and Cybernetics(SMC). Piscataway, NJ, USA: IEEE, 2017: 1191-1195.[17] 唐伟财, 肖毅, 徐凤刚, 等. 精细操作能力测试方法设计与应用 [J]. 载人航天, 2021, 27(2): 227-233.TANG Weicai, XIAO Yi, XU Fenggang, et al. Design and application of fine operation ability test [J]. Manned Spaceflight, 2021, 27(2): 227-233.[18] 都承斐, 王丽珍, 柳松杨, 等. 机动飞行过载时操纵杆位置对飞行员操控影响的生物力学研究 [J]. 航天医学与医学工程, 2014, 27(4): 286-290.DU Chengfei, WANG Lizhen, LIU Songyang, et al. A biomechanical study on impact of position of flight control stick on operation efficiency in flight maneuvering acceleration [J]. Space Medicine & Medical Engineering, 2014, 27(4): 286-290.[19] 赵劲松, 叶正茂, 沈刚, 等. 飞行模拟器操纵负荷系统内回路的逆模型控制 [J]. 西安交通大学学报, 2012, 46(4): 38-44.ZHAO Jinsong, YE Zhengmao, SHEN Gang, et al. Inverse model control for inner loop of control loading system on flight simulator [J]. Journal of Xi'an Jiaotong University, 2012, 46(4): 38-44.[20] 莫凡. 飞行模拟器操纵负荷控制系统机械装置研究 [D]. 天津: 中国民航大学, 2015.[21] 姚文坤. 电动操纵负荷系统结构优化及力感模拟研究 [D]. 哈尔滨: 哈尔滨工业大学, 2020.[22] 陈珍, 杨海宽, 姜南, 等. 直升机飞行模拟器通用型操纵负荷系统设计 [J]. 系统仿真学报, 2019, 31(11): 2408-2412.CHEN Zhen, YANG Haikuan, JIANG Nan, et al. Design of universal control load system of helicopter flight simulator [J]. Journal of System Simulation, 2019, 31(11): 2408-2412.[23] 雷寰宇, 吕创, 张学民. 飞行任务中分心物的速度与数量变化对手眼协调追踪绩效的影响 [J]. 航天医学与医学工程, 2016, 29(5): 372-375.LEI Huanyu, LÜ Chuang, ZHANG Xuemin. Influence of speed and amount of distractors on eye-hand coordination in a flying task [J]. Space Medicine & Medical Engineering, 2016, 29(5): 372-375.[24] ZHAO Kunkun, WEN Haiying, ZHANG Zhisheng, et al. Evaluation of methods for the extraction of spatial muscle synergies [J]. Frontiers in Neuroscience, 2022, 16: 732156.[25] 王海, 陶庆, 苏娜, 等. 采用表面肌电信号的手指关节角度精确感知方法 [J]. 西安交通大学学报, 2022, 56(8): 160-167.WANG Hai, TAO Qing, SU Na, et al. Method for accurate sensing of finger joint angles using surface electromyography signals [J]. Journal of Xi'an Jiaotong University, 2022, 56(8): 160-167.
0
Views
19
下载量
0
CSCD
Publicity Resources
Related Articles
Related Author
Related Institution
京公网安备11010802024621