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ENERGY EFFICIENCY ANALYSIS OF INTERCONNECTED PNEUMATIC CYLINDERS SERVO POSITIONING SYSTEM

机译:气动气缸相互定位系统的能效分析

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Pneumatic systems exhibits many advantages including high speed and better efficiency. Servo pneumatic system enables the pneumatic system to be employed in varying position applications such as robots. There will be always a compromise between the speed and allowable overshoot in determining the parameters of the system based on the applications. In present research, a system comprising of two pneumatic cylinders attached to each other is used. A small cylinder which is used to for fine adjustments in accuracy is mounted on the rod end of the large cylinder which travels the coarse movement. This system reduces the overshoot of the system without much reduction in speed. Mathematical model of the system comprising of motion dynamics, pressure and temperature dynamics inside cylinder chambers and mass flow variation in the valves are derived from the physical laws and recent literature information. Based on the mathematical model, a simulation model of the system is created in the Matlab-Simulink software. A fuzzy based control system has been designed for servo position control of the system. The simulation model is validated using the experimental results. The energy efficiency of the system is computed from the overall power developed in the system and cumulative air power supplied to the system. The analysis of the dynamics of the system while tracking a sinusoidal signal is taken as a task for analyzing the energy efficiency of the system. The energy efficiency of the system has been analyzed for various sizes of cylinders, various supply pressure levels to both the cylinders in the system and various applied loads to the system. To reduce the number of experiments to be conducted, a Taguchi based design of experiments is carried out. A statistical analysis has been made for analyzing the variation of energy efficiency with the above parameters. From the study, external load affects the energy efficiency in a considerable way which has 54.39% of the overall contribution. The second dominant factor on influencing energy efficiency is supply pressure to cylinder A which has the contribution of 23.65%.
机译:气动系统具有许多优势,包括高速和更高的效率。伺服气动系统使气动系统可用于各种位置的应用中,例如机器人。在根据应用程序确定系统参数时,速度和允许的超调之间始终会存在折衷。在当前的研究中,使用了包括彼此连接的两个气压缸的系统。一个用于精确调节精度的小气缸安装在大气缸的杆端,该气缸进行粗略运动。该系统在不大大降低速度的情况下减少了系统的过冲。该系统的数学模型包括运动规律,缸室内的压力和温度动态以及阀中的质量流量变化,这些都是基于物理定律和最新文献信息得出的。基于数学模型,在Matlab-Simulink软件中创建了系统的仿真模型。已经设计了基于模糊的控制系统,用于系统的伺服位置控制。使用实验结果验证了仿真模型。系统的能效是根据系统中产生的总功率和提供给系统的累积空气功率来计算的。在跟踪正弦信号的同时对系统动力学进行分析是一项分析系统能效的任务。对于各种尺寸的气缸,系统中气缸的各种供应压力水平以及系统所施加的各种负载,已经对系统的能源效率进行了分析。为了减少要进行的实验数量,进行了基于田口的实验设计。已经进行统计分析以分析具有以上参数的能量效率的变化。根据研究,外部负载以相当大的方式影响能源效率,占总贡献的54.39%。影响能源效率的第二个主要因素是气缸A的供应压力,其贡献率为23.65%。

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