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An intelligent control method based on artificial neural network for numerical flight simulation of the basic finner projectile with pitching maneuver
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作者 Yiming Liang Guangning Li +3 位作者 Min Xu Junmin Zhao Feng Hao Hongbo Shi 《Defence Technology(防务技术)》 SCIE EI CAS CSCD 2024年第2期663-674,共12页
In this paper,an intelligent control method applying on numerical virtual flight is proposed.The proposed algorithm is verified and evaluated by combining with the case of the basic finner projectile model and shows a... In this paper,an intelligent control method applying on numerical virtual flight is proposed.The proposed algorithm is verified and evaluated by combining with the case of the basic finner projectile model and shows a good application prospect.Firstly,a numerical virtual flight simulation model based on overlapping dynamic mesh technology is constructed.In order to verify the accuracy of the dynamic grid technology and the calculation of unsteady flow,a numerical simulation of the basic finner projectile without control is carried out.The simulation results are in good agreement with the experiment data which shows that the algorithm used in this paper can also be used in the design and evaluation of the intelligent controller in the numerical virtual flight simulation.Secondly,combined with the real-time control requirements of aerodynamic,attitude and displacement parameters of the projectile during the flight process,the numerical simulations of the basic finner projectile’s pitch channel are carried out under the traditional PID(Proportional-Integral-Derivative)control strategy and the intelligent PID control strategy respectively.The intelligent PID controller based on BP(Back Propagation)neural network can realize online learning and self-optimization of control parameters according to the acquired real-time flight parameters.Compared with the traditional PID controller,the concerned control variable overshoot,rise time,transition time and steady state error and other performance indicators have been greatly improved,and the higher the learning efficiency or the inertia coefficient,the faster the system,the larger the overshoot,and the smaller the stability error.The intelligent control method applying on numerical virtual flight is capable of solving the complicated unsteady motion and flow with the intelligent PID control strategy and has a strong promotion to engineering application. 展开更多
关键词 Numerical virtual flight Intelligent control BP neural network pid Moving chimera grid
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Application of PID Controller Based on BP Neural Network in Export Steam’s Temperature Control System 被引量:4
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作者 朱增辉 孙慧影 《Journal of Measurement Science and Instrumentation》 CAS 2011年第1期84-87,共4页
By combining the Back-Propagation(BP)neural network with conventional proportional Integral Derivative(PID)controller,a new temperature control strategy of the export steam in supercritical electric power plant is put... By combining the Back-Propagation(BP)neural network with conventional proportional Integral Derivative(PID)controller,a new temperature control strategy of the export steam in supercritical electric power plant is put forward.This scheme can effectively overcome the large time delay,inertia of the export steam and the influence of object in varying operational parameters.Thus excellent control quality is obtained.The present paper describes the development and application of neural network based controller to control the temperature of the boiler’s export steam.Through simulation in various situations,it validates that the control quality of this control system is apparently superior to the conventional PID control system. 展开更多
关键词 温度控制系统 BP神经网络 pid控制器 蒸汽温度 出口 应用 pid控制系统 比例积分微分
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Nonlinear Decoupling PID Control Using Neural Networks and Multiple Models 被引量:8
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作者 Lianfei ZHAI Tianyou CHAI 《控制理论与应用(英文版)》 EI 2006年第1期62-69,共8页
For a class of complex industrial processes with strong nonlinearity, serious coupling and uncertainty, a nonlinear decoupling proportional-integral-differential (PID) controller is proposed, which consists of a tra... For a class of complex industrial processes with strong nonlinearity, serious coupling and uncertainty, a nonlinear decoupling proportional-integral-differential (PID) controller is proposed, which consists of a traditional PID controller, a decoupling compensator and a feedforward compensator for the unmodeled dynamics. The parameters of such controller is selected based on the generalized minimum variance control law. The unmodeled dynamics is estimated and compensated by neural networks, a switching mechanism is introduced to improve tracking performance, then a nonlinear decoupling PID control algorithm is proposed. All signals in such switching system are globally bounded and the tracking error is convergent. Simulations show effectiveness of the algorithm. 展开更多
关键词 NONLINEAR Decoupling control pid neural networks Multiple models Generalized minimum variance
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Determining heating pipe temperature in greenhouse using proportional integral plus feedforward control and radial basic function neural-networks 被引量:1
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作者 余朝刚 应义斌 +1 位作者 王剑平 杨佳 《Journal of Zhejiang University-Science A(Applied Physics & Engineering)》 SCIE EI CAS CSCD 2005年第4期265-269,共5页
Proportional integral plus feedforward (PI+FF) control was proposed for identifying the pipe temperature in hot water heating greenhouse. To get satisfying control result, ten coefficients must be adjusted properly. T... Proportional integral plus feedforward (PI+FF) control was proposed for identifying the pipe temperature in hot water heating greenhouse. To get satisfying control result, ten coefficients must be adjusted properly. The data for training and testing the radial basic function (RBF) neural-networks model of greenhouse were collected in a 1028 m2 multi-span glasshouse. Based on this model, a method of coefficients adjustment is described in this article. 展开更多
关键词 温室管理 加热管道 温度 前馈控制 神经网络
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Application of Neural network PID Controller in Constant Temper-ature and Constant Liquid-level System 被引量:11
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作者 (College of information and control engineering, University of Petroleum, Dongying 257061, China) Chen Guochu Hao Ninmei Liu Xianguang(College of electricity engineering, University of Xi ’ an Communication, Xi’ an 710049, China) Zhang Lin (Workshop of Instrument of Plastic Plant, Qilu Petrochemical Corp., Zibo 255411, China) Wang Junhong 《微计算机信息》 2003年第1期23-24,42,共3页
Guided by the principle of neural network, an intelligent PID controller based on neural network is devised and applied to control of constant temperature and constant liquidlevel system. The experiment results show t... Guided by the principle of neural network, an intelligent PID controller based on neural network is devised and applied to control of constant temperature and constant liquidlevel system. The experiment results show that this controller has high accuracy and strong robustness and good characters. 展开更多
关键词 pid控制器 神经网络 pid控制 恒温恒液位系统
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Research on the controller of an arc welding process based on a PID neural network
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作者 Kuanfang HE Shisheng HUANG 《控制理论与应用(英文版)》 EI 2008年第3期327-329,共3页
A controller based on a PID neural network (PIDNN) is proposed for an arc welding power source whose output characteristic in responding to a given value is quickly and intelligently controlled in the welding proces... A controller based on a PID neural network (PIDNN) is proposed for an arc welding power source whose output characteristic in responding to a given value is quickly and intelligently controlled in the welding process. The new method syncretizes the PID control strategy and neural network to control the welding process intelligently, so it has the merit of PID control rules and the trait of better information disposal ability of the neural network. The results of simulation show that the controller has the properties of quick response, low overshoot, quick convergence and good stable accuracy, which meet the requirements for control of the welding process. 展开更多
关键词 Welding process Characteristic of output pid neural network controlLER
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Control of Hydraulic Power System by Mixed Neural Network PID in Unmanned Walking Platform
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作者 Jun Wang Yanbin Liu +1 位作者 Yi Jin Youtong Zhang 《Journal of Beijing Institute of Technology》 EI CAS 2020年第3期273-282,共10页
To speedily regulate and precisely control a hydraulic power system in a unmanned walking platform(UWP),based on the brief analysis of digital PID and its shortcomings,dual control parameters in a hydraulic power syst... To speedily regulate and precisely control a hydraulic power system in a unmanned walking platform(UWP),based on the brief analysis of digital PID and its shortcomings,dual control parameters in a hydraulic power system are given for the precision requirement,and a control strategy for dual relative control parameters in the dual loop PID is put forward,a load and throttle rotation-speed response model for variable pump and gasoline engine is provided according to a physical process,a simplified neural network structure PID is introduced,and formed mixed neural network PID(MNN PID)to control rotation speed of engine and pressure of variable pump,calculation using the back propagation(BP)algorithm and a self-adapted learning step is made,including a mathematic principle and a calculation flow scheme,the BP algorithm of neural network PID is trained and the control effect of system is simulated in Matlab environment,real control effects of engine rotation speed and variable pump pressure are verified in the experimental bench.Results show that algorithm effect of MNN PID is stable and MNN PID can meet the adjusting requirement of control parameters. 展开更多
关键词 pid control neural network hydraulic power system unmanned platform
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Adaptive Server Load Balancing in SDN Using PID Neural Network Controller
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作者 R.Malavika M.L.Valarmathi 《Computer Systems Science & Engineering》 SCIE EI 2022年第7期229-243,共15页
Web service applications are increasing tremendously in support of high-level businesses.There must be a need of better server load balancing mechanism for improving the performance of web services in business.Though ... Web service applications are increasing tremendously in support of high-level businesses.There must be a need of better server load balancing mechanism for improving the performance of web services in business.Though many load balancing methods exist,there is still a need for sophisticated load bal-ancing mechanism for not letting the clients to get frustrated.In this work,the ser-ver with minimum response time and the server having less traffic volume were selected for the aimed server to process the forthcoming requests.The Servers are probed with adaptive control of time with two thresholds L and U to indicate the status of server load in terms of response time difference as low,medium and high load by the load balancing application.Fetching the real time responses of entire servers in the server farm is a key component of this intelligent Load balancing system.Many Load Balancing schemes are based on the graded thresholds,because the exact information about the networkflux is difficult to obtain.Using two thresholds L and U,it is possible to indicate the load on particular server as low,medium or high depending on the Maximum response time difference of the servers present in the server farm which is below L,between L and U or above U respectively.However,the existing works of load balancing in the server farm incorporatefixed time to measure real time response time,which in general are not optimal for all traffic conditions.Therefore,an algorithm based on Propor-tional Integration and Derivative neural network controller was designed with two thresholds for tuning the timing to probe the server for near optimal perfor-mance.The emulation results has shown a significant gain in the performance by tuning the threshold time.In addition to that,tuning algorithm is implemented in conjunction with Load Balancing scheme which does not tune thefixed time slots. 展开更多
关键词 Software defined networks pid neural network controller closed loop control theory server load balancing server response time
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The study of film tension control system based on RBF neural network and PID
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作者 Jia Chunying Ding Zhigang Chen Yuchen 《International English Education Research》 2014年第8期82-85,共4页
关键词 RBF神经网络 张力控制系统 pid控制 薄膜 增量式pid算法 BOPP生产线 MATLAB软件 双向拉伸聚丙烯
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基于反向传播神经网络PID的高功率微波炉温度控制 被引量:1
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作者 王威 李少甫 +2 位作者 吴昊 蒋成 唐颖颖 《强激光与粒子束》 CAS CSCD 北大核心 2024年第1期55-61,共7页
针对现有10 kW高功率工业微波炉,采用继电器作为控制执行器,在使用传统控制方法加热时,温度存在较大超调和明显振荡,系统温度稳定性较低,为解决上述问题将反向传播神经网络PID(BPNNPID)控制引入到该装置微波加热温度控制中,并以自来水... 针对现有10 kW高功率工业微波炉,采用继电器作为控制执行器,在使用传统控制方法加热时,温度存在较大超调和明显振荡,系统温度稳定性较低,为解决上述问题将反向传播神经网络PID(BPNNPID)控制引入到该装置微波加热温度控制中,并以自来水为加热对象进行仿真对比与实验验证。首先,利用现有输入输出实验数据,建立工业微波炉温度控制模型;其次,运用MATLAB/SIMULINK搭建高功率工业微波炉温度控制系统并进行仿真对比实验;最后,实验验证BPNNPID控制方法在加热5 kg自来水时工业微波炉的温度控制性能,实验结果表明,较常规PID、模糊PID控制,该方法在微波加热过程中对媒质温度控制超调更小且未发生明显温度振荡,有效改善了高功率工业微波炉工作时的系统温度稳定性,有助于提高产品质量和安全性能。 展开更多
关键词 高功率 微波加热 反向传播神经网络 pid 温度控制
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足式机器人腿部关节改进单神经网络PID控制算法研究 被引量:1
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作者 马程 蒋刚 +5 位作者 郝兴安 蒲虹云 陈清平 黄建军 徐文刚 黄璜 《机床与液压》 北大核心 2024年第3期60-66,共7页
为了满足液压足式机器人在复杂环境中实现精确、快速的腿部关节控制需求,把单神经网络PID能够实时调节参数的优点运用到足式机器人液压机械腿关节的控制中,在单神经网络PID的基础上增加机械腿关节的位置和速度控制算法,形成改进单神经网... 为了满足液压足式机器人在复杂环境中实现精确、快速的腿部关节控制需求,把单神经网络PID能够实时调节参数的优点运用到足式机器人液压机械腿关节的控制中,在单神经网络PID的基础上增加机械腿关节的位置和速度控制算法,形成改进单神经网络PID,实现了对神经元比例参数自调整、PID参数的自整定,能够较好地适应内、外参数的变化,增强了腿部关节的快速性、精确性。在Simulink中进行建模仿真以及在设计的以STM32为中央处理芯片的控制平台上进行实验测试,结果表明:改进单神经网络PID在足式液压机器人的腿部关节控制中具有响应速度快、超调量小、控制精度高、鲁棒性强等优点。 展开更多
关键词 电液伺服控制 足式机器人 改进单神经网络pid 参数自整定
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Hierarchical CNNPID Based Active Steering Control Method for Intelligent Vehicle Facing Emergency Lane-Changing
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作者 Wensa Wang Jun Liang +1 位作者 Chaofeng Pan Long Chen 《Chinese Journal of Mechanical Engineering》 SCIE EI CAS CSCD 2023年第4期355-371,共17页
To resolve the response delay and overshoot problems of intelligent vehicles facing emergency lane-changing due to proportional-integral-differential(PID)parameter variation,an active steering control method based on ... To resolve the response delay and overshoot problems of intelligent vehicles facing emergency lane-changing due to proportional-integral-differential(PID)parameter variation,an active steering control method based on Convolutional Neural Network and PID(CNNPID)algorithm is constructed.First,a steering control model based on normal distribution probability function,steady constant radius steering,and instantaneous lane-change-based active for straight and curved roads is established.Second,based on the active steering control model,a three-dimensional constraint-based fifth-order polynomial equation lane-change path is designed to address the stability problem with supersaturation and sideslip due to emergency lane changing.In addition,a hierarchical CNNPID Controller is constructed which includes two layers to avoid collisions facing emergency lane changing,namely,the lane change path tracking PID control layer and the CNN control performance optimization layer.The scaled conjugate gradient backpropagation-based forward propagation control law is designed to optimize the PID control performance based on input parameters,and the elastic backpropagation-based module is adopted for weight correction.Finally,comparison studies and simulation/real vehicle test results are presented to demonstrate the effectiveness,significance,and advantages of the proposed controller. 展开更多
关键词 Intelligent vehicle Rear-end collision avoidance Steering control Dynamics model neural network pid control
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基于模糊神经网络的氢液化氦气压力PID控制
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作者 李安琪 秦可欣 +1 位作者 杨思锋 兰玉岐 《低温工程》 CAS CSCD 北大核心 2024年第2期92-98,共7页
为了解决氢液化装置氦气压力调节系统超调量大、响应速度慢、调节时间长、控制参数无法在线整定等问题,针对系统具有非线性和时变性的特点,设计了基于模糊神经网络的PID控制器以及基于双曲正切函数的改进型激活函数。仿真结果表明:相比... 为了解决氢液化装置氦气压力调节系统超调量大、响应速度慢、调节时间长、控制参数无法在线整定等问题,针对系统具有非线性和时变性的特点,设计了基于模糊神经网络的PID控制器以及基于双曲正切函数的改进型激活函数。仿真结果表明:相比传统PID控制或模糊PID控制,采用模糊神经网络PID控制的系统动态性能显著改善,使得氢液化装置的氦气压力调节更加稳定可靠。 展开更多
关键词 氦气压力调节系统 模糊神经网络 pid控制 压力控制
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Non-Minimum Phase Nonlinear System Predictive Control Based on Local Recurrent Neural Networks 被引量:2
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作者 张燕 陈增强 袁著祉 《Journal of Systems Engineering and Electronics》 SCIE EI CSCD 2003年第1期70-73,共4页
After a recursive multi-step-ahead predictor for nonlinear systems based on local recurrent neural networks is introduced, an intelligent FID controller is adopted to correct the errors including identified model erro... After a recursive multi-step-ahead predictor for nonlinear systems based on local recurrent neural networks is introduced, an intelligent FID controller is adopted to correct the errors including identified model errors and accumulated errors produced in the recursive process. Characterized by predictive control, this method can achieve a good control accuracy and has good robustness. A simulation study shows that this control algorithm is very effective. 展开更多
关键词 Multi-step-ahead predictive control Recurrent neural networks Intelligent pid control.
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干涉式闭环光纤陀螺仪的PSO-PID控制优化方法
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作者 刘尚波 丹泽升 +2 位作者 廉保旺 徐金涛 曹辉 《红外与激光工程》 EI CSCD 北大核心 2024年第3期242-253,共12页
控制系统的设计会对响应速度快且应用范围较广的数字干涉式闭环光纤陀螺(ICFOG)动态性能产生影响。通过分析ICFOG的工作原理,推导出闭环离散控制系统,并利用粒子群优化算法(Particle Swarm Optimization,PSO)对传统的PID控制器参数进行... 控制系统的设计会对响应速度快且应用范围较广的数字干涉式闭环光纤陀螺(ICFOG)动态性能产生影响。通过分析ICFOG的工作原理,推导出闭环离散控制系统,并利用粒子群优化算法(Particle Swarm Optimization,PSO)对传统的PID控制器参数进行优化。基于这个优化过程,设计一种新型的PSO-PID复合控制器,以取代传统的PID控制器。通过与其他BP神经网络、模糊控制等方法进行对比凸显该控制方法的优越。通过数字仿真分析显示,跟踪速度相较于BP-PID控制方法提高了1.91倍,相对于PID控制方法提高了3.5倍,相对于F-PID控制方法提高了1.75倍。同时,控制精度相对于BP-PID控制方法提高了46.03%,相对于PID控制方法提高了66.30%,相对于F-PID控制方法提高了45.27%。结果显示,采用PSO-PID控制器能够快速达到控制目标且具有较小的超调量。 展开更多
关键词 干涉式光纤陀螺 小超调量 粒子群优化pid方法 BP神经网络 模糊控制器
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基于BP神经网络PID的节水灌溉施肥系统研究
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作者 朱凤磊 张立新 +4 位作者 胡雪 李文春 王晓瑛 孟子皓 吴勋 《农机化研究》 北大核心 2024年第11期53-58,共6页
中国的化肥使用率常年居世界首位,且农业用水利用率较低,依靠个人经验的方法不仅造成了肥料和水资源的浪费,而且使当地生态环境也受到污染。由于管路运输等原因,节水灌溉施肥系统具有模型的时变性、非线性与时滞性的特点,普通控制器很... 中国的化肥使用率常年居世界首位,且农业用水利用率较低,依靠个人经验的方法不仅造成了肥料和水资源的浪费,而且使当地生态环境也受到污染。由于管路运输等原因,节水灌溉施肥系统具有模型的时变性、非线性与时滞性的特点,普通控制器很难对节水灌溉施肥系统的流量进行精准控制。针对上述问题,设计了一种基于BP神经网络PID的控制器,以期实现节水灌溉施肥系统对液体肥流量的精准控制;同时,与传统PID控制器进行对比,用MatLab软件进行仿真分析,得到阶跃响应曲线。研究结果表明:基于BP神经网络PID的控制器具有优异的控制效果,可以满足节水灌溉施肥系统精准控制的实际要求。 展开更多
关键词 灌溉施肥 神经网络 BP-pid 精准控制
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四旋翼无人机预设性能自适应PID控制
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作者 王安琪 李俊丽 +1 位作者 夏国锋 陈河江 《控制工程》 CSCD 北大核心 2024年第5期865-875,共11页
针对四旋翼飞行器在轨迹跟踪过程中存在建模误差和外界干扰问题,设计了一种双闭环控制系统。内环姿态环采用自适应PID算法,用滑模算法作为自适应机制,结合梯度下降法克服传统PID需要手动调节参数的问题,并用RBF神经网络消除滑模控制过... 针对四旋翼飞行器在轨迹跟踪过程中存在建模误差和外界干扰问题,设计了一种双闭环控制系统。内环姿态环采用自适应PID算法,用滑模算法作为自适应机制,结合梯度下降法克服传统PID需要手动调节参数的问题,并用RBF神经网络消除滑模控制过程中产生的抖振现象;外环位置环采用预设性能自适应PID算法,即在自适应PID算法的基础上加上预设性能控制,将误差用预设性能函数进行转换,使系统误差能够始终稳定在预设值,实现位置的快速跟踪;最后用Lyapunov函数证明系统的稳定性。从跟踪的快速性、稳定性和稳态性能方面,由仿真结果对比证明本文所设计的控制算法有很大的优越性,并能对不同形式的外部扰动表现出强抗干扰性。 展开更多
关键词 四旋翼 预设性能控制 自适应pid RBF神经网络 轨迹跟踪
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Parameters Optimization of the Heating Furnace Control Systems Based on BP Neural Network Improved by Genetic Algorithm 被引量:4
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作者 Qiong Wang Xiaokan Wang 《Journal on Internet of Things》 2020年第2期75-80,共6页
The heating technological requirement of the conventional PID control is difficult to guarantee which based on the precise mathematical model,because the heating furnace for heating treatment with the big inertia,the ... The heating technological requirement of the conventional PID control is difficult to guarantee which based on the precise mathematical model,because the heating furnace for heating treatment with the big inertia,the pure time delay and nonlinear time-varying.Proposed one kind optimized variable method of PID controller based on the genetic algorithm with improved BP network that better realized the completely automatic intelligent control of the entire thermal process than the classics critical purporting(Z-N)method.A heating furnace for the object was simulated with MATLAB,simulation results show that the control system has the quicker response characteristic,the better dynamic characteristic and the quite stronger robustness,which has some promotional value for the control of industrial furnace. 展开更多
关键词 Genetic algorithm parameter optimization pid control BP neural network heating furnace
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飞机起落架自适应模糊神经PID控制方法的研究
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作者 李明鹏 胡俊宏 智鑫 《机床与液压》 北大核心 2024年第1期51-58,共8页
针对传统PID控制与模糊PID控制的飞机起落架控制系统存在达不到理想控制精度以及控制速度的问题,提出一种基于模糊控制和神经网络的模糊神经PID控制算法。通过对起落架运动特点以及动力学相关的理论分析建立飞机起落架的运动模型,将此智... 针对传统PID控制与模糊PID控制的飞机起落架控制系统存在达不到理想控制精度以及控制速度的问题,提出一种基于模糊控制和神经网络的模糊神经PID控制算法。通过对起落架运动特点以及动力学相关的理论分析建立飞机起落架的运动模型,将此智能PID控制方法应用到飞机起落架的姿态控制系统中。利用MATLAB/Simulink软件进行仿真,并基于树莓派装置进行了起落架单腿实验。仿真和实验结果表明:模糊神经网络PID控制系统的响应速度和抗干扰能力相较于传统PID和模糊PID都有了较大的提升,系统稳定性更强。在飞机起落架控制系统中,应用模糊神经PID控制可进一步提升系统的响应速度,降低系统运动的惯性冲击,提高整体机构的稳定性。 展开更多
关键词 起落架 姿态控制 pid 模糊神经网络
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基于RBF神经网络整定PID的电液比例系统位置控制研究
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作者 陈翰文 徐巧玉 +1 位作者 徐恺 张正 《机电工程》 CAS 北大核心 2024年第3期371-381,共11页
针对凿岩机械臂的电液比例系统位置控制精度问题,提出了一种基于径向基函数(RBF)神经网络整定PID的电液比例系统位置控制方法。首先,在AMESim中搭建了阀控非对称液压缸的电液比例系统简化模型,设置了各个模块的参数;然后,利用MATLAB/Sim... 针对凿岩机械臂的电液比例系统位置控制精度问题,提出了一种基于径向基函数(RBF)神经网络整定PID的电液比例系统位置控制方法。首先,在AMESim中搭建了阀控非对称液压缸的电液比例系统简化模型,设置了各个模块的参数;然后,利用MATLAB/Simulink搭建了系统闭环控制模型,通过不断更新RBF网络模型并修正PID参数,实现了基于RBF神经网络整定PID的电液比例系统位置控制目的;结合AMESim搭建的电液比例系统模型和Simulink下搭建的控制器进行了联合仿真;最后,基于凿岩台车机械臂实验平台,进行了电液比例系统位置控制实验。仿真结果表明:在受到外部干扰的情况下,RBF神经网络整定PID控制系统能够在0.3 s内控制活塞杆重新运行至目标位置,平均响应时间为1.5 s,位置精度误差不超过5 mm。实验结果表明:与常规PID控制方法相比,RBF神经网络整定PID控制活塞杆位置精度误差降低了75%,位置精度误差在工程实际要求的10 mm范围以内,因此,RBF神经网络整定PID算法可以有效提高电液比例系统的位置控制精度,满足凿岩机械臂实际工作中对电液比例系统位置精度的控制要求。 展开更多
关键词 凿岩机械臂 径向基函数神经网络整定pid 电液比例系统位置控制精度 联合仿真 MATLAB/SIMULINK AMESIM
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