安徽工业大学电气与信息工程学院,安徽,马鞍山,243032
网络首发:2020-05-10,
纸质出版:2020
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章家岩, 张子蒙, 冯旭刚. 转炉炉口微差压的模糊滑模控制系统设计[J]. 西安交通大学学报, 2020,54(5):142-148+157.
Design of Fu--y Sliding Mode Control System for Converter Furnace Differential Pressure[J]. 2020, 54(5): 142-148+157.
章家岩, 张子蒙, 冯旭刚. 转炉炉口微差压的模糊滑模控制系统设计[J]. 西安交通大学学报, 2020,54(5):142-148+157. DOI: 10.7652/xjtuxb202005019.
Design of Fu--y Sliding Mode Control System for Converter Furnace Differential Pressure[J]. 2020, 54(5): 142-148+157. DOI: 10.7652/xjtuxb202005019.
针对转炉炉口微差压控制系统的非线性、干扰大和时变的特点
提出了一种基于干扰观测补偿的模糊滑模控制策略。通过分析滑模控制理论
得出了切换增益引起抖振这一结论。引入指数趋近律
发现切换增益与滑动因子绝对值呈正比关系。利用模糊设计规则对切换增益进行有效估计
使其更逼近滑模到达滑模面所需增益。结合基准观测器和经过处理所得到的等效干扰观测器
使得系统仅由增益就可对外界干扰进行快速反应。Matlab仿真研究结果表明:采用模糊滑模控制比常规PID控制的响应时间减少了0.14 s
达到峰值时间减少了1.08 s
超调量相对减少了0.025%
系统的切换增益更小
有效地遏制了抖振现象。工程实际应用表明:应用所提方法后
系统的抖振相对于滑模控制降低了10%
调节时间相对常规PID控制降低了0.38 s
取压口处压力波动范围为-3.5~7 Pa
比常规PID控制的效果提高了50%左右
系统抑制干扰的能力明显增强。
Aiming at the characteristics of non-linearity
large interference and time-varying of the differential pressure control system at converter mouth
a fu--y sliding mode control strategy based on interference observation and compensation is proposed. Analy-ing the sliding mode control theory
it is concluded that the switching gain induces buffet. The exponential approach law is introduced
and it is found that the switching gain is proportional to the absolute value of sliding factor. The fu--y design rule is used to effectively estimate the switching gain for the gain to approach the value required by the sliding mode to reach the sliding mode surface. Combining the reference observer and the equivalent interference observer obtained after processing
the system can quickly respond to external interference only by gain. Matlab simulation results show that the fu--y sliding mode control reduces the response time by 0.14 s
the peak time by 1.08 s
and the overshoot by 0.025%. The switc
周建安, 蒋学凯, 谢剑波, 等. 转炉高温烟气喷吹煤粉回收煤气工业试验研究 [J]. 炼钢, 2017, 33(6): 67-72.
ZHOU Jian’an, JIANG Xuekai, XIE Jianbo, et al. Industrial testing of high quality converter gas recovery by injecting pulverized coal into the high temperature gas of converter [J]. Steelmaking, 2017, 33(6): 67-72.
卢秀和, 王蔚, 李宏侠. 基于10 t矿热炉的煤气净化回收微差压控制系统 [J]. 长春工业大学学报(自然科学版), 2012, 33(5): 548-552.
LU Xiuhe, WANG Wei, LI Hongxia. Micro-differential pressure control system for gas purification and recovery based on 10 t submerged arc furnace [J]. Journal of Changchun University of Technology(Natural Science Edition), 2012, 33(5): 548-552.
章家岩, 马中海, 钱晓斌, 等. 转炉煤气回收系统优化控制策略应用 [J]. 自动化学报, 2012, 38(6): 1017-1024.
ZHANG Jiayan, MA Zhonghai, QIAN Xiaobin, et al. Application of optimized control strategy for converter gas recovery system [J]. Acta Automatica Sinica, 2012, 38(6): 1017-1024.
陈媛, 王爽, 张鹏. 转炉煤气净化回收“塔-环隙”技术在日钢的应用 [J]. 环境工程, 2014, 32(1): 144-146, 157.
CHEN Yuan, WANG Shuang, ZHANG Peng. Application of “tower-RSW” technology for converter gas recovery in Rizhao Steel Co., Ltd. [J]. Environmental Engineering, 2014, 32(1): 144-146, 157.
刘荫绵. 炉口微差压技术在转炉煤气回收中的应用 [J]. 钢铁, 1994(5): 60-62, 16.
LIU Yinmian. Application of the micro differential pressure technology in converter gas recovery [J]. Iron Steel, 1994(5): 60-62, 16.
上官方钦, 干磊, 周继程, 等. 钢铁工业副产煤气资源化利用分析及案例 [J]. 钢铁, 2019, 54(7): 114-120.
SHANGGUAN Fangqin, GAN Lei, ZHOU Jicheng, et al. Analysis and case of the utilization of by-product gas resources in the iron and steel industry [J]. Iron Steel, 2019, 54(7): 114-120.
李逃昌. 基于新型趋近律的非线性积分滑模控制方法 [J]. 控制工程, 2019, 26(11): 2031-2035.
LI Taochang. Nonlinear integral sliding mode control method based on new reaching law [J]. Control Engineering of China, 2019, 26(11): 2031-2035.
杨子豪, 张燕平, 高伟. 基于给水温度前馈的中间点焓值模糊控制系统 [J]. 热力发电, 2017, 46(6): 62-68.
YANG Zihao, ZHANG Yanping, GAO Wei. An intermediate point threshold fuzzy control system based on feedwater temperature feedforward [J]. Thermal Power Generation, 2017, 46(6): 62-68.
杜亚雯, 董全林, 蒲小琴, 等. 基于模糊滑模的激光导引头伺服控制系统仿真分析 [J]. 红外与激光工程, 2019, 48(S2): 37-43.
DU Yawen, DONG Quanlin, PU Xiaoqin, et al. Simulation analysis of laser seeker servo control system based on fuzzy sliding mode [J]. Infrared and Laser Engineering, 2019, 48(S2): 37-43.
蓝益鹏, 李洁. 直线同步电动机磁悬浮系统的自适应模糊滑模控制 [J/OL]. 控制与决策. [2019-10-01]. https:∥doi. org/10.13195/j.kzyjc.2019.0774.
LAN Yipeng, LI Jie. Adaptive fuzzy sliding mode control for magnetic suspension system of linear synchronous motor [J/OL]. Control and Decision. [2019-10-01]. https:∥doi.org/10.13195/j.kzyjc.2019.0774.
毛君, 曹昊, 谢苗, 等. 刮板输送机链条张力模糊滑模变结构控制研究 [J]. 控制工程, 2018, 25(11): 2041-2045.
MAO Jun, CAO Hao, XIE Miao, et al. Study on variable structure control of sliding conveyor chain tension fuzzy sliding mode [J]. Control Engineering, 2018, 25(11): 2041-2045.
韩吉霞, 马飞越, 佃松宜, 等. 基于非线性干扰观测器不确定系统的终端滑模控制 [J/OL]. 电光与控制. [2019-10-01]. http:∥kns.cnki.net/kcms/detail/41. 1227.tn.2019 1014.1418.014.html.
HAN Jixia, MA Feiyue, DIAN Songyi, et al. Terminal sliding mode control for uncertain systems based on nonlinear disturbance observer [J/OL]. Electronics Optics Control. [2019-10-01]. http:∥kns.cnki. net/kcms/detail/41.1227.tn.20191014.1418.014.ht-ml.
汤亮, 卢文政, 龚发云, 等. 滚珠丝杠副的增益模糊自适应双幂次滑模趋近率控制 [J]. 工程科学与技术, 2020, 52(1): 143-152.
TANG Liang, LU Wenzheng, GONG Fayun, et al. Gain fuzzy adaptive in double power reaching law for sliding mode control of ball screw pair [J]. Advanced Engineering Sciences, 2020, 52(1): 143-152.
马荣芳, 孙弘, 尹凤. 转炉烟气净化及煤气回收系统中炉口微差压的自动控制 [J]. 电气传动, 2006(5): 53-55.
MA Rongfang, SUN Hong, YIN Feng. Automatic control of micro-differential pressure of furnace in converter flue gas purification and gas recovery system [J]. Electric Drive, 2006(5): 53-55.
章家岩, 郎佳红, 王金忠. 转炉炉口微差压滑模变结构控制技术 [J]. 控制工程, 2009, 16(4): 419-422.
ZHANG Jiayan, LANG Jiahong, WANG Jinzhong. Control technology of differential pressure sliding mode change structure in converter furnace [J]. Control Engineering, 2009, 16(4): 419-422.
陈李济, 应保胜, 马强, 等. 基于变论域模糊滑模观测器的永磁同步电机无传感器控制 [J]. 组合机床与自动化加工技术, 2019(11): 51-54.
CHEN Liji, YING Baosheng, MA Qiang, et al. Sensorless control of permanent magnet synchronous motor based on variable universe fuzzy sliding mode observer [J]. Modular Machine Tool Automatic Manufacturing Technique, 2019(11): 51-54.
吴阳, 张建成. 同时含有未知输入和测量干扰系统全维和降维观测器设计 [J/OL]. 自动化学报. [2019-10-01]. https:∥doi.org/10.16383/j.aas.c190505.
WU Yang, ZHANG Jiancheng. Full- and reduced-order observer design for systems with both the unknown input and measurement disturbance [J/OL]. Acta Automatica Sinica. [2019-10-01]. https:∥doi. org/10.16383/j.aas.c190505.
文新宇, 王子豪, 王宝光, 等. 一种反向递推正弦干扰观测器的设计方法 [J/OL]. 控制与决策. [2019-10-01]. https:∥doi.org/10.13195/j.kzyjc.2019.076 9.
WEN Xinyu, WANG Zihao, WANG Baoguang, et al. Design method of reverse recursive sinusoidal disturbance observer [J/OL]. Control and Decision. [2019-10-01]. https:∥doi.org/10.13195/j.kzyjc.2019.076 9.
韩乃玉, 李志刚. 基于干扰观测器的弹仓趋近自适应滑模控制 [J/OL]. 兵器装备工程学报. [2019-10-01]. http:∥kns. cnki.net/kcms/detail/50.1213.TJ. 20190910.1512. 020.html.
HAN Naiyu, LI Zhigang. Approach adaptive sliding mode control of magazine based on disturbance observer [J/OL]. Journal of Ordnance Equipment Engineering. [2019-10-01]. http:∥kns.cnki.net/kcms/detail/50.1213.TJ. 20190910.1512.020.html.
王东委, 富月. 基于高阶观测器和干扰补偿控制的模型预测控制方法 [J/OL]. 自动化学报. [2019-10-01]. https:∥doi. org/10.16383/j.aas.c180697.
WANG Dongwei, FU Yue. Model predict control method based on higher-order observer and disturbance compensation control [J/OL]. Acta Automatica Sinica. [2019-10-01]. https:∥doi.org/10.16383/j.aas. c180697.
贺同福, 吴忠. 基于复合干扰观测器的CMG框架系统高精度转速控制 [J]. 系统科学与数学, 2019, 39(4): 495-506.
HE Tongfu, WU Zhong. High-precision speed control of CMG frame system based on compound disturbance observer [J]. Journal of Systems Science and Mathematical Sciences 2019, 39(4): 495-506.
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