大连理工大学学报
大連理工大學學報
대련리공대학학보
JOURNAL OF DALIAN UNIVERSITY OF TECHNOLOGY
2013年
3期
447-454
,共8页
土压平衡盾构机%密封舱%综合优化控制%地层识别%预测控制
土壓平衡盾構機%密封艙%綜閤優化控製%地層識彆%預測控製
토압평형순구궤%밀봉창%종합우화공제%지층식별%예측공제
earth pressure balance shield machine%pressure chamber%integrated optimization control%stratum identification%predictive control
为了实现盾构机掘进过程密封舱土压平衡的精确高效控制,提出了盾构刀盘系统、推进系统和排渣系统的综合优化控制方法。设计了以扭矩切深指数(TPI)和场切深指数(FPI)为特征输入参数的地层识别系统,然后建立了专家控制系统,根据地层识别的量化结果和控制规则给出刀盘转速的控制策略;在此基础上,提出了采用最小二乘支持向量机(LS-SVM )非线性预测控制方法来协调控制推进速度和螺旋输送机转速,并利用蚁群算法(ACS)滚动优化控制变量,实现密封舱土压平衡控制。实验结果表明即使在工况发生变化时亦能够很好地控制密封舱土压平衡,证明了方法的有效性,实现了盾构机土压平衡的多子系统协调优化控制。
為瞭實現盾構機掘進過程密封艙土壓平衡的精確高效控製,提齣瞭盾構刀盤繫統、推進繫統和排渣繫統的綜閤優化控製方法。設計瞭以扭矩切深指數(TPI)和場切深指數(FPI)為特徵輸入參數的地層識彆繫統,然後建立瞭專傢控製繫統,根據地層識彆的量化結果和控製規則給齣刀盤轉速的控製策略;在此基礎上,提齣瞭採用最小二乘支持嚮量機(LS-SVM )非線性預測控製方法來協調控製推進速度和螺鏇輸送機轉速,併利用蟻群算法(ACS)滾動優化控製變量,實現密封艙土壓平衡控製。實驗結果錶明即使在工況髮生變化時亦能夠很好地控製密封艙土壓平衡,證明瞭方法的有效性,實現瞭盾構機土壓平衡的多子繫統協調優化控製。
위료실현순구궤굴진과정밀봉창토압평형적정학고효공제,제출료순구도반계통、추진계통화배사계통적종합우화공제방법。설계료이뉴구절심지수(TPI)화장절심지수(FPI)위특정수입삼수적지층식별계통,연후건립료전가공제계통,근거지층식별적양화결과화공제규칙급출도반전속적공제책략;재차기출상,제출료채용최소이승지지향량궤(LS-SVM )비선성예측공제방법래협조공제추진속도화라선수송궤전속,병이용의군산법(ACS)곤동우화공제변량,실현밀봉창토압평형공제。실험결과표명즉사재공황발생변화시역능구흔호지공제밀봉창토압평형,증명료방법적유효성,실현료순구궤토압평형적다자계통협조우화공제。
In order to control the earth pressure balance (EPB) of pressure chamber more accurately and efficiently during tunneling process ,an integrated optimization control method is proposed for cutter head system ,thrust system and discharge system .A stratum identification system is designed which takes the torque penetration index (TPI) and field penetration index (FPI) as input character parameters .An expert control system is established ,and it can give the control strategy of cutter speed based on the quantitative results of stratum identification and control rules .On this basis ,a least squares-support vector machine (LS-SVM ) nonlinear predictive control strategy is given to coordinatively control advance speed and screw conveyor speed , and the control variables can be rollingly optimized by means of ant colony system (ACS) algorithm .The experiments show that the earth pressure balance in chamber can be controlled very well even though the working condition changes ,which demonstrates the effectiveness of this method and the earth pressure balance in chamber can be realized by multiple subsystems coordinative optimization control .