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Hybrid algorithm for accelerating the double series of Floquet vector modes
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作者 LI Weidong HONG Wei HAO Zhangcheng ZHOU Houxing 《Science in China(Series F)》 2006年第5期616-626,共11页
In this paper, a hybrid algorithm for accelerating the double series of Floquet vector modes arising in the analysis of frequency selective surfaces (FSS) is presented. The asymptotic terms with slow convergence in ... In this paper, a hybrid algorithm for accelerating the double series of Floquet vector modes arising in the analysis of frequency selective surfaces (FSS) is presented. The asymptotic terms with slow convergence in the double series are first accelerated by Poisson transformation and Ewald method, and then the remained series is accelerated by Shank transformation. It results in significant savings in memory and computing time. Numerical examples verify the validity of the hybrid acceleration algorithm. 展开更多
关键词 FSS Floquet vector modes Shank transformation Ewald method Kummer transformation Poisson transformation.
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Fiber transmission demonstrations in vector mode space division multiplexing 被引量:2
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作者 Leslie A. RUSCH Sophie LAROCHELLE 《Frontiers of Optoelectronics》 EI CSCD 2018年第2期155-162,共8页
Much attention has been focused on the use of scalar modes for space division multiplexing (SDM). Alternative vector mode bases offer another solution set for SDM, expanding the available trade-offs in system perfor... Much attention has been focused on the use of scalar modes for space division multiplexing (SDM). Alternative vector mode bases offer another solution set for SDM, expanding the available trade-offs in system performance and complexity. We present two types of ring core fiber conceived and designed to explore SDM with fibers exhibiting low interactions between supported modes. We review demonstrations of fiber data transmis- sion tbr two separate vector mode bases: one for orbital angular momentum (OAM) modes and one for linearly polarized vector (LPV) modes. The OAM mode demon- strations include short transmissions using commercially available transceivers, as well as kilometer length transmission at extended data rates. The LPV demonstra- tions span kilometer length transmissions at high data rate with coherent detection, as well as a radio over fiber experiment with direct detection of narrowband signals. 展开更多
关键词 space division multiplexing (SDM) few-mode fiber (FMF) orbital angular momentum (OAM) linearly polarized vector (LPV) modes ring core fiber(RCF) polarization maintaining fiber
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Multi-mode process monitoring based on a novel weighted local standardization strategy and support vector data description 被引量:9
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作者 赵付洲 宋冰 侍洪波 《Journal of Central South University》 SCIE EI CAS CSCD 2016年第11期2896-2905,共10页
There are multiple operating modes in the real industrial process, and the collected data follow the complex multimodal distribution, so most traditional process monitoring methods are no longer applicable because the... There are multiple operating modes in the real industrial process, and the collected data follow the complex multimodal distribution, so most traditional process monitoring methods are no longer applicable because their presumptions are that sampled-data should obey the single Gaussian distribution or non-Gaussian distribution. In order to solve these problems, a novel weighted local standardization(WLS) strategy is proposed to standardize the multimodal data, which can eliminate the multi-mode characteristics of the collected data, and normalize them into unimodal data distribution. After detailed analysis of the raised data preprocessing strategy, a new algorithm using WLS strategy with support vector data description(SVDD) is put forward to apply for multi-mode monitoring process. Unlike the strategy of building multiple local models, the developed method only contains a model without the prior knowledge of multi-mode process. To demonstrate the proposed method's validity, it is applied to a numerical example and a Tennessee Eastman(TE) process. Finally, the simulation results show that the WLS strategy is very effective to standardize multimodal data, and the WLS-SVDD monitoring method has great advantages over the traditional SVDD and PCA combined with a local standardization strategy(LNS-PCA) in multi-mode process monitoring. 展开更多
关键词 multiple operating modes weighted local standardization support vector data description multi-mode monitoring
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Internal mode of incoherent photovoltaic vector solitons 被引量:1
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作者 张冰志 王红成 佘卫龙 《Chinese Physics B》 SCIE EI CAS CSCD 2007年第4期1052-1056,共5页
The internal modes of incoherent vector solitons (IVSs) in photovoltaic photorefractive materials are investigated in the framework of coupled nonlinear Schrodinger equations. It is found that there is a pair of int... The internal modes of incoherent vector solitons (IVSs) in photovoltaic photorefractive materials are investigated in the framework of coupled nonlinear Schrodinger equations. It is found that there is a pair of internal modes corresponding to a bright-bright IVS. The propagation dynamics of the bright-bright IVS perturbed by the internal modes is simulated by numerical method. 展开更多
关键词 incoherent photovoltaic vector soliton internal mode
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Automatic target recognition of moving target based on empirical mode decomposition and genetic algorithm support vector machine 被引量:4
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作者 张军 欧建平 占荣辉 《Journal of Central South University》 SCIE EI CAS CSCD 2015年第4期1389-1396,共8页
In order to improve measurement accuracy of moving target signals, an automatic target recognition model of moving target signals was established based on empirical mode decomposition(EMD) and support vector machine(S... In order to improve measurement accuracy of moving target signals, an automatic target recognition model of moving target signals was established based on empirical mode decomposition(EMD) and support vector machine(SVM). Automatic target recognition process on the nonlinear and non-stationary of Doppler signals of military target by using automatic target recognition model can be expressed as follows. Firstly, the nonlinearity and non-stationary of Doppler signals were decomposed into a set of intrinsic mode functions(IMFs) using EMD. After the Hilbert transform of IMF, the energy ratio of each IMF to the total IMFs can be extracted as the features of military target. Then, the SVM was trained through using the energy ratio to classify the military targets, and genetic algorithm(GA) was used to optimize SVM parameters in the solution space. The experimental results show that this algorithm can achieve the recognition accuracies of 86.15%, 87.93%, and 82.28% for tank, vehicle and soldier, respectively. 展开更多
关键词 automatic target recognition(ATR) moving target empirical mode decomposition genetic algorithm support vector machine
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基于信号特征提取和GWO-SVM的气液两相流流型识别方法
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作者 刘升虎 王颖梅 +2 位作者 魏海梦 邢亚敏 党瑞荣 《中国测试》 北大核心 2026年第1期165-171,共7页
为研究气液两相流的动态特性,并提高气液流型识别的准确性,提出一种基于信号特征提取与GWO-SVM的水平管道气液两相流流型识别方法。该方法利用环形电导传感器采集测量数据,在完成数据预处理的基础上,对信号时域特征参数进行提取。同时,... 为研究气液两相流的动态特性,并提高气液流型识别的准确性,提出一种基于信号特征提取与GWO-SVM的水平管道气液两相流流型识别方法。该方法利用环形电导传感器采集测量数据,在完成数据预处理的基础上,对信号时域特征参数进行提取。同时,采用变分模态分解对电导波动信号进行分析,通过计算各分量与原始信号的Spearman相关系数,筛选出与原始信号相关性较高的本征模态函数,计算能量比作为频域特征参数。最终,将时频域特征参数输入GWO-SVM进行流型识别。实验结果显示,该方法对三种流型的识别准确率达95.7%,与传统SVM和PSO-SVM方法相比,GWO-SVM在流型识别方面展现出更高的准确率和鲁棒性。 展开更多
关键词 流型识别 特征提取 灰狼优化算法 支持向量机 变分模态分解
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Distance Estimation and Material Classification of a Compliant Tactile Sensor Using Vibration Modes and Support Vector Machine
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作者 S.R.GUNASEKARA H.N.T.K.KALDERA +1 位作者 N.HARISCHANDRA L.SAMARANAYAKE 《Instrumentation》 2019年第1期34-47,共14页
Many animals possess actively movable tactile sensors in their heads,to explore the near-range space.During locomotion,an antenna is used in near range orientation,for example,in detecting,localizing,probing,and negot... Many animals possess actively movable tactile sensors in their heads,to explore the near-range space.During locomotion,an antenna is used in near range orientation,for example,in detecting,localizing,probing,and negotiating obstacles.A bionic tactile sensor used in the present work was inspired by the antenna of the stick insects.The sensor is able to detect an obstacle and its location in 3 D(Three dimensional) space.The vibration signals are analyzed in the frequency domain using Fast Fourier Transform(FFT) to estimate the distances.Signal processing algorithms,Artificial Neural Network(ANN) and Support Vector Machine(SVM) are used for the analysis and prediction processes.These three prediction techniques are compared for both distance estimation and material classification processes.When estimating the distances,the accuracy of estimation is deteriorated towards the tip of the probe due to the change in the vibration modes.Since the vibration data within that region have high a variance,the accuracy in distance estimation and material classification are lower towards the tip.The change in vibration mode is mathematically analyzed and a solution is proposed to estimate the distance along the full range of the probe. 展开更多
关键词 VIBRATION based active TACTILE sensor Artificial Neural Network Support vector MACHINES Distance estimation VIBRATION modeS Euler-Bernoulli beam element
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基于快速STA的PMSM预测控制
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作者 岳小洋 王立峰 李丹丹 《现代电子技术》 北大核心 2026年第4期85-90,共6页
针对永磁同步电机矢量控制系统中传统PI控制存在的高超调与鲁棒性差等问题,提出一种双闭环调速控制策略。通过整合快速超扭曲算法(STA)作为转速调节器,以及将改进的无差拍预测电流控制作为电流调节器,提升系统的响应速度与稳定性。为降... 针对永磁同步电机矢量控制系统中传统PI控制存在的高超调与鲁棒性差等问题,提出一种双闭环调速控制策略。通过整合快速超扭曲算法(STA)作为转速调节器,以及将改进的无差拍预测电流控制作为电流调节器,提升系统的响应速度与稳定性。为降低扰动对系统性能的影响,设计了一种快速终端滑模状态观测器,观测负载扰动变化并进行补偿。通过在Simulink中搭建电机控制模型,对系统整体和滑模状态观测器进行对比仿真。结果表明:改进的控制策略使系统响应时间大幅缩短,对不同的工况表现出强大适应性,抗负载扰动能力大幅增强;且当电机转速稳定在1000 r/min时,转速误差可控制在-0.15~0.02 r/min范围内,说明该控制策略可显著降低超调,增强系统鲁棒性。 展开更多
关键词 永磁同步电机 矢量控制 滑模控制 快速超扭曲算法 延迟补偿 滑模观测器
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基于向量加权平均算法优化的轴承剩余寿命预测
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作者 周靖诺 郇战 +1 位作者 陈瑛 朱学勤 《常州大学学报(自然科学版)》 2026年第1期66-73,共8页
针对轴承振动信号复杂度高的问题,提出基于向量加权平均算法-变分模态分解(INFO-VMD)的特征提取方法。另外,由于轴承振动信号特征差异性较大,因此提出多特征筛选的深度极限学习机预测模型(MFDELM),从而提高预测的准确度。首先,利用INFO-... 针对轴承振动信号复杂度高的问题,提出基于向量加权平均算法-变分模态分解(INFO-VMD)的特征提取方法。另外,由于轴承振动信号特征差异性较大,因此提出多特征筛选的深度极限学习机预测模型(MFDELM),从而提高预测的准确度。首先,利用INFO-VMD方法寻找最优层数和惩罚系数;然后,对模态分量分别提取时域和频域特征;最后,将特征集合输入到MFDELM预测模型中,计算出轴承剩余使用寿命。计算机仿真实验结果表明,文章预测模型得分为0.47,比基于长短期记忆网络(LSTM)模型得分提高了0.16,同时比基于门控递归单元(GRU)模型得分提高了0.21。通过轴承全寿命实验验证了提出方法的有效性。 展开更多
关键词 向量加权平均算法 变分模态分解 滚动轴承 深度极限学习机 寿命预测
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基于VMD-DBO-SVM的缺陷的非线性超声检测方法
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作者 刘雨昊 李少义 +3 位作者 吴坚 陈汉新 王耕 章立恒 《噪声与振动控制》 北大核心 2026年第1期309-315,共7页
提出一种基于变分模态分解(Variational Mode Decomposition,VMD)联合蜣螂优化算法(Dung Beetle Optimizer,DBO)和支持向量机(Support Vector Machine,SVM)的缺陷检测方法。该方法可以基于非线性超声检测有效探测金属板材试件中的裂缝,... 提出一种基于变分模态分解(Variational Mode Decomposition,VMD)联合蜣螂优化算法(Dung Beetle Optimizer,DBO)和支持向量机(Support Vector Machine,SVM)的缺陷检测方法。该方法可以基于非线性超声检测有效探测金属板材试件中的裂缝,并且对不同深度的裂缝试件进行分类。首先选择最佳参数对基波与二次谐波信号进行变分模态分解,在获得多个本征模态分量(Intrinsic Mode Function,IMF)后,选择与原始信号相关性系数高的IMF分量进行特征提取。最后将从基波和二次谐波中提取到的特征向量组成特征数据集,输入经过DBO优化后的SVM模型进行缺陷分类识别。结果证明,该模型的缺陷识别率可达到95%,并且识别准确率随着试件的损伤程度的增加而增大。 展开更多
关键词 振动与波 非线性超声检测 支持向量机 变分模态分解 蜣螂优化算法
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基于改进VMD和SVM方法的滚动轴承故障诊断
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作者 何晓良 苏春 张玉茹 《东南大学学报(自然科学版)》 北大核心 2026年第2期322-332,共11页
为解决旋转部件早期振动故障信号存在的特征微弱、非平稳等问题,提出一种基于改进变分模态分解(VMD)及支持向量机(SVM)的故障诊断方法。采用改进的野马算法(IWHO)优化VMD中的惩罚因子α和模态数K以实现参数自动寻优,采用适应度函数选择... 为解决旋转部件早期振动故障信号存在的特征微弱、非平稳等问题,提出一种基于改进变分模态分解(VMD)及支持向量机(SVM)的故障诊断方法。采用改进的野马算法(IWHO)优化VMD中的惩罚因子α和模态数K以实现参数自动寻优,采用适应度函数选择最小包络熵。利用优化后的VMD完成振动信号分解,得到振动信号的固有模态函数(IMF)。在此基础上,采用峭度准则选取前5阶IMF分量以计算时频域特征,构建特征向量;将特征向量输入SVM中完成训练,实现旋转部件的故障分类。以滚动轴承试验数据集为例,验证方法有效性。结果表明:所提出的方法能有效处理非平稳振动信号,针对数据集中轴承4种运行状态诊断的准确率达99.17%;在模拟噪声干扰环境下,模型仍能保持95.8%以上的诊断精度。 展开更多
关键词 变分模态分解 支持向量机 改进野马算法 故障诊断
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分布式驱动线控底盘电动车辆多模式多目标协调控制
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作者 孟朝霞 苏永杰 +3 位作者 杨子江 陈国旭 包浩然 邵梁 《汽车实用技术》 2026年第3期23-30,共8页
分布式驱动电动车辆在低速、中速、高速下需分别满足轮胎低磨损、操纵响应快和车辆稳定性好的需求,同时还需兼顾路面附着系数的不同带来的影响。因此,文章提出了一种基于工况识别的多模式多目标协调控制方法。该方法结合车速和路面附着... 分布式驱动电动车辆在低速、中速、高速下需分别满足轮胎低磨损、操纵响应快和车辆稳定性好的需求,同时还需兼顾路面附着系数的不同带来的影响。因此,文章提出了一种基于工况识别的多模式多目标协调控制方法。该方法结合车速和路面附着系数的情况,将车辆运行工况划分为低速、中速和高速三种模式,并分别设计相应的控制策略。基于CarSim的仿真验证表明,控制策略能够有效提升低速、中速以及高速工况下的多目标协调控制效果。 展开更多
关键词 分布式驱动电动汽车 转矩矢量控制 多模式多目标协调控制 前轮主动转向控制 工况识别
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基于矢量替换法的三电平变换器共模电压抑制研究
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作者 邹睿 陈昶 +2 位作者 马聪 曹志 姜雨枫 《电力电子技术》 2026年第3期71-79,共9页
在新型电力系统建设背景下,海量分布式能源随机接入对电力电子行业带来了巨大挑战与机遇。电力电子领域中T型三电平变换器已广泛运用在光伏并网系统、电机驱动系统等电气领域的各个方面。T型三电平逆变器在正常工作时会产生幅值与频率... 在新型电力系统建设背景下,海量分布式能源随机接入对电力电子行业带来了巨大挑战与机遇。电力电子领域中T型三电平变换器已广泛运用在光伏并网系统、电机驱动系统等电气领域的各个方面。T型三电平逆变器在正常工作时会产生幅值与频率较高的共模电压(CMV),影响设备以及电网安全稳定运行。国内外行业标准对电磁兼容性与电磁干扰提出了具体要求,降低CMV显得十分迫切。本文结合模型预测控制易于实现且具有设计灵活、动态响应快等特点,提出了一种基于离散矢量集模型预测控制(DSVM-MPC)的矢量替换策略,来抑制T型三电平变换器运用在电网系统中产生的CMV。该方法能够在不额外添加权重系数的前提下将CMV限制在±U_(dc)/6,且不会给中性点电位带来额外偏移,最后在T型三电平变换器仿真平台上对该方法的可行性和有效性进行了验证。 展开更多
关键词 三电平变换器 模型预测控制 共模电压抑制 矢量替换
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电动汽车回路串联故障电弧特征提取与检测
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作者 崔诗淼 王金龙 刘乙雁 《电力电子技术》 2026年第1期149-157,共9页
受道路颠簸、绝缘老化、接触不良等原因影响,电动汽车可能产生串联型电弧故障。基于干路电流的故障电弧检测方法会对电动汽车变速等工况产生误判。为准确地检测出电动汽车串联电弧故障,搭建了电动汽车串联型故障电弧实验平台,采集了不... 受道路颠簸、绝缘老化、接触不良等原因影响,电动汽车可能产生串联型电弧故障。基于干路电流的故障电弧检测方法会对电动汽车变速等工况产生误判。为准确地检测出电动汽车串联电弧故障,搭建了电动汽车串联型故障电弧实验平台,采集了不同速度、不同负载类型下的干路电流信号。通过变分模态分解(VMD)将干路电流信号分解为8个本征模态函数;其次,对电流信号进行了快速傅里叶变换(FFT),结合VMD的结果选择故障特征分量IMF1;对IMF1进行标准化处理,最后将处理后的IMF1分量输入支持向量机网格搜索(GS-SVM)模型进行故障电弧检测,使用十折交叉验证(CV)对模型进行准确率分析。开展了抗干扰实验,结果表明该模型抗干扰性较好,为研发电动汽车的故障电弧检测装置提供了一定的技术支持。 展开更多
关键词 串联故障电弧 电动汽车 变分模态分解 支持向量机网格搜索
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基于支持向量机预测可变参数的机电伺服系统动态面反步滑模位置控制
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作者 程亮 董子健 张金营 《机床与液压》 北大核心 2026年第1期135-140,共6页
针对永磁直线同步电机位置伺服系统易受非线性摩擦力、参数摄动、负载扰动等不确定因素影响的问题,提出一种基于支持向量机预测可变参数的机电伺服系统动态面反步滑模的位置控制方法。结合滑模控制、动态面控制与反步长控制设计永磁直... 针对永磁直线同步电机位置伺服系统易受非线性摩擦力、参数摄动、负载扰动等不确定因素影响的问题,提出一种基于支持向量机预测可变参数的机电伺服系统动态面反步滑模的位置控制方法。结合滑模控制、动态面控制与反步长控制设计永磁直线同步电机位置跟踪控制器,以提高位置伺服系统的抗干扰能力。引入支持向量机智能算法对动态面反步滑模位置控制器参数进行建模预测,以提高位置伺服系统的稳定性和收敛速度。最后,为验证所提控制方法的跟踪性能、响应性能及鲁棒性,进行正弦波位置给定信号与非周期性变负载扰动信号位置伺服系统仿真实验,并与基于经验法整定的动态面反步滑模控制器进行对比。结果表明:在正弦波位置给定信号与非周期性变负载扰动信号位置仿真实验中,与基于经验法整定的动态面反步滑模控制方法相比,文中所提控制方法的位置误差分别降低62.5%与50%。所提控制方法不仅显著提高永磁直线同步电机位置伺服系统的跟踪精度,而且位置伺服系统的鲁棒性能和响应性能得到显著改善。 展开更多
关键词 机电伺服系统 永磁直线同步电机 动态面反步滑模控制 位置控制 支持向量机 参数预测
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Estimating significant wave height from SAR imagery based on an SVM regression model 被引量:9
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作者 GAO Dong LIU Yongxin +2 位作者 MENG Junmin JIA Yongjun FAN Chenqing 《Acta Oceanologica Sinica》 SCIE CAS CSCD 2018年第3期103-110,共8页
A new method for estimating significant wave height(SWH) from advanced synthetic aperture radar(ASAR) wave mode data based on a support vector machine(SVM) regression model is presented. The model is established... A new method for estimating significant wave height(SWH) from advanced synthetic aperture radar(ASAR) wave mode data based on a support vector machine(SVM) regression model is presented. The model is established based on a nonlinear relationship between σ0, the variance of the normalized SAR image, SAR image spectrum spectral decomposition parameters and ocean wave SWH. The feature parameters of the SAR images are the input parameters of the SVM regression model, and the SWH provided by the European Centre for Medium-range Weather Forecasts(ECMWF) is the output parameter. On the basis of ASAR matching data set, a particle swarm optimization(PSO) algorithm is used to optimize the input kernel parameters of the SVM regression model and to establish the SVM model. The SWH estimation results yielded by this model are compared with the ECMWF reanalysis data and the buoy data. The RMSE values of the SWH are 0.34 and 0.48 m, and the correlation coefficient is 0.94 and 0.81, respectively. The results show that the SVM regression model is an effective method for estimating the SWH from the SAR data. The advantage of this model is that SAR data may serve as an independent data source for retrieving the SWH, which can avoid the complicated solution process associated with wave spectra. 展开更多
关键词 advanced synthetic aperture radar wave mode support vector machine significant wave height
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Correlation evaluation of tested and calculated modes of a launch vehicle equipment cabin
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作者 费红姿 黄文虎 牟全臣 《Journal of Harbin Institute of Technology(New Series)》 EI CAS 2002年第1期91-94,共4页
First, discusses some conventional modal correlation evaluation methods. And then, introduces the concepts of global modes and local modes to solve difficulties in analyzing large and complex structures with dense mod... First, discusses some conventional modal correlation evaluation methods. And then, introduces the concepts of global modes and local modes to solve difficulties in analyzing large and complex structures with dense modes like the equipment cabin, establishes a criterion with the ratio of modal strain energy to conveniently distinguish these modes. Finally, investigates the methods of modal vector reduction, error localization and model updating used to achieve a high correlation between the tested and calculated modes of the cabin, and verifies the finite element model of the equipment cabin as a foundation for further design and analysis. 展开更多
关键词 MODAL CORRELATION global modeS local modeS MODAL vector reduction ERROR localization model updating
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Derivation of Reliability Index Vector Formula for Series System and Its Application
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作者 康海贵 张晶 +1 位作者 孙英伟 郭伟 《China Ocean Engineering》 SCIE EI CSCD 2013年第2期159-168,共10页
In this study, a reliability index vector formula is proposed for series system with two failure modes in term of the concept of reliability index vector and equivalent failure modes. Firstly, the reliability index ve... In this study, a reliability index vector formula is proposed for series system with two failure modes in term of the concept of reliability index vector and equivalent failure modes. Firstly, the reliability index vector is introduced to determine the correlation coefficient between two failure modes, and then, the reliability index vector of a series system can be obtained. Several numerical cases and an analysis on offshore platform are performed, and the results show that this scheme provided here has better computational accuracy, and its calculation process is simpler for the series systems reliability calculations compared with the other methods. Also this scheme is more convenient for the engineering applications. 展开更多
关键词 reliability index vector series system equivalent failure mode correlation coefficient
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Casing life prediction using Borda and support vector machine methods 被引量:4
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作者 Xu Zhiqian Yan Xiangzhen Yang Xiujuan 《Petroleum Science》 SCIE CAS CSCD 2010年第3期416-421,共6页
Eight casing failure modes and 32 risk factors in oil and gas wells are given in this paper. According to the quantitative analysis of the influence degree and occurrence probability of risk factors, the Borda counts ... Eight casing failure modes and 32 risk factors in oil and gas wells are given in this paper. According to the quantitative analysis of the influence degree and occurrence probability of risk factors, the Borda counts for failure modes are obtained with the Borda method. The risk indexes of failure modes are derived from the Borda matrix. Based on the support vector machine (SVM), a casing life prediction model is established. In the prediction model, eight risk indexes are defined as input vectors and casing life is defined as the output vector. The ideal model parameters are determined with the training set from 19 wells with casing failure. The casing life prediction software is developed with the SVM model as a predictor. The residual life of 60 wells with casing failure is predicted with the software, and then compared with the actual casing life. The comparison results show that the casing life prediction software with the SVM model has high accuracy. 展开更多
关键词 Support vector machine method Borda method life prediction model failure modes RISKFACTORS
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Structural Damage Detection with Damage InductionVector and Best Achievable Vector
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作者 赵琪 周哲玮 《Advances in Manufacturing》 SCIE CAS 1997年第3期214-220,共7页
This paper presents a new method using the damage induction vector (DIV) and the best achievable vector (BAV) by which the change of modes due to structural damage can be applied to detcrnlinc the location and scale o... This paper presents a new method using the damage induction vector (DIV) and the best achievable vector (BAV) by which the change of modes due to structural damage can be applied to detcrnlinc the location and scale of damage in structures. By the DIV, undamagc elements can be castly identified and the damage detection can be limited to a few domains of the structure. The structural damage is located by conlputing the Euclidean distance betwcen the DIV and its BAV. The loss of both stiffness and mass properties can be located and quantified.The characteristic of this method is less calculation and there is no limitation of damage scale. Finally, the effectiveness of the method is demonstrated by detecting the damages of the shallow arches. 展开更多
关键词 structural damage detection mode analysis damage induction vector best achievablc vector
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