高模态密度结构的宽频振动分析问题是声振分析领域内关注的重点问题之一,可实现宽频振动预测的数值分析方法是该领域内重要的研究内容,有效的宽频振动数值分析方法应在低频至高频域可同时提供精准的数值解。然而,由于明显的耗散误差和...高模态密度结构的宽频振动分析问题是声振分析领域内关注的重点问题之一,可实现宽频振动预测的数值分析方法是该领域内重要的研究内容,有效的宽频振动数值分析方法应在低频至高频域可同时提供精准的数值解。然而,由于明显的耗散误差和计算成本过高导致传统有限元方法(traditional finite element method,TFEM)在对高模态密度结构进行宽频振动分析时,难以在高频域提供精准的数值解,致使无法实现有效的宽频振动分析。而小波有限元分析方法(wavelet finite element method,WFEM)在进行结构分析时具有潜在的求解效率优势,并且可大幅度降低耗散误差带来的影响。为此,本文首先构造了基于小波有限元理论进行宽频振动分析时的自耦合算法,并据此介绍了小波有限元方法对高模态密度结构进行宽频振动分析的架构,形成了宽频小波有限元分析方法(wide wavelet finite element method,WWFEM)。随后,采用数值分析研究方法,基于WWFEM对具有解析解的高模态密度薄板结构进行了宽频振动分析。最后,采用实验分析研究方法,预测了高模态密度结构在宽频域内的振动响应。在此基础上,对比分析了小波有限元方法在进行高频振动分析时的收敛性和宽频振动分析的有效性等。可为依据小波有限元分析方法解决圆柱壳、曲壳等高模态密度结构宽频振动分析问题提供理论参考。展开更多
Due to the strong electromagnetic interferences and human interference,traditional electromagnetic methods cannot obtain high quality resistivity data of mineral deposits in Chinese mines.The wide field electromagneti...Due to the strong electromagnetic interferences and human interference,traditional electromagnetic methods cannot obtain high quality resistivity data of mineral deposits in Chinese mines.The wide field electromagnetic method(WFEM),in which the pseudo-random signal is taken as the transmitter source,can extract high quality resistivity data in areas with sever interference by only measuring the electric field component.We use the WFEM to extract the resistivity information of the Dongguashan mine in southeast China.Compared with the audio magnetotelluric(AMT)method,and the controlled source audio-frequency magnetotelluric(CSAMT) method,the WFEM can obtain data with higher quality and simpler operations.The inversion results indicate that the WFEM can accurately identify the location of the main ore-body,which can be used for deep mine exploration in areas with strong interference.展开更多
To make three-dimensional electromagnetic exploration achievable,the distributed wide field electromagnetic method(WFEM)based on the high-order 2^(n) sequence pseudo-random signal is proposed and realized.In this meth...To make three-dimensional electromagnetic exploration achievable,the distributed wide field electromagnetic method(WFEM)based on the high-order 2^(n) sequence pseudo-random signal is proposed and realized.In this method,only one set of high-order pseudo-random waveforms,which contains all target frequencies,is needed.Based on high-order sequence pseudo-random signal construction algorithm,the waveform can be customized according to different exploration tasks.And the receivers are independent with each other and dynamically adjust the acquisition parameters according to different requirements.A field test in the deep iron ore of Qihe−Yucheng showed that the distributed WFEM based on high-order pseudo-random signal realizes the high-efficiency acquisition of massive electromagnetic data in quite a short time.Compared with traditional controlled-source electromagnetic methods,the distributed WFEM is much more efficient.Distributed WFEM can be applied to the large scale and high-resolution exploration for deep resources and minerals.展开更多
文摘高模态密度结构的宽频振动分析问题是声振分析领域内关注的重点问题之一,可实现宽频振动预测的数值分析方法是该领域内重要的研究内容,有效的宽频振动数值分析方法应在低频至高频域可同时提供精准的数值解。然而,由于明显的耗散误差和计算成本过高导致传统有限元方法(traditional finite element method,TFEM)在对高模态密度结构进行宽频振动分析时,难以在高频域提供精准的数值解,致使无法实现有效的宽频振动分析。而小波有限元分析方法(wavelet finite element method,WFEM)在进行结构分析时具有潜在的求解效率优势,并且可大幅度降低耗散误差带来的影响。为此,本文首先构造了基于小波有限元理论进行宽频振动分析时的自耦合算法,并据此介绍了小波有限元方法对高模态密度结构进行宽频振动分析的架构,形成了宽频小波有限元分析方法(wide wavelet finite element method,WWFEM)。随后,采用数值分析研究方法,基于WWFEM对具有解析解的高模态密度薄板结构进行了宽频振动分析。最后,采用实验分析研究方法,预测了高模态密度结构在宽频域内的振动响应。在此基础上,对比分析了小波有限元方法在进行高频振动分析时的收敛性和宽频振动分析的有效性等。可为依据小波有限元分析方法解决圆柱壳、曲壳等高模态密度结构宽频振动分析问题提供理论参考。
基金Project(2018YFC0807802)supported by the National Key R&D Program of ChinaProject(41874081)supported by the National Natural Science Foundation of China
文摘Due to the strong electromagnetic interferences and human interference,traditional electromagnetic methods cannot obtain high quality resistivity data of mineral deposits in Chinese mines.The wide field electromagnetic method(WFEM),in which the pseudo-random signal is taken as the transmitter source,can extract high quality resistivity data in areas with sever interference by only measuring the electric field component.We use the WFEM to extract the resistivity information of the Dongguashan mine in southeast China.Compared with the audio magnetotelluric(AMT)method,and the controlled source audio-frequency magnetotelluric(CSAMT) method,the WFEM can obtain data with higher quality and simpler operations.The inversion results indicate that the WFEM can accurately identify the location of the main ore-body,which can be used for deep mine exploration in areas with strong interference.
基金funded by the National Natural Science Foundation of China(No.42004056)the Natural Science Foundation of Shangdong Province,China(No.ZR2020QD052)China Postdoctoral Science Foundation(No.2019M652386)。
文摘To make three-dimensional electromagnetic exploration achievable,the distributed wide field electromagnetic method(WFEM)based on the high-order 2^(n) sequence pseudo-random signal is proposed and realized.In this method,only one set of high-order pseudo-random waveforms,which contains all target frequencies,is needed.Based on high-order sequence pseudo-random signal construction algorithm,the waveform can be customized according to different exploration tasks.And the receivers are independent with each other and dynamically adjust the acquisition parameters according to different requirements.A field test in the deep iron ore of Qihe−Yucheng showed that the distributed WFEM based on high-order pseudo-random signal realizes the high-efficiency acquisition of massive electromagnetic data in quite a short time.Compared with traditional controlled-source electromagnetic methods,the distributed WFEM is much more efficient.Distributed WFEM can be applied to the large scale and high-resolution exploration for deep resources and minerals.