Page 81 - 《应用声学》2021年第3期
P. 81

第 40 卷 第 3 期             张帅等: 时间反演聚焦经颅磁声电刺激仿真与实验研究                                          399


              [3] Tufail Y, Matyushov A, Baldwin N, et al. Transcranial  43(4): 655–664.
                 pulsed ultrasound stimulates intact brain circuits[J]. Neu-  Gao Xiang, Li Jian, Shi Fangfang, et al. A hybrid method
                 ron, 2010, 66(5): 681–694.                        of time reversal and reverse time migration for sound field
              [4] Norton S J. Can ultrasound be used to stimulate nerve  analysis of target detection and localization in layered me-
                 tissue?[J] Biomedical Engineering Online, 2003, 2(1): 6.  dia[J]. Acta Acustica, 2018, 43(4): 655–664.
              [5] 杨少华. 一种基于磁声耦合的神经电流检测和无创刺激方                    [16] Qiao S, Elbes D, Boubriak O, et al. Delivering focused ul-
                 法 [D]. 杭州: 浙江大学, 2006.                            trasound to intervertebral discs using time-reversal[J]. Ul-
              [6] 李慧雨, 周晓青, 张顺起, 等. 基于声磁耦合效应的聚焦电刺                  trasound in Medicine & Biology, 2019, 45(9): 2405–2416.
                 激方法的初探 [J]. 生物医学工程研究, 2015, 34(4): 201–206.    [17] Kosmas P, Rappaport C M. Time reversal with the FDTD
                 Li Huiyu, Zhou Xiaoqing, Zhang Shunqi, et al. Prelimi-  method for microwave breast cancer detection[J]. IEEE
                 nary exploration of focused electrical stimulation methods  Transactions on Microwave Theory and Techniques, 2005,
                 based on acousto-magnetic coupling effect[J]. Biomedical  53(7): 2317–2323.
                 Engineering Research, 2015, 34(4): 201–206.    [18] 苏畅, 彭哲凡, 林伟军. 基于虚拟源时间反转的经颅超声精确
              [7] Yuan Y, Chen Y D, Li X L. A new brain stimula-   聚焦 [J]. 应用声学, 2016, 35(5): 377–383.
                 tion method: noninvasive transcranial magneto-acoustical
                                                                   Su Chang, Peng Zhefan, Lin Weijun. Precise focusing of
                 stimulation[J]. Chinese Physics B, 2016, 25(8): 084301.
                                                                   transcranial ultrasound based on virtual source time rever-
              [8] 刘世坤, 张鑫山, 周晓青, 等. 经颅磁声耦合电刺激技术应用于
                                                                   sal[J]. Journal of Applied Acoustics, 2016, 35(5): 377–383.
                 小鼠的实验研究 [J]. 生物医学工程研究, 2018, 37(1): 11–15.
                                                                [19] Wang X D, Lin W J, Su C, et al. Influence of mode con-
                 Liu Shikun, Zhang Xinshan, Zhou Xiaoqing, et al. Ex-
                                                                   versions in the skull on transcranial focused ultrasound
                 perimental study of transcranial magnetic-acoustic cou-
                                                                   and temperature fields utilizing the wave field separation
                 pling electrical stimulation technology applied to mice[J].
                                                                   method: a numerical study project supported by the na-
                 Biomedical Engineering Research, 2018, 37(1): 11–15.
                                                                   tional natural science foundation of China (Grant Nos.
              [9] 张帅, 周振宇. 经颅磁声电刺激感应电场聚焦度评价方法 [J].
                                                                   81527901, 11604361, and 91630309) [J]. Chinese Physics
                 北京理工大学学报, 2019, 39(18): 97–101.
                                                                   B, 2018, 27(2): 024302.
                 Zhang Shuai, Zhou Zhenyu. Transcranial magnetic acous-
                                                                [20] 彭哲凡, 林伟军, 苏畅, 等. 时间反转方法用于高强度聚焦超
                 tic electrical stimulation induced electric field focusing de-
                                                                   声的焦点偏移补偿 [J]. 声学学报, 2017, 42(3): 297–304.
                 gree evaluation method[J]. Journal of Beijing Institute of
                                                                   Peng Zhefan, Lin Weijun, Su Chang, et al. Time reversal
                 Technology, 2019, 39(18): 97–101.
                                                                   method for focus offset compensation of high-intensity fo-
             [10] 张帅, 崔琨, 史勋, 等. 经颅磁声电刺激参数对神经元放电模
                                                                   cused ultrasound[J]. Acta Acustica, 2017, 42(3): 297–304.
                 式的影响分析 [J]. 电工技术学报, 2019, 34(18): 3741–3749.
                                                                [21] Jung I J, Ih J G. Compensation of inherent bias errors
                 Zhang Shuai, Cui Kun, Shi Xun, et al. Analysis of the
                                                                   in using the three-dimensional acoustic intensimetry for
                 influence of transcranial magnetoacoustic electrical stim-
                                                                   sound source localization[J]. Journal of Sound and Vibra-
                 ulation parameters on neuron firing patterns[J]. Journal
                                                                   tion, 2019, 461: 114918.
                 of Electrotechnical Engineering, 2019, 34(18): 3741–3749.
                                                                [22] Panczykowski D M, Monaco E A, Friedlander R M. Tran-
             [11] Ferri M, Bravo J M, Redondo J, et al.  Enhanced
                                                                   scranial focused ultrasound modulates the activity of pri-
                 numerical method for the design of 3-D-printed holo-
                                                                   mary somatosensory cortex in humans[J]. Neurosurgery,
                 graphic acoustic lenses for aberration correction of single-
                                                                   2014, 74(6): 8.
                 element transcranial focused ultrasound[J]. Ultrasound in
                                                                [23] Blackmore J, Shrivastava S, Sallet J, et al. Ultrasound
                 Medicine & Biology, 2018, 45(3): 867–884.
             [12] Robertson J L B, Cox B T, Jaros J, et al. Accurate simula-  Neuromodulation: a review of results, mechanisms and
                 tion of transcranial ultrasound propagation for ultrasonic  safety[J]. Ultrasound in Medicine & Biology, 2019, 45(7):
                 neuromodulation and stimulation[J]. The Journal of the  1509–1536.
                 Acoustical Society of America, 2017, 141(3): 1726–1738.  [24] Ruffini G, Fox M D, Ripolles O, et al. Optimization of
             [13] Yuldashev P V, Khokhlova V A. Simulation of three di-  multifocal transcranial current stimulation for weighted
                 mensional nonlinear fields of ultrasound therapeutic ar-  cortical pattern targeting from realistic modeling of elec-
                 rays[J]. Acoustical Physics, 2011, 57(3): 334–343.  tric fields[J]. Neuroimage, 2014, 89: 216–225.
             [14] Fink M, Prada C, Wu F, et al. Self focusing in inho-  [25] Qian X W, Wang Z B, Zhao X. Model and optimization
                 mogeneous media with time reversal acoustic mirrors[C].  of ultrasonic phased array parameters[J]. Journal of Mea-
                 IEEE 1989 Proceedings on Ultrasonics Symposium, 1989:  surement Science & Instrumentation, 2016, 7(2): 115–122.
                 681–686                                        [26] Jing Y, Meral F C, Clement G T. Time-reversal transcra-
             [15] 高翔, 李鉴, 师芳芳, 等. 时间反转和逆时偏移混合法用于                   nial ultrasound beam focusing using a k-space method[J].
                 层状介质中目标检测和定位的声场分析 [J]. 声学学报, 2018,                Physics in Medicine & Biology, 2012, 57(4): 901–917.
   76   77   78   79   80   81   82   83   84   85   86