[1] 汪宏伟. 采用环梁加固风机基础的有限元分析 [J]. 可再生能源, 2016, 34(4): 558-562. DOI:  10.13941/j.cnki.21-1469/tk.2016.04.014.

WANG H W. Finite element analysis of the wind turbine foundation reinforced with ring beam [J]. Renewable energy resources, 2016, 34(4): 558-562. DOI:  10.13941/j.cnki.21-1469/tk.2016.04.014.
[2] 黄昊, 张秋生. 风电机组混凝土基础结构检测评估和修复加固 [M]. 北京: 中国水利水电出版社, 2021.

HUANG H, ZHANG Q S. Detection evaluation and restoration for concrete foundation of wind turbine [M]. Beijing: China Water & Power Press, 2021.
[3] 黄冬平. 风力发电塔基础环基础超声波法质量检测 [J]. 建筑结构, 2016, 46(14): 8-11. DOI:  10.19701/j.jzjg.2016.14.002.

HUANG D P. Quality detection for embedded-ring foundation of wind turbine tower using ultrasonic method [J]. Building structure, 2016, 46(14): 8-11. DOI:  10.19701/j.jzjg.2016.14.002.
[4] 郭秀芹, 杨森, 张远军. 弹性波CT技术在大体积混凝土结构无损检测中的应用 [J]. 四川理工学院学报(自然科学版), 2017, 30(4): 58-63. DOI:  10.11863/j.suse.2017.04.11.

GUO X Q, YANG S, ZHANG Y J. Elastic wave CT technology in mass concrete structure application of nondestructive testing [J]. Journal of Sichuan University of Science & Engineering (natural science edition), 2017, 30(4): 58-63. DOI:  10.11863/j.suse.2017.04.11.
[5] 王忠辉. 浅谈风机基础混凝土无损检测技术的应用 [J]. 水力发电, 2020, 46(12): 109-111,128. DOI:  10.3969/j.issn.0559-9342.2020.12.024.

WANG Z H. Application of non-destructive testing technology in wind turbine concrete foundation [J]. Water power, 2020, 46(12): 109-111,128. DOI:  10.3969/j.issn.0559-9342.2020.12.024.
[6] 朱金彪. 探地雷达在地下空洞探测中的应用 [J]. 黑龙江水利科技, 2014, 42(7): 229-230. DOI:  10.14122/j.cnki.hskj.2014.07.222.

ZHU J B. The application of ground penetrating radar in underground cavity detection [J]. Heilongjiang science and technology of water conservancy, 2014, 42(7): 229-230. DOI:  10.14122/j.cnki.hskj.2014.07.222.
[7] 中华人民共和国住房和城乡建设部. 雷达法检测混凝土结构技术标准: JGJ/T 456—2019 [S]. 北京: 中国建筑工业出版社, 2019.

Ministry of Housing and Urban-Rural Development of the People's Republic of China. Technical standard for testing of concrete structures by radar method: JGJ/T 456—2019 [S]. Beijing: China Architecture & Building Press, 2019.
[8] 刘志生. 地铁施工区段地下空洞探测及病害处理研究 [J]. 施工技术, 2019, 48(13): 104-107. DOI: 10.7672/sgjs201913 0104.

LIU Z S. Research on underground cavity detection and disease treatment in subway construction section [J]. Construction technology, 2019, 48(13): 104-107. DOI: 10.7672/sgjs201913 0104.
[9] 殷慧茹, 熊绍鑫. 地质雷达物探技术应用在高速公路建设中的意义 [J]. 科技资讯, 2022, 20(19): 93-96. DOI:  10.16661/j.cnki.1672-3791.2204-5042-1899.

YIN H R, XIONG S X. Significance of application of GPR geophysical prospecting technology in expressway construction [J]. Science & technology information, 2022, 20(19): 93-96. DOI:  10.16661/j.cnki.1672-3791.2204-5042-1899.
[10] 许德根, 杨天春, 程辉, 等. 隧道衬砌探地雷达检测数值解析及应用 [J]. 隧道建设, 2016, 36(11): 1343-1347. DOI:  10.3973/j.issn.1672-741X.2016.11.009.

XU D G, YANG T C, CHENG H, et al. Numerical simulation of ground penetrating radar detection for tunnel lining and its application [J]. Tunnel construction, 2016, 36(11): 1343-1347. DOI:  10.3973/j.issn.1672-741X.2016.11.009.
[11] 李清华. 地质雷达在铁路隧道工程钢筋钢架检测中的应用 [J]. 福建地质, 2012, 31(2): 191-195. DOI:  10.3969/j.issn.1001-3970.2012.02.013.

LI Q H. Application of the ground penetrating radar on the steel reinforcement and frame detection of a railway tunnel project [J]. Geology of Fujian, 2012, 31(2): 191-195. DOI:  10.3969/j.issn.1001-3970.2012.02.013.
[12] 韩景阳. 地质雷达在隧道衬砌质量检测中的应用 [J]. 江苏建筑, 2022(增刊1): 49-51. DOI:  10.3969/j.issn.1005-6270.2022.z1.012.

HAN J Y. Application of ground penetrating radar in the quality detection of a tunnel lining [J]. Jiangsu construction, 2022(Suppl.1): 49-51. DOI:  10.3969/j.issn.1005-6270.2022.z1.012.
[13] 陈伟. 隧道衬砌缺陷的探地雷达精确识别研究 [D]. 苏州: 苏州科技大学, 2020. DOI:  10.27748/d.cnki.gszkj.2020.000035.

CHEN W. Research on ground penetrating radar accurate identification of tunnel lining defects [D]. Suzhou: Suzhou University of Science and Technology, 2020. DOI:  10.27748/d.cnki.gszkj.2020.000035.
[14] 董茂干. 探地雷达在公路检测中的几个技术问题的研究 [D]. 石家庄: 河北地质大学, 2008.

DONG M G. Research several technology problem on applying ground penetration radar for pavement detection [D]. Shijiazhuang: Hebei GEO University, 2008.
[15] 赵柳. 基于探地雷达的道路地下空洞探测及识别技术研究 [D]. 成都: 西华大学, 2020.

ZHAO L. Study on detection and recognition technology of road underground cavity based on GPR [D]. Chengdu: Xihua University, 2020.
[16] 吴晓娜. 探地雷达在路面脱空缺陷检测中的应用 [J]. 公路交通技术, 2011, 27(1): 33-36. DOI:  10.3969/j.issn.1009-6477.2011.01.009.

WU X N. Application of ground penetrating radar in detection for cavity defects of pavement [J]. Technology of highway and transport, 2011, 27(1): 33-36. DOI:  10.3969/j.issn.1009-6477.2011.01.009.
[17] 杨刚, 韦斯, 张威. 超声横波成像技术在桥梁混凝土检测中的应用 [J]. 水利规划与设计, 2022(5): 122-125. DOI:  10.3969/j.issn.1672-2469.2022.05.026.

YANG G, WEI S, ZHANG W. Application of ultrasonic shear wave imaging technology in concrete detection of bridge [J]. Water resources planning and design, 2022(5): 122-125. DOI:  10.3969/j.issn.1672-2469.2022.05.026.
[18] 王根艳, 刘元志, 易贤仁. 某工业厂房排架柱承载力可靠性鉴定 [J]. 国外建材科技, 2007, 28(1): 85-87.

WANG G Y, LIU Y Z, YI X R. Reliability evaluation of the bearing capacity of a certain industrial factory building's truss column [J]. The world of building materials, 2007, 28(1): 85-87.
[19] 中国工程建设标准化协会. 超声法检测混凝土缺陷技术规程: CECS 21—2000 [S]. 北京: 中国城市出版社, 2001.

China Association for Engineering Construction Standardization. Technical specification for inspection of concrete defects by ultrasonic method: CECS 21—2000 [S]. Beijing: China City Press, 2001.
[20] 赵炜, 何芳, 谢云春. 风机基础预应力锚栓张拉失效原因分析及处理方案 [J]. 云南水力发电, 2020, 36(5): 74-78. DOI:  10.3969/j.issn.1006-3951.2020.05.016.

ZHAO W, HE F, XIE Y C. Failure analysis and treatment scheme of prestressed anchor bolt tension of fan foundation [J]. Yunnan water power, 2020, 36(5): 74-78. DOI:  10.3969/j.issn.1006-3951.2020.05.016.