Application of Integrated Geophysical Methods for Site Suitability of Research Infrastructures (RIs) in China
Abstract
:1. Introduction
2. RIs Requirements and Approaches
3. Geological Conditions
4. Methods
4.1. Geophysical Surveys
4.2. Site Suitability Evaluation Based on Multi-Factors
5. Results and Discussion
5.1. DBNL Site
5.2. CSNS Site
6. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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No | Name | Geological Characteristics | Location | Site Selection Periods | Investigation Result | Evaluation Result | Construction Period and Operation Result | Ref. |
---|---|---|---|---|---|---|---|---|
1 | Daya Bay Neutrino Laboratory (DBNL) | Granite tunnel and hall | Daya Bay, Shenzhen | 2005–2006 | South limb of Paiyashan syncline, granite contact with Devonian sandstones. Four weathering troughs, 3 faults | Site suitability | 2007–2011, 2013; innovative scientific outcomes | [16] |
2 | Jiangmen Underground Neutrino Observatory (JUNO) | Sandstone inclined shaft, granite shaft, and hall | Kaiping, Jiangmen | 2011–2013 | Granite contact with sandstone having complex fold | Site suitability | 2014–2020, under construction | [17] et al. |
3 | China Spallation Neutron Source (CSNS) | Buried tunnel and basement in compound gneiss and granite | Dalang, Dong’guan | 2006–2009 | Weathering profile with 50 m thickness troughs, and 4 faults | Site suitability | 2010–2016, in operation | [10,17] |
4 | High Energy Photon Source Test Facility (HEPS) | Buried tunnel and basement in sandy gravel layer | Huairou, Beijing | 2011–2017 | 300m sandy gravels over granite and fractured pyroclastic rocks in west of Gaoliying active fault | Site foundation (medium complex) | Abandoned due to granite margin, afterward, a site was selected 5 km north ward with larger area of granite in 2018, currently under construction | [17,18] |
5-1 | High Altitude Cosmic Ray Observatory (LHAASO) | Mudstone, limestone basement, and slope | Zhongdian, Yun’nan | 2013 | Over 118 sinkholes, 12 water-accumulating depressions, landslides and sand slopes, 4 uphill routes | unsuitable | Abandoned due to karst development | [18] |
5-2 | High Altitude Cosmic Ray Observatory (LHAASO) | Granite basement and slope | Daocheng, Sichuan | 2013–2014 | Glacier remnants of plateau ice cap, riverside beach | Medium suitable | 2016, currently under construction | [17] |
6-1 | High-Intensity Accelerator Facility (HIAF) and Accelerator Driven System (ADS) | Sandstone basement and slope | Dongsheng, Inner Mongolia | 2012 | Strong permeability of rock mass, storage of surface flood | unsuitable | To consider other places, including Shandong, Jiangsu, and Guangdong | [17] |
6-2 | High-Intensity Accelerator Facility (HIAF) and Accelerator Driven System (ADS) | Dacite, Pyroclastic rocks basement, and slope | Huizhou, Guangdong | 2014 | Strong permeability of rock mass and 40m weathering profile | Medium suitable | Under construction | [19] |
7 | Circular Electron-Positron Collider (CPEC) | Granite tunnel | Zhangjiakou, Chengde, qinghuangdao, Guangdong | 2013–present | Soft Foundation, Uneven Settlement and Moving Head Treatment | Funing granite in Qinhuangdao, Huizhou granite | Site selection | [17] |
8 | Five-hundred meters Aperture Spherical Telescope (FAST) | Limestone basement | Pingtang, Guizhou | 2006–2007 | Karst depression with a diameter of 500 m | Basement stability and runoff discharge | 2008–2013, in operation | [20] |
9 | Jinping underground laboratory(CJPL) | Marble tunnel | Jinping, Sichuan | 2008 | High geostress and rock burst | 2400 m deep incomplete marble | 2009–2010, in operation | [9] |
Phase | Name | Evaluation | Objectives | Main Problems |
---|---|---|---|---|
1 | Site selection | Suitability | Geological model | Discontinuity |
2 | Plan and design | Feasibility | Parameters | Discrete layers |
3 | Construction | Disturbance | Materials | Unfavorable geological body |
4 | Operation | Reliability | Rebalance | Complex site evolution |
Lab Hall | Bottom/Surface Elevation (m) | Buried Thickness (m) | Point Distance-DaYa/Left Central Point (m) | Line Distance-LingAo/Left Central Point (m) | Drilling Depth (m) |
---|---|---|---|---|---|
West | −23.00/88 | 121 | 361.071/E41 | — | ZK4 133 |
Central | −20.57/198 | 218 | 1155.604 | 871.340 | ZK2 210.6 |
East | −19.17/98 | 117 | — | 445.35/W52 | ZK3 130.3 |
Far | −17.87/347 | 364 | 1985.697 | 1598.572 | ZK1 213.1 |
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Shang, Y.-J.; Yang, C.-G.; Jin, W.-J.; Chen, Y.-W.; Hasan, M.; Wang, Y.; Li, K.; Lin, D.-M.; Zhou, M. Application of Integrated Geophysical Methods for Site Suitability of Research Infrastructures (RIs) in China. Appl. Sci. 2021, 11, 8666. https://doi.org/10.3390/app11188666
Shang Y-J, Yang C-G, Jin W-J, Chen Y-W, Hasan M, Wang Y, Li K, Lin D-M, Zhou M. Application of Integrated Geophysical Methods for Site Suitability of Research Infrastructures (RIs) in China. Applied Sciences. 2021; 11(18):8666. https://doi.org/10.3390/app11188666
Chicago/Turabian StyleShang, Yan-Jun, Chang-Gen Yang, Wei-Jun Jin, Yan-Wei Chen, Muhammad Hasan, Yue Wang, Kun Li, Da-Ming Lin, and Min Zhou. 2021. "Application of Integrated Geophysical Methods for Site Suitability of Research Infrastructures (RIs) in China" Applied Sciences 11, no. 18: 8666. https://doi.org/10.3390/app11188666
APA StyleShang, Y. -J., Yang, C. -G., Jin, W. -J., Chen, Y. -W., Hasan, M., Wang, Y., Li, K., Lin, D. -M., & Zhou, M. (2021). Application of Integrated Geophysical Methods for Site Suitability of Research Infrastructures (RIs) in China. Applied Sciences, 11(18), 8666. https://doi.org/10.3390/app11188666