Key Issues and Research Progress on the Deterioration Processes and Protection Technology of Earthen Sites under Multi-Field Coupling
Abstract
:1. Introduction
2. The Characteristics of Building Materials, the Occurrence Environment of Earthen Sites, and Existing Protection Problems
2.1. The Poor Strength of Building Materials and Various Building Technologies
2.2. Various Occurrence Environments and Complex Deterioration Types
2.3. Imperfect Protective Technology System and Unbalanced Development in the North and the South Regions
2.4. Unsystematic Protection Quality Control and Insufficient Evaluation Equipment
2.5. Uncoordinated Development of Management, Protection and Utilization
3. Key Scientific Technology Issues of Earthen Site Protection under Multi-Field Coupling
3.1. Relationship between Deterioration and Occurrence Environment of Earthen Sites
3.2. The Mechanism of Surface Weathering and the Structural Instability of Earthen Sites
3.3. The Preventing and Controlling Technologies for Surface Weathering and Structural Instability of Earthen Sites
3.4. Water Transport Mechanism and Prevention and Control Techniques
3.5. Quality Control in the Protection Process and Evaluation Technology of Reinforcement Effects
3.6. Comprehensive Protection Technologies under Synergistic Effects
4. Construction of Research Ideas for Earthen Site Protection under Multi-Field Coupling
4.1. Research on Regional Characteristics and Occurrence Relationship of Earthen Site Deterioration
4.1.1. The Classification of Regional Occurrence Environment
4.1.2. Research on the Relationship between Earthen Site Construction Technology and Regional Occurrence Environment
4.1.3. Research on the Relationship between Deterioration Chains and Regional Occurrence Environments
4.2. Research on Weathering Mechanisms and Prevention Technologies
4.2.1. Weathering Mechanism of Earthen Sites in Multi-Field Coupling
4.2.2. Comprehensive Anti-Weathering Technologies for Earthen Sites
4.2.3. Applicability and Durability of Anti-Weathering Technology
4.3. Study on Structural Instability Mechanism and Preventive Control Technology of Earthen Sites under Static and Dynamic Loads
4.3.1. Study on Response Mechanism and Stability Evaluation Method of Earthen Sites under Static and Dynamic Loading
4.3.2. Research on the Technology of Structural Stability Control under Dynamic Loads
4.3.3. Applicability and Durability of Structural Stability Control Technology
4.4. Research on the Damage Mechanism of Water Transport and Prevention and Control Technology
4.4.1. Research on the Damage Mechanism of Water Transport
4.4.2. Prevention and Control Technology of Water Damage
4.5. Research on Equipment Development and Evaluation Methods of Quality Control of the Protection Process
4.5.1. Quality Control and Effect Evaluation of Anchorage Grouting
4.5.2. Quality Control and Effect Evaluation of Roof-Propping Reinforcement
4.5.3. Quality Control and Effect Evaluation in the Anti-Weathering Reinforcement Process
4.5.4. Quality Control Equipment and Effect Evaluation Equipment for the Reinforcement Process
4.6. Study on Synergistic Mechanisms of Comprehensive Protection Measures for Earthen Sites
5. Discussion and Outlook
6. Conclusions
- Based on the compilation of the national earthen site list, combined with the research results of climatology and geology, the regional occurrence environment of earthen sites should be divided, and the classification standard of earthen sites and the classification standard system of earthen site deterioration should be clarified to construct and illustrate the relationship between site construction technology, deterioration development, and the regional occurrence environment.
- Based on the multi-field coupling of climate environment, groundwater, and earthquake loads, the degradation mechanism of earthen sites should be researched to reveal the surface weathering mechanism of earthen sites in different environments and processed by different building technologies to build stable evaluation methods and structural damage mechanisms for earthen sites under static and dynamic loads, and to reveal the water transport and damage mechanisms under rainfall and groundwater.
- The technologies of surface weathering prevention, structure stability control, and the prevention and control of water damage should be researched and developed, which is applicable to different environments and technology types of earthen sites. The quality control index system in the protection process should be built, the applicability and durability of different protection measures should be clarified, and a complete set of quality assessment equipment and methods for earthen site protection should be developed.
- Based on the outstanding universal value in earthen sites, under the synergistic effect of management, prevention, intervention, and utilization, the comprehensive protection technology system of earthen sites in China should be established, including the protection and reinforcement technology system of earthen sites in arid environments, technical systems for the protection and reinforcement of large open-air earthen sites, and archaeological sections in wet and damp environments.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
- Jinping, X.I. Construction with Chinese Characteristics of Chinese Style of Archaeology in China, Better Know the Chinese Civilization Has a Long History and Profound. QSTHEORY 2020, 23, 4–9. [Google Scholar]
- Jinping, X.I. Speech at Dunhuang Academy Panel Discussion. QSTHEORY 2020, 3, 4–7. [Google Scholar]
- Wang, X. Philosophy and Practice of Conservation of Earthen Architecture Sites: A case study of the Jiaohe Ancient Site in Xinjiang. Dunhuang Res. 2010, 6, 1–9. [Google Scholar]
- General Office of the State Council. Circular of The State Council on Approving and Announcing the Eighth Batch of Key Cultural and Historic Sites to Be Protected at the National Level; Gazette of the State Council of the People’s Republic of China: Beijing, China, 2019; pp. 9–37.
- Zhang, D.; Wang, T.; Wang, X.; Guo, Q. Laboratory Experimental Study of Infrared Imaging Technology Detecting the Conservation Effect of Ancient Earthen Sites (Jiaohe Ruins) in China. Eng. Geol. 2012, 125, 66–73. [Google Scholar] [CrossRef]
- Claudia, N.; Cancino, B. Damage Assessment of Historic Earthen Sites after the 2007 Earthquake in Peru. Adv. Mater. Res. 2010, 133–134, 665–670. [Google Scholar] [CrossRef]
- Percy, K.; Ouimet, C.; Ward, S.; Quintero, M.S.; Cancino, C.; Wong, L.; Marcus, B.; Whittaker, S.; Boussalh, M. Documentation for emergency condition mapping of Decorated historic surfaces at the Caid Residence, the Kasbah of Taourirt (Ouarzazate, Morocco). ISPRS Ann. Photogramm. Remote Sens. Spat. Inf. Sci. 2015, II-5/W3, 229–234. [Google Scholar] [CrossRef] [Green Version]
- Correia, M.; Carlos, G.; Rocha, S. Vernacular Heritage and Earthen Architecture; CRC Press: Boca Raton, FL, USA, 2013. [Google Scholar]
- Neumann, J.V. The Conservation of Earthen Architectural Heritage in Seismic Areas. Adv. Mater. Res. 2010, 133–134, 65–77. [Google Scholar] [CrossRef] [Green Version]
- Neumann, J.V.; Blondet, M.; Iwaki, C. The Intervention of Earthen Heritage in Seismic Areas and the Con-servation Charters. Adv. Mater. Res. 2010, 988, 727–734. [Google Scholar] [CrossRef]
- Viles, H.A.; Wood, C. Green Walls?: Integrated Laboratory and Field Testing of the Effectiveness of Soft Wall Capping in Conserving Ruins. Geol. Soc. Lond. Spéc. Publ. 2007, 271, 309–322. [Google Scholar] [CrossRef]
- Takayasu, K. An Introduction to the Conservation Science of Archaeological Relics; National Research Institute for Cultural Properties: Nara, Japan, 2004; p. 18. [Google Scholar]
- Li, Z.; Wang, X. New Progress in Protection and Reinforcement of Ancient Earth Building Sites. Dunhuang Res. 1997, 4, 169–174. [Google Scholar]
- Li, F.; Wang, X.; Yang, S.; Guo, Q.; Lin, B.; Zhang, B. An Evaluation of the Effectiveness of Salt Extraction by Poulticing at Earthen Sites Based Ratios of Desalination Materials. Dunhuang Res. 2015, 6, 107–113. [Google Scholar]
- Pei, Q.; Wang, X.; Guo, Q.; Zhang, B.; Zhao, G.; Zhao, J. Laboratory Test of Deformation Mechanism of Rammed Roof-propping Reinforcement at Earthen Heritage Sites in Arid Environment. Rock Soil Mech. 2018, 39, 2755–2764. [Google Scholar]
- Wang, X.-D.; Pei, Q.-Q.; Guo, Q.-L.; Li, Z.-P.; Wang, Y.-W.; Zhao, J.-Z. Stress Mechanism for the Rammed Layer Interfaces of Earthen Heritage Sites with Different Treatments. J. Cult. Heritage 2019, 39, 110–119. [Google Scholar] [CrossRef]
- Pei, Q.; Zhang, B.; Shang, D.; Guo, Q.; Huang, J.; Zhu, J. Characteristics of Temperature Field of Rammed Earth Wall in Arid Environment. Coatings 2022, 12, 735. [Google Scholar] [CrossRef]
- Wang, N.; Zhang, J.; Wang, Y.; Zhang, H.; Ma, Y.; Zhao, L.; Guo, Q. Experimental Study on Mechanical Properties of Grout–Soil Interface in Anchor System of Rammed Earthen Sites. Int. J. Géoméch. 2020, 20. [Google Scholar] [CrossRef]
- Zhang, J.; Chen, W.; Li, Z.; Wang, X.; Guo, Q.; Wang, N. Study on Workability and Durability of Calcined Ginger Nuts-Based Grouts Used in Anchoring Conservation of Earthen Sites. J. Cult. Heritage 2015, 16, 831–837. [Google Scholar] [CrossRef]
- Zhang, J.; Wang, N.; Fan, M.; Li, Z.; Zhao, L. Experimental Study on Age Properties of Fissure Grouting Material Composed of Calcined Ginger Nuts and Earthen Site Soil. Chin. J. Rock Mech. Eng. 2018, 37, 220–229. [Google Scholar]
- Sun, M.; Li, Z.; Wang, X.; Zhang, J.; Gao, Y. Study of Grouting Techniques for Repairing the Cranny of the Stacking Mud Wall of Jiaohe Ruins. Sci. Conserv. Archaeol. 2013, 1, 1–5. [Google Scholar]
- Wang, X.; Zhang, B.; Pei, Q.; Guo, Q.; Chen, W.; Li, F. Experimental Studies on Sacrificial Layer in Conservation of Earthen Sites. J. Cult. Herit. 2020, 41, 74–83. [Google Scholar] [CrossRef]
- Wang, N.; Zhang, J.; Huang, J.; Chen, P.; Sun, M. Evaluation on the Long-Term Stability of the Simulated Archaeological Tests of Pre-Historic Earthen Sites in Humid Environment. Dunhuang Res. 2018, 4, 124–130. [Google Scholar]
- Li, L.; Chen, R.; Shao, M.; Pei, Q.; Wu, H.; Wang, S.; Li, Z. Saturation Strength of Earthen Ruins Reinforced by Potassium Silicate and Influence of Environmental Factors on Reinforcement Effect. Chin. J. Rock Mech. Eng. 2009, 28, 1074–1080. [Google Scholar]
- Zhang, J.K.; Zhang, L.X.; Zhao, L.Y.; Liu, D.; Guo, Q.L.; Pei, Q.Q. Property Changes of Anchor Grout Calcined Ginger Nuts Admixed with Fly Ash and Quartz Sand after Accelerated Ageing Tests. J. Cent. South Univ. 2019, 26, 3114–3125. [Google Scholar] [CrossRef]
- Chen, W.; Li, L.; Li, Z.; Zhao, L.; Shao, M.; Afolagboye, L.O. Modification of traditional Chinese ginger nut and its mechanical behavior. Constr. Build. Mater. 2017, 144, 138–146. [Google Scholar] [CrossRef]
- Li, Z.; Zhao, L.; Li, L.; Wang, J. Research on the Modification of Two Traditional Building Materials in Ancient China. Herit. Sci. 2013, 1, 27. [Google Scholar]
- Zhang, Q.; Chen, W.; Yuan, P. Experimental Study on Impregnation and Consolidation Effects of Modified Pol-Yvinyl Alcohol Solution for Coarse-Grained Soils: A Case Study on the Subashi Buddhist Temple Ruins of China. Bull. Eng. Geol. Environ. 2020, 79, 1487–1500. [Google Scholar] [CrossRef]
- Wei, G.; Zhang, B.; Yang, F.; Chen, B.; Wang, X. Consolidation of Historical Earthen Sites under Moisture Circumstance Using Calcium-based Hydraulic Consolidant. Rock Soil Mech. 2012, 33, 702–712. [Google Scholar]
- Sun, M.; Wang, X.; Li, Z.; Liang, S.; Zhang, L. Technology of Protection and Reinforcement for Observation Platform in Ruins of Jiaohe. Rock Soil Mech. 2007, 28, 163–168. [Google Scholar]
- Zhou, S.; Yuan, S. Silicone Modified Non-Aqueous Dispersion of Acrylic latex; its Preparation and Test on its Ability of Anti-weathering on Earthen Archaeological site. Sci. Conserv. Archaeol. 2004, 16, 50–52. [Google Scholar]
- Pei, Q.; Guo, Q.; Wang, X.; Zhao, J.; Zhao, G.; Luo, J. Evolution and Characteristics of Tra-ditional Building Techniques for Earthen Architectural Sites. Sci. Conserv. Archaeol. 2019, 31, 1–13. [Google Scholar]
- Chen, W.W.; Zhang, Q.Y.; Liu, H.W.; Guo, Z.Q. Feasibility of Protecting Earthen Sites by Infiltration of Modified Polyvinyl Alcohol. Constr. Build. Mater. 2019, 204, 410–418. [Google Scholar] [CrossRef]
- Li, L.; Shao, M.; Wang, S.; Li, Z. Preservation of Earthen Heritage Sites on the Silk Road, Northwest China from the Impact of the Environment. Environ. Earth Sci. 2010, 64, 1625–1639. [Google Scholar] [CrossRef]
- Shi, Y.; Wang, X.; Li, S.; Hu, M. Seismic Hazard Prevention and Retrofitting of Soil Relics. China Earthq. Eng. J. 2013, 35, 42–50. [Google Scholar]
- Li, Q.; Zhao, S. The evolution of the Prevue of Chinese Traditional Residential Living Space. China Build. Mater. Sci. Technol. 2014, 2, 202–203. [Google Scholar]
- Pan, G. History of Chinese Architecture; China Architecture and Building Press: Beijing, China, 2000. [Google Scholar]
- Lang, S.; Xu, Y.; Shui, T. Research on late Yangshao Relics of Dadi Bay. Cult. Relics 1983, 11, 31–39. [Google Scholar]
- Chen, L. Yangshao Culture Foundation Site of Zhengzhou Dahe Village. Archaeology 1973, 6, 330–336. [Google Scholar]
- Zhang, H.; Zhao, T.; Wang, X. Ancient Chinese Geotechnical Construction Method. Dunhuang Res. 2008, 5, 81–90. [Google Scholar]
- Zhou, S.; Zhang, R.; Zhang, C. Climatology and Meteorology; Higher Education Press: Beijing, China, 1997. [Google Scholar]
- Wang, X. Exploration of Conservation Philosophy for Earthen Sites in Humid Environments and an Outlook on Future Conservation Technology. Dunhuang Res. 2013, 137, 1–6+125. [Google Scholar]
- Li, Q. Discussion on Different Protection Modes of Han Changan City Ruins. Relics Mus. 2010, 5, 79–81. [Google Scholar]
- Sun, M.; Li, Z.; Wang, X.; Chen, W. Classification of Deteriorations Associated with many Earthen Heritage Sites in Arid Areas of Northwest China. J. Eng. Geol. 2007, 15, 772–778. [Google Scholar]
- Sun, M. Research on the Plant Capping Technology Used to Protect Earthen Sites in Humid Areas. Sci. Conserv. Archaeol. 2021, 33, 125–132. [Google Scholar]
- Liu, T.; Zhao, X.; Liu, J.; Wang, K. Plant-induced Diseases at an Earthen site, Using the Epang Palace Site as an Example. Sci. Conserv. Archaeol. 2019, 31, 105–110. [Google Scholar]
- Guo, Q.; Pei, Q.; Chen, W.; Sun, M.; Zhang, J.; Wang, Y.; Linyi, Z.; Yang, S. Study on Integration and Effect Evaluation of Soil Site Protection Technology in Arid Environment; Science Press: Beijing, China, 2021. [Google Scholar]
- Sun, M.; Zhang, J. Theoretical Discussion on Conservation of Cultural Heritages. J. Northwest Univ. 2022, 52, 192–198. [Google Scholar]
- Zhang, B. Try of ‘Gas Phase Humidification—Wet Protection’ at Wet Environmental Soil Sites. Res. Conserv. Caves Temples Earthen Sites 2022, 1, 80–87. [Google Scholar]
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Guo, Q.; Wang, Y.; Chen, W.; Pei, Q.; Sun, M.; Yang, S.; Zhang, J.; Du, Y. Key Issues and Research Progress on the Deterioration Processes and Protection Technology of Earthen Sites under Multi-Field Coupling. Coatings 2022, 12, 1677. https://doi.org/10.3390/coatings12111677
Guo Q, Wang Y, Chen W, Pei Q, Sun M, Yang S, Zhang J, Du Y. Key Issues and Research Progress on the Deterioration Processes and Protection Technology of Earthen Sites under Multi-Field Coupling. Coatings. 2022; 12(11):1677. https://doi.org/10.3390/coatings12111677
Chicago/Turabian StyleGuo, Qinglin, Yanwu Wang, Wenwu Chen, Qiangqiang Pei, Manli Sun, Shanlong Yang, Jingke Zhang, and Yumin Du. 2022. "Key Issues and Research Progress on the Deterioration Processes and Protection Technology of Earthen Sites under Multi-Field Coupling" Coatings 12, no. 11: 1677. https://doi.org/10.3390/coatings12111677