Citation: | Yue Jianwei, Zhang Donghua, Qiu Yuying, Yang Xue, Dou Dongfang. Conservation method of relics soil based on carbonization principle[J]. GEOTECHNICAL ENGINEERING TECHNIQUE, 2025, 39(3): 437-445. doi: 10.20265/j.cnki.issn.1007-2993.2024-0125 |
[1] |
陈 毅, 张虎元, 杨 龙. 遗址土劣化进程中微观结构变化的类比研究[J]. 岩土力学,2018,39(11):4117-4124,4141. (CHEN Y, ZHANG H Y, YANG L. Analogy study on evolution of microstructure of earthen monument during natural weathering process[J]. Rock and Soil Mechanics,2018,39(11):4117-4124,4141. (in Chinese)
CHEN Y, ZHANG H Y, YANG L. Analogy study on evolution of microstructure of earthen monument during natural weathering process[J]. Rock and Soil Mechanics, 2018, 39(11): 4117-4124,4141. (in Chinese)
|
[2] |
刘 莉, 姜大伟, 于明波, 等. 千枚岩全风化土的持水特性研究[J]. 河南科技大学学报(自然科学版),2022,43(6):53-58. (LIU L, JIANG D W, YU M B, et al. Soil water retention characteristics of Phyllite completely weathered soil[J]. Journal of Henan University of Science and Technology (Natural Science),2022,43(6):53-58. (in Chinese)
LIU L, JIANG D W, YU M B, et al. Soil water retention characteristics of Phyllite completely weathered soil[J]. Journal of Henan University of Science and Technology (Natural Science), 2022, 43(6): 53-58. (in Chinese)
|
[3] |
岳建伟, 李嘉乐, 王思远, 等. 定远营遗址稳定性和微观劣化的研究[J]. 科学技术与工程,2021,21(10):4159-4166. (YUE J W, LI J L, WANG S Y, et al. The stability and micro deterioration of Dingyuanying ruins[J]. Science Technology and Engineering,2021,21(10):4159-4166. (in Chinese) doi: 10.3969/j.issn.1671-1815.2021.10.043
YUE J W, LI J L, WANG S Y, et al. The stability and micro deterioration of Dingyuanying ruins[J]. Science Technology and Engineering, 2021, 21(10): 4159-4166. (in Chinese) doi: 10.3969/j.issn.1671-1815.2021.10.043
|
[4] |
任克彬, 王 博, 李新明, 等. 低应力水平下土遗址力学特性的干湿循环效应[J]. 岩石力学与工程学报,2019,38(2):376-385. (REN K B, WANG B, LI X M, et al. Effect of dry-wet cycles on the mechanical properties of earthen archaeological site under low stresses[J]. Chinese Journal of Rock Mechanics and Engineering,2019,38(2):376-385. (in Chinese)
REN K B, WANG B, LI X M, et al. Effect of dry-wet cycles on the mechanical properties of earthen archaeological site under low stresses[J]. Chinese Journal of Rock Mechanics and Engineering, 2019, 38(2): 376-385. (in Chinese)
|
[5] |
袁志辉, 唐 春, 杨普济, 等. 干湿循环下原状黄土抗压强度试验研究[J]. 工程地质学报,2018,26(S1):155-161. (YUAN Z H, TANG C, YANG P J, et al. Experimental studies of compressive strength of undisturbed loess in drying-wetting cycle[J]. Journal of Engineering Geology,2018,26(S1):155-161. (in Chinese)
YUAN Z H, TANG C, YANG P J, et al. Experimental studies of compressive strength of undisturbed loess in drying-wetting cycle[J]. Journal of Engineering Geology, 2018, 26(S1): 155-161. (in Chinese)
|
[6] |
张冬梅. 浅析建筑材料石灰的性能及应用[J]. 四川水泥, 2021(7): 105-106. (ZHANG D M. Analysis of the performance and application of building material lime[J]. Sichuan Cement, 2021(7): 105-106. (in Chinese)
ZHANG D M. Analysis of the performance and application of building material lime[J]. Sichuan Cement, 2021(7): 105-106. (in Chinese)
|
[7] |
岳建伟, 杨 雪, 赵丽敏, 等. 开封城墙修复土配合比试验[J]. 建筑材料学报,2022,25(5):532-536,544. (YUE J W, YANG X, ZHAO L M, et al. Experimental on mix proportion of restoration soil for Kaifeng city wall[J]. Journal of Building Materials,2022,25(5):532-536,544. (in Chinese) doi: 10.3969/j.issn.1007-9629.2022.05.013
YUE J W, YANG X, ZHAO L M, et al. Experimental on mix proportion of restoration soil for Kaifeng city wall[J]. Journal of Building Materials, 2022, 25(5): 532-536,544. (in Chinese) doi: 10.3969/j.issn.1007-9629.2022.05.013
|
[8] |
郑 旭. 碳化固化土的耐久性能试验研究[D]. 南京: 东南大学, 2015. (ZHENG X. Experimental study on the durability of carbonated soils[D]. Nanjing: Southeast University, 2015. (in Chinese)
ZHENG X. Experimental study on the durability of carbonated soils[D]. Nanjing: Southeast University, 2015. (in Chinese)
|
[9] |
秦 川. 软弱地基整体碳化固化工艺试验研究[D]. 南京: 东南大学, 2019. (QIN C. Experimental study on overall carbonization and solidification process of soft foundation[D]. Nanjing: Southeast University, 2019. (in Chinese)
QIN C. Experimental study on overall carbonization and solidification process of soft foundation[D]. Nanjing: Southeast University, 2019. (in Chinese)
|
[10] |
WANG D X, XIAO J, GAO X Y. Strength gain and microstructure of carbonated reactive MgO-fly ash solidified sludge from East Lake, China[J]. Engineering Geology,2019,251:37-47. doi: 10.1016/j.enggeo.2019.02.012
|
[11] |
LI W T, NI P P, YI Y L. Comparison of reactive magnesia, quick lime, and ordinary Portland cement for stabilization/solidification of heavy metal-contaminated soils[J]. Science of the Total Environment,2019,671:741-753.
|
[12] |
LIU S Y, CAI G H, WANG L, et al. Treatment system and method for ex-situ carbonization and solidification of silt soil using active magnesium oxide: US20200115875A1[P]. 2020-04-16.
|
[13] |
SILVA B A, PINTO A P F, GOMES A, et al. Effects of natural and accelerated carbonation on the properties of lime-based materials[J]. Journal of CO2 Utilization,2021,49:101552. doi: 10.1016/j.jcou.2021.101552
|
[14] |
LUO S R, WU W D, WU K Y. Effect of recycled coarse aggregates enhanced by CO2 on the mechanical properties of recycled aggregate concrete[J]. IOP Conference Series: Materials Science and Engineering,2018,431(10):102006.
|
[15] |
ERGENÇ D, FORT R. Accelerating carbonation in lime-based mortar in high CO2 environments[J]. Construction and Building Materials,2018,188:314-325.
|
[16] |
岳建伟, 林 健, 王永锋, 等. 开封仿遗址土水理性质的改良研究[J]. 工程科学与技术,2020,52(1):46-55. (YUE J W, LIN J, WANG Y F, et al. Study on the improvement of soil water in Kaifeng imitation site[J]. Advanced Engineering Sciences,2020,52(1):46-55. (in Chinese)
YUE J W, LIN J, WANG Y F, et al. Study on the improvement of soil water in Kaifeng imitation site[J]. Advanced Engineering Sciences, 2020, 52(1): 46-55. (in Chinese)
|
[17] |
BOARDMAN D I, GLENDINNING S, ROGERS C D F. Development of stabilisation and solidification in lime-clay mixes[J]. Géotechnique,2001,51(6):533-543.
|
[18] |
张 铖, 王 玲, 姚 燕, 等. 逐层磨粉pH值法测定混凝土碳化深度的试验研究[J]. 材料导报,2022,36(7):168-171. (ZHANG C, WANG L, YAO Y, et al. Determination of concrete carbonation depth by testing the pH value of layer-by-layer grinding concrete samples[J]. Materials Reports,2022,36(7):168-171. (in Chinese)
ZHANG C, WANG L, YAO Y, et al. Determination of concrete carbonation depth by testing the pH value of layer-by-layer grinding concrete samples[J]. Materials Reports, 2022, 36(7): 168-171. (in Chinese)
|
[19] |
徐树强, 王乐乐, 马清林, 等. 天然水硬性石灰在不同碳化条件下的水化反应[J]. 文物保护与考古科学,2017,29(4):1-8. (XU S Q, WANG L L, MA Q L, et al. Hydration of natural hydraulic lime pastes under different conditions of carbonation[J]. Sciences of Conservation and Archaeology,2017,29(4):1-8. (in Chinese)
XU S Q, WANG L L, MA Q L, et al. Hydration of natural hydraulic lime pastes under different conditions of carbonation[J]. Sciences of Conservation and Archaeology, 2017, 29(4): 1-8. (in Chinese)
|
[20] |
蔡 奕, 施 斌, 刘志彬, 等. 团聚体大小对填筑土强度影响的试验研究[J]. 岩土工程学报,2005,27(12):1482-1486. (CAI Y, SHI B, LIU Z B, et al. Experimental study on effect of aggregate size on strength of filled soils[J]. Chinese Journal of Geotechnical Engineering,2005,27(12):1482-1486. (in Chinese) doi: 10.3321/j.issn:1000-4548.2005.12.022
CAI Y, SHI B, LIU Z B, et al. Experimental study on effect of aggregate size on strength of filled soils[J]. Chinese Journal of Geotechnical Engineering, 2005, 27(12): 1482-1486. (in Chinese) doi: 10.3321/j.issn:1000-4548.2005.12.022
|