西北大学城市与环境学院,西安,710127
网络首发:2016-11-10,
纸质出版:2016
移动端阅览
张哲 1, 宋朋龙 2, 贺沅平 2, 等. 多介质耦合环境下的遗址文物原位保护[J]. 西安交通大学学报, 2016,50(11):150-156.
In-Situ Relics Preservation under Multi-Media Coupling Environment in Archaeology Museums[J]. 2016, 50(11): 150-156.
张哲 1, 宋朋龙 2, 贺沅平 2, 等. 多介质耦合环境下的遗址文物原位保护[J]. 西安交通大学学报, 2016,50(11):150-156. DOI: 10.7652/xjtuxb201611023.
In-Situ Relics Preservation under Multi-Media Coupling Environment in Archaeology Museums[J]. 2016, 50(11): 150-156. DOI: 10.7652/xjtuxb201611023.
根据遗址博物馆对文物保存环境调控的特殊需求
提出了一种控制土壤文物空气多介质耦合环境内变量的梯度、实现出土文物原位环境重建的保护策略; 进一步搭建了遗址博物馆实验葬坑
采用毛细管辐射系统对文物保存区原位环境进行了调控实验。研究表明:毛细管辐射调控系统可以实现文物保存环境的稳定
相比辐射调控系统关闭工况
环境温度昼夜波动值从3.6 ℃减小到1.6 ℃
文物土壤空气间的温差从2.1 ℃减小到0.3 ℃
文物本体不同部位的温差从3.8 ℃减小至0.8 ℃
同时文物保存区的风速控制在0.06 m/s以下
远低于文物保存标准规定的上限值0.15 m/s; 毛细管辐射调控系统可以有效地抑制文物保存环境之间的物质与能量迁移
实现遗址文物原位保存环境的平衡保护。
To satisfy the requirement for environmental control of relics preservation in archaeology museums a preservation strategy for reintegrating primitive environment is proposed
in which some environmental parameters are strictly restricted in the soil-air coupled environment. In order to verify this technique
a laboratory room with a funerary pit was constructed to simulate a large open exhibition hall of archaeology museums
and a capillary radiant system was built to perform the environmental control for relics preservation. The field test showed that the capillary radiant system provided a more stable condition for the unearthed relics in the funerary pit. Experimental results proved that the temperature fluctuation of preservation area was reduced from 3.6 to 1.6 ℃
the average temperature difference of soil-air coupled environment decreased from 2.1 to 0.3 ℃
and the average temperature difference across the relic decreased from 3.8 to 0.8 ℃. Meanwhile
the air velocity in the preservation was controlled within 0.06 m/s
which is well below the upper limit value of 0.15 m/s prescribed for museums. The proposed preservation method is effective in mitigating heat and mass transfer and creating a more balanced environment for relics preservation.
罗昔联. 切削网格算法研究及其在遗址博物馆文物保存环境模拟中的应用 [D]. 西安: 西安交通大学, 2013.
GU Z L, LUO X L, MENG X Z, et al. Primitive environment control for preservation of pit relics in archaeology museums of China [J]. Environmental Science Technology, 2013, 47(3): 1504-1509.
LUO X L, GU Z L, YU C. Desiccation cracking of earthen sites in archaeology museum: a viewpoint of chemical potential difference of water content [J]. Indoor and Built Environment, 2015, 24(2): 147-152.
LUO X L, GU Z L. Numerical study of indoor environment in Yang-ling relics museum heated from the envelop glass [C]∥Proceedings of 5th International Symposium on Heating, Ventilating and Conditioning. Beijing, China: Tsinghua University Press, 2007: 328-332.
杨雅媚, 曹军骥, 李库, 等. 汉阳陵地下博物馆土壤、大气及风化壳的理化特征 [J]. 中国粉体技术, 2009, 15(2): 38-45.
YANG Yamei, CAO Junji, LI Ku, et al. Physicochemical characteristics of soil, weathering salt and total suspended particles in the Yang mausoleum of the Han Dynasty [J]. China Powder Science and Technology, 2009, 15(2): 38-45.
HU T F, LEE S C, CAO J J, et al. Atmospheric deterioration of Qin brick in an environmental chamber at Emperor Qin's Terracotta Museum, China [J]. Journal of Archaeological Science, 2009, 36(11): 2578-2583.
CAMUFFO D, MONTE M D, SABBIONI C, et al. Wetting, deterioration and visual features of stone surfaces in an urban area [J]. Atmospheric Environment, 1982, 16(9): 2253-2259.
LIU W, ZHAO X X, MIZUKAMI K. 2D numerical simulation for simultaneous heat, water and gas migration in soil bed under different environmental conditions [J]. Heat and Mass Transfer, 1998, 34(4): 307-316.
NOVAK M D. Dynamics of the near-surface evaporation zone and corresponding effects on the surface energy balance of a drying bare soil [J]. Agricultural Forest Meteorology, 2010, 150(10): 1358-1365.
王宇昂, 路昭, 罗昔联, 等. 遗址博物馆特殊环境温度场调控系统的设计及优化 [J]. 西安交通大学学报, 2016, 50(7): 131-139.
WANG Yuang, LU Zhao, LUO Xilian, et al. Design and optimization of temperature control system for special environment in site museums [J]. Journal of Xi'an Jiaotong University, 2016, 50(7): 131-139.
张小刚. 西安地区岩土综合热物性参数分析及土壤源热泵经济适宜区域研究 [D]. 西安: 长安大学, 2014.
ROGERS J A, KAVUANY M. Funicular and evaporative-front regimes in convective drying of granular beds [J]. International Journal of Heat and Mass Transfer, 1992, 35(2): 469-480.
YAU Y H, CHEW B T, AZA S. A field study on thermal comfort of occupants and acceptable neutral temperature at the National Museum in Malaysia [J]. Indoor and Built Environment, 2013, 22(2): 433-444.
0
浏览量
4
下载量
1
CSCD
关联资源
相关文章
相关作者
相关机构
京公网安备11010802024621