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Simulations of Moisture Gradients in Wood Subjected to Changes in Relative Humidity and Temperature Due to Climate Change

机译:气候变化引起的相对湿度和温度变化的木材中水分梯度的模拟

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Climate change is a growing threat to cultural heritage buildings and objects. Objects housed in historic buildings are at risk because the indoor environments in these buildings are difficult to control and often influenced by the outdoor climate. Hygroscopic materials, such as wood, will gain and release moisture during changes in relative humidity and temperature. These changes cause swelling and shrinkage, which may result in permanent damage. To increase the knowledge of climate-induced damage to heritage objects, it is essential to monitor moisture transport in wood. Simulation models need to be developed and improved to predict the influence of climate change. In a previous work, relative humidity and temperature was monitored at different depths inside wooden samples subjected to fluctuating climate over time. In this article, two methods, the hygrothermal building simulation software WUFI ? Pro and the Simplified model, were compared in relation to the measured data. The conclusion was that both methods can simulate moisture diffusion and transport in wooden object with a sufficient accuracy. Using the two methods for predicted climate change data show that the mean RH inside wood is rather constant, but the RH minimum and maximum vary with the predicted scenario and the type of building used for the simulation.
机译:气候变化对文化遗产建筑和物体的威胁日益增大。由于历史建筑物中的室内环境难以控制,并且经常受室外气候的影响,因此存在危险。吸湿性材料(例如木材)会在相对湿度和温度变化时吸收并释放水分。这些变化会导致膨胀和收缩,从而可能导致永久性损坏。为了增加对气候对文物造成的破坏的了解,必须监测木材中的水分传输。需要开发和改进模拟模型以预测气候变化的影响。在以前的工作中,随着时间的推移,随着气候变化,木制样品内部不同深度的相对湿度和温度都得到了监测。本文采用两种方法,即湿热建筑模拟软件WUFI®。将Pro和Simplified模型与实测数据进行比较。结论是,两种方法都可以以足够的精度模拟水分在木质物体中的扩散和传输。使用这两种方法预测的气候变化数据表明,木材内部的平均RH相当恒定,但是RH的最小值和最大值随预测的方案和用于模拟的建筑物的类型而变化。

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