增加工作场所小气候的舒适状态

A. Petrenko, V. Petrenko, I. V. Goljakova, A. O. Mykhalchenko, E. V. Patonya, E. Kamińska
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引用次数: 0

摘要

总结。问题的陈述。健康和人的表现在很大程度上取决于居住、行政、居住和公共建筑的气候条件和空气质量。反过来,这又受到外部环境和气候、房间的几何尺寸、建筑围护结构的热性能、房屋的位置(朝向)以及许多其他因素的影响。其结果是在多因素条件下形成控制决策的复杂系统。在卫生方面,有必要努力创造最佳的室内小气候条件,而不考虑影响住宅、行政、住宅和公共建筑气候的因素的变化。开发系统以确保必要的小气候参数-这是一项复杂而重要的任务,这将完全取决于人的舒适和舒适的环境。目前的问题是,由于不可再生能源价格的上涨,这些系统的能源消耗稳步增加,而我们的工作是,模拟软件系统工作所需的小气候对影响它的因素的变化,并尽量减少不可再生能源的使用[4,5]。分析最近的研究和出版物。国内外卫生学家建立室内和工作场所的气候与人类健康状况之间的联系[1,2,6,7]。住宅、行政建筑、住宅和公共建筑的室内气候的形成受到前面已经提到的许多因素的影响。研究各种因素对人体健康的影响过程是非常复杂的。如果我们单独考虑每个过程,在这种情况下,它们目前不适合更清晰的理论描述。为了模拟这些因素的影响,进行了研究,结果表明,以足够的精度管理实验研究液体导电介质中的电场作为热场的模拟物[8]。隔离以前解决的问题。已知的建模方法是近似的,并且存在降低精度和限制范围的缺点。因此,获得有效热解的一种方法是对热过程进行模拟,并对结果进行进一步分析。建议用室内的热场模拟镀液中的电场,模拟任意室内空间表面间的热流密度均假定模型表面间的电流密度。所选测量点之间的距离越小,在电场和室内热场中重建的实际图像模式就越准确。但是这种方法不能考虑到影响室内气候形成的所有可能的变化。利用电场模型进行热辐射传递模拟表明,在初始信息的输入模型和模拟结果的去除中投入了大量的劳动。目标。描述系统的行为(环境的小气候和房间的几何尺寸的影响,以及建筑围护结构的热性能,以及房屋的位置(朝向),以及建筑物室内气候中的许多其他因素),建立可以解释行为的理论和假设,将观察到使用理论来预测系统的未来行为,即:这些因素可能是由系统的变化或改变其运作方式引起的。结论:提出的解决所提出问题的方法将揭示影响不同用途建筑室内气候的不同元素和因素之间的相互作用点。在未来,可以利用模拟的方法研究不同功能建筑在改变影响因素时的微气候变化。这将创建一个自动控制技术空间加热和冷却过程的系统,该系统将适应不同用途的影响建筑物室内气候的因素的变化。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Increasing the comfortable state of the microclimate at the workplace
Summary. Statement of the problem. Health and human performance largely determined by the conditions of climate and air quality in residential, administrative and residential and public buildings. At that, in turn, is influenced by the external environment and the climate, and the geometric dimensions of the room, and thermal performance building envelopes, and the location of the premises (Orientation), and many other factors. The result is the formation of complex systems, which control decision-making in conditions of multifactor. In hygienic purposes it is necessary to strive to create the best indoor microclimate conditions, regardless of changes in the factors that affect the climate in residential, administrative and residential and public buildings. Develop systems to ensure the necessary microclimate parameters - it is a complex and important task, which will depend entirely comfortable and cozy environment for the person. The problem of the present time, there is a steady increase in the energy consumption of these systems, due to the rise in price of non-renewable energy sources, and our job is, to simulate the work of software systems necessary microclimate for the changes in the factors that affect it and to minimize the use of non-renewable energy sources [4,5]. Analysis of recent research and publications. Domestic and foreign hygienists to establish a connection between the climate in the room and in the workplace and the state of human health [1,2,6,7]. Formation of the indoor climate of residential, administrative and residential and public buildings is influenced by many factors that have already noted earlier. Study of the processes of influence of various factors on human health is of great complexity. If we consider each process separately, and in this case they are not currently amenable to theoretical description clearer. To simulate the effect of these factors studies were conducted, which showed that, with sufficient accuracy manage experimentally investigate the electrical field in the liquid conducting medium as an analog of the thermal field [8]. Isolation of previously solved problems. Known methods for modeling are approximate and have drawbacks that reduce the accuracy and limited scope. Therefore, one way to obtain effective thermal solutions is a simulation of thermal processes with further analysis of the results. It was suggested that the thermal field in the room to simulate electric field in the plating bath, and the analog heat flux between surfaces of any room space assumed current density between the surfaces of the model. The smaller the distance between the selected measurement points, the more accurate will be recreated actual picture patterns in the electric field and hence the thermal field in the room. But this method does not enable to take into account all the possible variations that affect the formation of indoor climate. Working with models that use an electric field to the heat radiation transfer simulations showed a significant labor input in the input model of the initial information and the removal of the simulation results. Objectives. Describe the behavior of the system (the influence of the microclimate of the environment and the geometric dimensions of the room, and thermal performance building envelopes, and the location of the premises (Orientation), and many other factors in the indoor climate of buildings), to build theories and hypotheses that could explain the behavior, which It will be observed to use the theory for predicting the future behavior of the system, that is, those factors that can be caused by a change in the system or change the way of its functioning. Conclusions: The proposed approach to addressing the issues raised will reveal the point of interaction between the different elements and factors that affect the indoor climate of buildings for different purposes. In the future, use the simulation method to study changes in microclimate in the buildings of different functions when you change the factors that affect it. This will create a system of automatic control of technological space heating and cooling processes, which will adapt to the changes in the factors that affect the indoor climate of buildings for different purposes.
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