Thermal impact of buildings on the ground in quasi-stationary approximation

Строительные конструкции, здания и сооружения
Авторы:
Аннотация:

The object of research is a ground as a component of the environment. There are no methods for calculating the thermal impact of buildings on the soil mass in a quasi-stationary approximation. This makes it difficult to solve the urgent problem of finding new solutions for energy-efficient planning formations (microdistricts, quarters) that account for the complex thermal effects of buildings on the ground. Method. The new method of calculating the thermal impact of buildings on the soil mass is based on the classical triad: mathematical model, computational algorithm, and computer program. Results. A universal mathematical model of heat transfer in soil has been developed that allows the construction of a temperature field from a single heat source, multiple sources, and their combinations. The analytical solution of the problem was obtained based on the Forkheimer method, which describes the temperature field in the soil from a point source in a quasi-stationary approximation. A calculation algorithm was built, a computer program was drawn up, data verification was carried out, and the temperature regime of point and flat elements in contact with the soil was simulated. The results obtained for the first time reveal the patterns of thermal impact of a group of buildings on a soil mass. The resulting temperature field is a superposition of the temperature fields from each building. The temperature field is smoothed, which indicates a decrease in heat loss through the edge zones of the floor slab on the ground. The imposition of temperature fields from several buildings increases their energy efficiency. The implementation of the results of the work will increase the level of design solutions aimed at creating comfortable living conditions in the cities of Russia, as well as obtain a significant economic effect both at the stage of construction and reconstruction of neighborhoods, and in the process of subsequent operation of buildings.

Финансовые условия:

Исследование выполнено в рамках Планов фундаментальных научных исследований РААСН и Минстроя России на 2024 и 2025 годы (за счет средств федерального бюджета в рамках Государственной программы фундаментальных научных исследований Российской Федерации на долгосрочный период (2021–2030 годы). Тема № 2.3.1.1 «Направления развития энергоэффективного градостроительства России (энергоэффективные кварталы как инновационные планировочные образования)».

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