scholarly journals Numerical Study on the Influence of Ventilation on the Heat Flow of Cable Fire in Narrow-long Space

Author(s):  
Yanyi Xiong ◽  
Yiwei Ma ◽  
Bing Shen ◽  
Kezhou Zhu ◽  
Huiping Zhao
Keyword(s):  
2015 ◽  
Vol 43 (2) ◽  
pp. 665-669 ◽  
Author(s):  
Ruey-Chang Hsiao ◽  
Ta-Lun Sung ◽  
Chung-Ming Liu ◽  
Shinriki Teii ◽  
Shigeru Ono ◽  
...  

1992 ◽  
Vol 70 (10-11) ◽  
pp. 904-907
Author(s):  
N. Swart ◽  
A. Nathan

The temperature distributions in thermally isolated cantilever based flow-rate microsensors have been numerically calculated for different gas temperatures and gas velocities. In particular, we investigate the efficiency of heat transfer to the flowing gas and corresponding directions of heat flow in the system. The above analysis is based on a solution to the energy equation under appropriate boundary conditions. The equation was discretized using a control volume procedure, based on which an equivalent circuit was devised and subsequently simulated using a circuit simulator such as SPICE.


2014 ◽  
Vol 62 ◽  
pp. 716-730 ◽  
Author(s):  
Sanaz Saeid ◽  
Rafid Al-Khoury ◽  
Hamidreza M. Nick ◽  
Frans Barends
Keyword(s):  

Author(s):  
Elena A. Ivanova ◽  
Alexander N. Kozlobrodov

When building low-rise buildings with a variety of structural elements, it is important to have an idea of their thermal state in extreme heat exchange conditions. Therefore, the study of heat transfer processes in heat-stressed elements of external fences is relevant and of considerable practical interest. The purpose of this work is to conduct parametric studies in typical angular fragments of inhomogeneous enclosing structures with u-turn angles from 60 to 150°. At the same time, the analysis of the thermal state is carried out for both external and internal angles. The mathematical modeling of spatial heat transfer in the fragments under consideration is based on the solution of a nonlinear system of differential equations of thermal conductivity with corresponding boundary conditions by the finite element method using the Thermal module included in the ANSYS software package. The analysis of numerical results given for three types of enclosing structures made using various technologies allowed us to clarify the influence of their geometric and thermophysical characteristics on the distribution of temperature and heat flow over the thickness of the fragments under consideration, as well as to determine the change in these parameters on both the internal and external surfaces of the structure. To establish that for all types of walling with increasing rotation angle, the temperature in the inner corner of the structure decreases, and in the outer increases, and the density of the heat flow behaves vice versa; the distance from the corner to the area stabilization with increasing angle of rotation reduces, smiling for all types of structures for temperature and heat flow; an increase in the thermal resistance leads to a temperature increase and decrease of the heat flux in the corner tend to be developed fragments; issue recommendations for creating energy-efficient structures that meet modern requirements.


2019 ◽  
Vol 392 ◽  
pp. 218-227
Author(s):  
Anshul Yadav ◽  
Anil Kumar ◽  
Priya Gupta ◽  
Devendra Kumar Sinha

The study on heat flow in welding is essential as the quality of the weld depends on mainly heat flow through the welded plate. The heat input from welding source flows in a limited zone, and it subsequently flows into the workpiece by conduction. In this study, an attempt is taken to predict the transient temperature distribution and solidification pattern through a numerical model and the associated mathematical technique considering the solidification and heat transfer, of molten weld pool when it is covered with flux and without flux in arc welding process. The numerical model developed in this study solves fluid flow and heat transfer considering solidification and melting phase change the along with natural convection in the meltpool. It was found that the flux is functioning as insulation on the welded pool, hence it restricts rapid solidification and increases the mushy zone width.


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