Design equations for buckling strength of steel I-beam under non-uniform heating condition

2021 ◽  
pp. 103464
Author(s):  
Xuan Tung Nguyen ◽  
Jong Sup Park
Author(s):  
Hongmin Li ◽  
Guo-Xiang Wang ◽  
Edward A. Evans

Hydrothermal growth is an important industrial process to produce piezoelectric crystals such as quartz. It takes place in a cylindrical container called an autoclave, which is filled with aqueous solution at a high temperature and a high pressure. The high temperature growth condition is maintained through electrical resistors on the outer surface of an autoclave. In practice there is a non-uniform heating condition in the circumferential direction. Many theoretical and numerical studies, however, assume an axisymmetric heating condition. This paper presents a numerical analysis of the three-dimensional heat transfer and fluid flow in hydrothermal growth due to such non-uniform heating. The analysis is based on an industry-size autoclave with an aspect ratio of 10. The non-uniform heating is introduced on the surface of both the lower dissolving chamber and the upper growing chamber of an autoclave with and without a baffle at the middle height. The flow and isotherm patterns were obtained with the temperature difference between the two chambers kept at 10 °C. The circumferentially non-uniform temperature has dramatic effects on the three-dimensional flow and therefore the temperature distribution in the autoclave. When the dissolving chamber is subjected to circumferentially non-uniform heating, a baffle is essential to create a uniform growth environment in the growing chamber. To obtain high quality single crystals, however, the temperature control on the growing chamber wall is more important than that on the dissolving chamber wall.


2013 ◽  
Vol 437 ◽  
pp. 120-123
Author(s):  
Ge Ping Wu ◽  
Ping Lu ◽  
Jun Wang

Heat transfer and fluid flow in the microchannel cooling passages of plane cell type MTPV systems are numerically investigated. The Finite Volume method is adopted for the governing equations discretization; The SIMPLE method is applied to deal with the linkage between pressure and velocities. The microscale effects, such as surface roughness and viscous dissipation are taken into account. Influence of non-uniform heating condition on the flow and heat transfer characteristics of the microchannel cooling passage was discussed. The computer simulations were validated by the experiment data. Numerical results confirm that the effects of non-uniform heating condition on fluid flow and heat transfer in microchannels could not be neglected.


Energies ◽  
2019 ◽  
Vol 12 (20) ◽  
pp. 3958
Author(s):  
Zhenchuan Wang ◽  
Guoli Qi ◽  
Meijun Li

In-depth understanding and analysis of turbulent convection heat transfer of supercritical water under semicircular heating conditions play a major role in system design and security. The inaccurate numerical results on simulating the buoyancy effect under deterioration heat transfer cases are partly attributed to the invalidity of the turbulent model. An improved turbulence model, which is validated suitable to three-dimensional model, is adopted in the present paper to numerical simulated flow and heat transfer in a vertical tube under semicircular heating condition. Heat transfer deterioration phenomenon occurs under semicircular heating condition, while the degree of deterioration is weakened due to the influence of variable physical properties and buoyancy effect. The velocity profile is distorted into “M-shape” in the heating side and present parabolic distribution in the adiabatic side, leading to different deterioration mechanisms under semicircular heating condition compared with uniform heating. The larger density difference between the heating side and the adiabatic side increases the shear stress production of turbulent kinetic energy; turbulent development is much faster recovery than the phenomenon in uniform heating condition. The results show that the semicircular heating condition can effectively alleviate the degree of heat transfer deterioration in a vertical tube.


Author(s):  
Blas Zamora

Abstract The influence of non-uniform heating conditions on the buoyancy-driven flow established in an open square cavity with ventilation ports is studied. Cavity configuration is shaped to electronic device with passive cooling. Numerical results for relevant parameters are presented as a function of the Rayleigh number, considering both fixed temperature and heat flux heating conditions. The results obtained retaining the temperature-dependent thermophysical properties are compared with those calculated under the Boussinesq approximation. The impact that the non-uniformly heated wall produces on the thermal and dynamic behavior of the airflow is analyzed. The choice of a given heating distribution slope can produce a thermal behavior improvement, even increasing heat transfer above 20%. Some practical engineering correlations are presented. In fact, a correlation for the critical heating parameter for isoflux heating condition, concerned to the burnout phenomenon, is obtained from numerical results. The effects of the non-uniform heating condition (heat flux case) are not too relevant on this particular phenomenon.


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