Transient heat conduction and hotspot development prediction in a flaking roll with revolving heat flux and convection boundary conditions

被引:0
|
作者
Singh, PP [1 ]
Maier, DE [1 ]
机构
[1] Purdue Univ, Dept Agr & Biol Engn, W Lafayette, IN 47907 USA
关键词
convection; finite element; flaking; heat flux; hotspots; revolving boundary condition; transient heat conduction;
D O I
10.1007/s11746-001-0343-7
中图分类号
O69 [应用化学];
学科分类号
081704 ;
摘要
In the oilseed crushing industry, flaking rolls sometimes develop hotspots that cause high thermal stresses. Soybean flakes on contact with hotspots crumble to powder, which is unsuitable for oil extraction. Transient heat conduction equations with revolving boundary conditions were solved using the finite element method. Simulations demonstrated that hotspots arise due to heat flow in three dimensions from the source toward the roll ends and the curved surface. An estimate eat flux value of 56 kW/m(2) yielded surface temperature values near observed values. Perturbations performed to the base values showed that a 10% increase in thermal conductivity caused a 6-8% reduction in peak thermal gradient, whereas a 20% increase in heat-transfer coefficient caused less than 2% reduction in peak thermal gradient. Therefore, thermal conductivity is a more sensitive parameter affecting thermal gradients than the heat-transfer coefficient. A small change in heat-transfer coefficient caused by aspirating air through the flake outlet of the roll stands would not cause a significant reduction in temperature and thermal gradients in rolls. The higher thermal gradients observed near the outer surface of rolls suggest that casting rolls with subsurface layers of higher thermal conductivity would make rolls less prone to forming hotspots.
引用
收藏
页码:787 / 792
页数:6
相关论文
共 50 条
  • [41] On convection driven by surface tension caused by transient heat conduction
    Tan, KK
    Thorpe, RB
    CHEMICAL ENGINEERING SCIENCE, 1999, 54 (06) : 775 - 783
  • [42] On heat flux boundary conditions for ocean models
    Seager, R
    Kushnir, Y
    Cane, MA
    JOURNAL OF PHYSICAL OCEANOGRAPHY, 1995, 25 (12) : 3219 - 3230
  • [43] Measurements of the convection heat transfer coefficient for a planar wall jet: uniform temperature and uniform heat flux boundary conditions
    AbdulNour, RS
    Willenborg, K
    McGrath, JJ
    Foss, JF
    AbdulNour, BS
    EXPERIMENTAL THERMAL AND FLUID SCIENCE, 2000, 22 (3-4) : 123 - 131
  • [44] Inverse heat conduction problem for transient external heat flux inversion of spacecraft on orbit
    Beijing Institute of Spacecraft System Engineering, Beijing
    100094, China
    Beijing Hangkong Hangtian Daxue Xuebao, 11 (2061-2066):
  • [45] EXPERIMENTAL INVESTIGATION OF TRANSIENT FORCED CONVECTION OF LIQUID METHANE IN A CHANNEL AT HIGH HEAT FLUX CONDITIONS
    Trejo, A.
    Garcia, C.
    Choudhuri, A.
    EXPERIMENTAL HEAT TRANSFER, 2016, 29 (01) : 97 - 112
  • [46] TRANSIENT HEAT-CONDUCTION UNDER PLASMA CONDITIONS
    BOURDIN, E
    FAUCHAIS, P
    BOULOS, M
    INTERNATIONAL JOURNAL OF HEAT AND MASS TRANSFER, 1983, 26 (04) : 567 - 582
  • [47] Nonlinear inverse heat conduction with a moving boundary: Heat flux and surface recession estimation
    Petrushevsky, V
    Cohen, S
    JOURNAL OF HEAT TRANSFER-TRANSACTIONS OF THE ASME, 1999, 121 (03): : 708 - 711
  • [48] The reconstruction of heat flux in moving boundary in 1-dimensional heat conduction problem
    Zhang, Xueyan
    Huang, Feng
    ADVANCED MANUFACTURING TECHNOLOGY, PTS 1, 2, 2011, 156-157 : 237 - 240
  • [49] Non-Fourier heat conduction in a plane slab with prescribed boundary heat flux
    Barletta, A
    Zanchini, E
    HEAT AND MASS TRANSFER, 1996, 31 (06): : 443 - 450
  • [50] Non-Fourier heat conduction in a plane slab with prescribed boundary heat flux
    Barletta, A.
    Zanchini, E.
    Heat and Mass Transfer/Waerme- und Stoffuebertragung, 1996, 31 (06): : 443 - 450