TY - JOUR
T1 - Numerical predictions of flow and heat transfer for rotating internal cooling channels with rib turbulators
AU - Zhao, Shu
AU - Zhu, Huiren
AU - Guo, Tao
AU - Zhang, Li
AU - Sun, Ruijia
PY - 2014/2
Y1 - 2014/2
N2 - China Aviation Power Machinery Research Institute, Zhuzhou, Hunan 412002 To investigate flow and heat transfer in a rotating internal channel of the moving blade, experiments and numerical simulations for a similarly amplified channel model with 90°ribs are conducted. The inlet Reynolds number, flow rate distribution ratio and geometric dimensionless ratio are taken as 17000, 1:2:1 and 46.4 respectively, the rotating number is considered as 0 and 0.09. The heat transfer coefficient distribution and static pressure coefficient are examined by experiments. The effects of vortex on flow and heat transfer in rotating internal cooling passage are achieved with 3-D numerical simulation. The results show that vortex shift in rotating channel changes velocity field, and the static pressure coefficient increases along radial outflow and decreases along radial inflow due to centrifugal force. The laterally averaged Nu distributes in multiple-peak form as the result of secondary flow induced by rib turbulators. The Nu distribution down stream of turning area gets asymmetric due to turning eddy. The fluid shift tends toward the wall that the Coriolis force points to. Consequently, the Nu on the radial outflow pressure surface and radial inflow suction surface increases.
AB - China Aviation Power Machinery Research Institute, Zhuzhou, Hunan 412002 To investigate flow and heat transfer in a rotating internal channel of the moving blade, experiments and numerical simulations for a similarly amplified channel model with 90°ribs are conducted. The inlet Reynolds number, flow rate distribution ratio and geometric dimensionless ratio are taken as 17000, 1:2:1 and 46.4 respectively, the rotating number is considered as 0 and 0.09. The heat transfer coefficient distribution and static pressure coefficient are examined by experiments. The effects of vortex on flow and heat transfer in rotating internal cooling passage are achieved with 3-D numerical simulation. The results show that vortex shift in rotating channel changes velocity field, and the static pressure coefficient increases along radial outflow and decreases along radial inflow due to centrifugal force. The laterally averaged Nu distributes in multiple-peak form as the result of secondary flow induced by rib turbulators. The Nu distribution down stream of turning area gets asymmetric due to turning eddy. The fluid shift tends toward the wall that the Coriolis force points to. Consequently, the Nu on the radial outflow pressure surface and radial inflow suction surface increases.
KW - Convective heat transfer
KW - Numerical simulation
KW - Ribbed channel
KW - Rotating
KW - Turbine blade
UR - http://www.scopus.com/inward/record.url?scp=84894815442&partnerID=8YFLogxK
U2 - 10.7652/xjtuxb201402021
DO - 10.7652/xjtuxb201402021
M3 - 文章
AN - SCOPUS:84894815442
SN - 0253-987X
VL - 48
SP - 125
EP - 130
JO - Hsi-An Chiao Tung Ta Hsueh/Journal of Xi'an Jiaotong University
JF - Hsi-An Chiao Tung Ta Hsueh/Journal of Xi'an Jiaotong University
IS - 2
ER -