TY - JOUR
T1 - Generating parametric G2 non-four-sided blending surfaces
AU - Song, Qiuzhi
AU - Huang, Zhengdong
AU - Chen, Liping
AU - Zhong, Yifang
PY - 2004
Y1 - 2004
N2 - A method of generating n-sided (n = 3, 5, 6) G2 blending surfaces (except that the 3-sided blending surface is C0 continuous at the three vertexes and the 5-sided blending surface is C0 continuous at a vertex) is presented in this paper. When this method is used to generate n-sided (n = 3, 5, 6) G2 blending surfaces between the base surfaces, the base surfaces are expressed as n-sided (n = 3, 5, 6) by reparameterising the base surfaces; then the n-sided (n = 3, 5, 6) G2 blending surfaces are convex combinations of the base surfaces expressed as n-sided (n = 3, 5, 6) surfaces. When the contact curves are arbitrary curves in the base surfaces, the regions near the contact curves in the base surfaces are reparameterised and expressed as n-sided (n = 3, 5, 6) surfaces; then the n-sided (n = 3, 5, 6) G2 blending surfaces are convex combinations of the reparameterised local base surfaces expressed as n-sided (n = 3, 5, 6) surface styles. The shape of the n-sided (n = 3, 5, 6) blending surfaces can be adjusted by changing the size of the reparameterised local base surfaces and the combination weights. An example of a 5-sided surface generated between an aerofoil, the body and the fringe surface of a missile is given.
AB - A method of generating n-sided (n = 3, 5, 6) G2 blending surfaces (except that the 3-sided blending surface is C0 continuous at the three vertexes and the 5-sided blending surface is C0 continuous at a vertex) is presented in this paper. When this method is used to generate n-sided (n = 3, 5, 6) G2 blending surfaces between the base surfaces, the base surfaces are expressed as n-sided (n = 3, 5, 6) by reparameterising the base surfaces; then the n-sided (n = 3, 5, 6) G2 blending surfaces are convex combinations of the base surfaces expressed as n-sided (n = 3, 5, 6) surfaces. When the contact curves are arbitrary curves in the base surfaces, the regions near the contact curves in the base surfaces are reparameterised and expressed as n-sided (n = 3, 5, 6) surfaces; then the n-sided (n = 3, 5, 6) G2 blending surfaces are convex combinations of the reparameterised local base surfaces expressed as n-sided (n = 3, 5, 6) surface styles. The shape of the n-sided (n = 3, 5, 6) blending surfaces can be adjusted by changing the size of the reparameterised local base surfaces and the combination weights. An example of a 5-sided surface generated between an aerofoil, the body and the fringe surface of a missile is given.
KW - Base surfaces
KW - Blending surfaces
KW - Convex combinations
KW - N-sided (n = 3, 5, 6)
KW - Reparameterisation of partial surface patches
UR - http://www.scopus.com/inward/record.url?scp=2442457927&partnerID=8YFLogxK
U2 - 10.1007/s00170-003-1577-2
DO - 10.1007/s00170-003-1577-2
M3 - Article
AN - SCOPUS:2442457927
SN - 0268-3768
VL - 23
SP - 475
EP - 488
JO - International Journal of Advanced Manufacturing Technology
JF - International Journal of Advanced Manufacturing Technology
IS - 7-8
ER -