a29Q28ga2a8M图Mp图A福o512a81123EI3EI2241qaagaAIPEI2816EI
11 2 3 1 2 2 4 1 2 2 3 3 1 2 8 16 = = = − = − EI a a a EI EI a qa qa EI P M1 0 图 MP 图
由力法正则方程S1X+△ip=0得:3qaXi=163qaYc =0,Mc = 0Xc :163qaY=Yg=(t)XA(→)= XB(-) =16902M^(顺时针)= MB(逆时针)一16
( ) 由力法正则方程 得: , , 顺时针 逆时针 11 1 1 1 2 0 3 16 3 16 0 0 3 16 2 16 X X qa X qa Y M X X qa Y Y qa M M qa P C C C A B A B A B + = = = = = → = = = = = = ( ) ( ) , ( ) ( )
例:试求图示平面刚架的支座反力。已知各杆EI=常数。BaaDOIOa777
例:试求图示平面刚架的支座反力。已知各杆 EI=常数
BaαDOXaQMo图gae2qa22Mp图
M1 0 图 MP 图
q?4a32a0O3EI23EI49q3qaaEI22EI3qa得X由SuX,+△p =083qaV.:.XB=0,YB8qa11qa(逆时针)X=0,MA88
( ) ( ) (逆时针) 由 得 8 , 8 11 0, 8 3 0, 8 3 0 2 2 1 3 4 3 2 2 1 2 1 1 1 1 1 3 4 1 3 2 2 1 1 qa M qa X Y qa X Y qa X X E I qa a qa E I E I a a a a a E I A A A B B P P = = = = = + = = = − = − = = +