图示结构,其对A点之矩的平衡方程为()
A: mA(F)=m+PsinθL/2+2Qa+mA=0
B: mA(F)=-m-PsinθL/2+Qa=0
C: mA(F)=-mL-PL/2+Qa/2+mA=0
D: mA(F)=-m-PsinθL/2+Qa+mA=0
A: mA(F)=m+PsinθL/2+2Qa+mA=0
B: mA(F)=-m-PsinθL/2+Qa=0
C: mA(F)=-mL-PL/2+Qa/2+mA=0
D: mA(F)=-m-PsinθL/2+Qa+mA=0
举一反三
- 图示结构,其对A点之矩的平衡方程为( )。[img=192x150]180328f61d22d6f.png[/img] A: SMA(F) = m + P × L/2 + mA = 0 B: SMA(F) = -m - P × L/2 = 0 C: SMA(F) = -mL - P × L/2 + mA = 0 SMA(F) = -mL - P × L/2 + mA = 0 D: SMA(F) = -m - P × L/2 + mA = 0
- 图示结构,其对A点之矩的平衡方程为() A: m(F)=m+PsinθL/2+2Q+m=0 B: m(F)=-m-PsinθL/2+Q=0 C: m(F)=-mL-PL/2+Q/2+m=0 D: m(F)=-m-PsinθL/2+Q+m=0
- 图示刚体在一个平面任意力系作用下处于平衡,以下四组平衡方程中哪一组是不独立的() A: ΣX=0,ΣmO(F)=0,ΣmA(F)=0; B: ΣmO(F)=0,ΣmA(F)=0,ΣmB(F) C: ΣmA(F)=0,ΣmC(F)=0,ΣY=0; D: ΣX=0,ΣmA(F)=0,ΣmB(F)=0。
- 下面哪些是平面力系的平衡方程: A: ∑Fx=0;∑Fy=0;∑M0 (F)=0 B: ∑Fy=0;∑MA (F)=0;∑MB (F)=0 C: ∑MA (F)=0;∑MB (F)=0;∑MC (F)=0 D: ∑Fx=0;∑MA (F)=0;∑MB (F)=0
- 图所示的Fl、F2、F3、...、Fn为一平面力系,若此力系平衡,则下列各组平衡方程中()是彼此独立的平衡方程。 A: ∑Fy=0,∑MA(F)=0,∑MB(F)=0 B: ∑Fx=0,∑Fy=0,∑M0(F)=0 C: ∑MA(F)=0,∑MB(F)=0,∑M0(F)=0 D: ∑MA(F)=0,∑MB(F)=0,∑Fx=0 E: ∑MA(F)=0,∑MB(F)=0,∑MC(F)=0