Question

Two masses m are attached to opposite sides of a rigid rotating shaft in the vertical plane. Another pair of equal masses $m_1$ is attached to the opposite sides of the shaft in the vertical plane as shown in figgure. Consider m = 1 kgm e = 50 mm, $e_1$=20 mm, b=0.3 m, a = 2 m and $a_1$=2.5 m.
For the system to be dynamically balanced. $m_1$ should be kg

Answer 1

Method I:


Balance mement of all forces
${\omega }^2(m_1\times 0.02\times 2.5)+(1\times 0.05\times 0.3){\omega }^2=(m_1\times 0.02\times 0){\omega }^2+(1\times 0.05\times 2.3){\omega }^2$
$m_1=2kg$

Method II:

Let referance PQ, passes through $m_1$ mass on left side,
Taking moment about PQ.
$m_1{e}_1\times 0\times cos{180}^o+mebcos{)}^o+(a+b)cos{180}^o+m_1{e}_1{a}_{1}cos{0}^o=0$
$0+meb-me(a+b)+m_1{e}_1{a}_1=0$
$m_1{e}_1{a}_1=mea$
$m_1=\frac{mea}{e_1{a}_1}=\frac{1\times 50\times 2}{20\times 2.5}=2$ kg