Vì đèn nằm cân bằng, theo Định luật 2 Newton ta có:

\(\overset{\rightarrow}{P} + \left(\overset{\rightarrow}{T}\right)_{1} + \left(\overset{\rightarrow}{T}\right)_{2} = \overset{\rightarrow}{0}\)

\(\Rightarrow \left(\overset{\rightarrow}{T}\right)_{1} + \left(\overset{\rightarrow}{T}\right)_{2} = - \overset{\rightarrow}{P}\)

\(_{1} = T_{2} = \frac{P}{2 c o s 3 0^{o}} = \frac{m . g}{2 c o s 3 0^{o}} = \frac{1 , 2.9 , 8}{2 c o s 3 0^{o}} = 6 , 8\) N

Vì đèn nằm cân bằng, theo Định luật 2 Newton ta có:

\(\overset{\rightarrow}{P} + \left(\overset{\rightarrow}{T}\right)_{1} + \left(\overset{\rightarrow}{T}\right)_{2} = \overset{\rightarrow}{0}\)

\(\Rightarrow \left(\overset{\rightarrow}{T}\right)_{1} + \left(\overset{\rightarrow}{T}\right)_{2} = - \overset{\rightarrow}{P}\)

\(_{1} = T_{2} = \frac{P}{2 c o s 3 0^{o}} = \frac{m . g}{2 c o s 3 0^{o}} = \frac{1 , 2.9 , 8}{2 c o s 3 0^{o}} = 6 , 8\) N

Vì đèn nằm cân bằng, theo Định luật 2 Newton ta có:

\(\overset{\rightarrow}{P} + \left(\overset{\rightarrow}{T}\right)_{1} + \left(\overset{\rightarrow}{T}\right)_{2} = \overset{\rightarrow}{0}\)

\(\Rightarrow \left(\overset{\rightarrow}{T}\right)_{1} + \left(\overset{\rightarrow}{T}\right)_{2} = - \overset{\rightarrow}{P}\)

\(_{1} = T_{2} = \frac{P}{2 c o s 3 0^{o}} = \frac{m . g}{2 c o s 3 0^{o}} = \frac{1 , 2.9 , 8}{2 c o s 3 0^{o}} = 6 , 8\) N