Answer:
6.11 N
Explanation:
Let,
m= mass of vaulter
Vi initial speed =11 m/s
Vf speed on pole (final) =1.1 m/s
Yi = initial height (when on ground)=o m
Yf = Height while crossing the pole =?
This problem can be solved by using conservation of energy rule;
KEi + PEi = KEf + PEf
==> 1/2 m[tex]Vi^{2}[/tex]+ mg [tex]Yi_{}[/tex] = 1/2 m [tex]Vf^{2}[/tex]+mg[tex]Yf_{}[/tex]
Initially the altitude of vaulter is zero i-e [tex]Yi=0_{}[/tex] ==> PEi = mg [tex]Yi_{}[/tex]= mg×0=0
==>1/2 m[tex]Vi^{2}[/tex]= /2 m [tex]Vf^{2}[/tex]+mg[tex]Yf_{}[/tex]
==> m[tex]Vi^{2}[/tex]=m [tex]Vf^{2}[/tex]+2mg[tex]Yf_{}[/tex]
cancelling m
==> [tex]Vi^{2}[/tex]= [tex]Vf^{2}[/tex]+2g[tex]Yf_{}[/tex]
==> [tex]Vi^{2}[/tex]- [tex]Vf^{2}[/tex]=2g[tex]Yf_{}[/tex]
==> [tex]Yf_{}[/tex]=[tex]\frac{Vi^{2}-Vf^{2} }{2g}[/tex]
==> = [tex]=\frac{11^{2 }-1.1^{2} }{2 (9.8)}[/tex]
==> [tex]Yf_{}[/tex]=[tex]=\frac{119.79}{19.6}[/tex]=6.11N
