Answer:(10.69, 11.436)
Explanation:
Given
initial height of ball is 2 m
height of basket is 3.05 m
Launching angle[tex]=40^{\circ}[/tex]
[tex]x =12\pm 0.27[/tex]
y=1.05
equation of trajectory of ball is given by
[tex]y=xtan\theta -\frac{gx^2}{2u^2cos^2\theta }[/tex]
for x=12.27
[tex]1.05=12.27\times tan40-\frac{g12.27^2}{2u^2cos^{2}40 }[/tex]
u=10.69
for x=11.73
[tex]1.05=11.73\times tan40-\frac{g11.73^2}{2u^2cos^{2}40 }[/tex]
u=11.436 m/s
Thus range of speed is (10.69, 11.436)
