371948 An object takes \(\mathbf{n}\) times as much time as to slide down a \(45^{\circ}\) rough inclined plane as it takes to slide down perfectly smooth inclined planned of the same inclination. The coefficient of kinetic friction between the object and the rough incline is given by
371951
A body of mass \(m\) slides down along a frictionless inclined plane from height ' \(h\) ' and just completes motion in a vertical circle of radius \(2 \mathrm{~m}\) after reaching the bottom. What is the value of \(h\) ?
[Use \(\mathrm{g}=\mathbf{1 0 \mathrm { m } / \mathrm { s } ^ { 2 }}\) ]
371952 A cyclist is riding with a speed of \(36 \mathrm{~km} / \mathrm{h}\). As he approaches a circular turn on the road of radius 50, he applies brakes and reduces his speed at the constant rate of \(0.5 \mathrm{~m} / \mathrm{s}\) every second. The magnitude and direction of the net acceleration of the cyclist on the circular turn respectively are
371948 An object takes \(\mathbf{n}\) times as much time as to slide down a \(45^{\circ}\) rough inclined plane as it takes to slide down perfectly smooth inclined planned of the same inclination. The coefficient of kinetic friction between the object and the rough incline is given by
371951
A body of mass \(m\) slides down along a frictionless inclined plane from height ' \(h\) ' and just completes motion in a vertical circle of radius \(2 \mathrm{~m}\) after reaching the bottom. What is the value of \(h\) ?
[Use \(\mathrm{g}=\mathbf{1 0 \mathrm { m } / \mathrm { s } ^ { 2 }}\) ]
371952 A cyclist is riding with a speed of \(36 \mathrm{~km} / \mathrm{h}\). As he approaches a circular turn on the road of radius 50, he applies brakes and reduces his speed at the constant rate of \(0.5 \mathrm{~m} / \mathrm{s}\) every second. The magnitude and direction of the net acceleration of the cyclist on the circular turn respectively are
371948 An object takes \(\mathbf{n}\) times as much time as to slide down a \(45^{\circ}\) rough inclined plane as it takes to slide down perfectly smooth inclined planned of the same inclination. The coefficient of kinetic friction between the object and the rough incline is given by
371951
A body of mass \(m\) slides down along a frictionless inclined plane from height ' \(h\) ' and just completes motion in a vertical circle of radius \(2 \mathrm{~m}\) after reaching the bottom. What is the value of \(h\) ?
[Use \(\mathrm{g}=\mathbf{1 0 \mathrm { m } / \mathrm { s } ^ { 2 }}\) ]
371952 A cyclist is riding with a speed of \(36 \mathrm{~km} / \mathrm{h}\). As he approaches a circular turn on the road of radius 50, he applies brakes and reduces his speed at the constant rate of \(0.5 \mathrm{~m} / \mathrm{s}\) every second. The magnitude and direction of the net acceleration of the cyclist on the circular turn respectively are
371948 An object takes \(\mathbf{n}\) times as much time as to slide down a \(45^{\circ}\) rough inclined plane as it takes to slide down perfectly smooth inclined planned of the same inclination. The coefficient of kinetic friction between the object and the rough incline is given by
371951
A body of mass \(m\) slides down along a frictionless inclined plane from height ' \(h\) ' and just completes motion in a vertical circle of radius \(2 \mathrm{~m}\) after reaching the bottom. What is the value of \(h\) ?
[Use \(\mathrm{g}=\mathbf{1 0 \mathrm { m } / \mathrm { s } ^ { 2 }}\) ]
371952 A cyclist is riding with a speed of \(36 \mathrm{~km} / \mathrm{h}\). As he approaches a circular turn on the road of radius 50, he applies brakes and reduces his speed at the constant rate of \(0.5 \mathrm{~m} / \mathrm{s}\) every second. The magnitude and direction of the net acceleration of the cyclist on the circular turn respectively are
371948 An object takes \(\mathbf{n}\) times as much time as to slide down a \(45^{\circ}\) rough inclined plane as it takes to slide down perfectly smooth inclined planned of the same inclination. The coefficient of kinetic friction between the object and the rough incline is given by
371951
A body of mass \(m\) slides down along a frictionless inclined plane from height ' \(h\) ' and just completes motion in a vertical circle of radius \(2 \mathrm{~m}\) after reaching the bottom. What is the value of \(h\) ?
[Use \(\mathrm{g}=\mathbf{1 0 \mathrm { m } / \mathrm { s } ^ { 2 }}\) ]
371952 A cyclist is riding with a speed of \(36 \mathrm{~km} / \mathrm{h}\). As he approaches a circular turn on the road of radius 50, he applies brakes and reduces his speed at the constant rate of \(0.5 \mathrm{~m} / \mathrm{s}\) every second. The magnitude and direction of the net acceleration of the cyclist on the circular turn respectively are