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author | prashantsinalkar | 2017-10-10 12:27:19 +0530 |
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committer | prashantsinalkar | 2017-10-10 12:27:19 +0530 |
commit | 7f60ea012dd2524dae921a2a35adbf7ef21f2bb6 (patch) | |
tree | dbb9e3ddb5fc829e7c5c7e6be99b2c4ba356132c /3845/CH10/EX10.14/Ex10_14.sce | |
parent | b1f5c3f8d6671b4331cef1dcebdf63b7a43a3a2b (diff) | |
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diff --git a/3845/CH10/EX10.14/Ex10_14.sce b/3845/CH10/EX10.14/Ex10_14.sce new file mode 100644 index 000000000..6dd3dffa2 --- /dev/null +++ b/3845/CH10/EX10.14/Ex10_14.sce @@ -0,0 +1,14 @@ +//Example 10.14
+omega=0.8;//Angular velocity (rev/s)
+I=2.34;//Moment of inertia when arms are extended (kg.m^2)
+I_prime=0.363;//Moment of inertia when arms are close to the body (kg.m^2)
+m=60;//Mas of the skater (kg)
+omega_prime=I/I_prime*omega;//Angular velocity when arms are pulled in (rev/s)
+printf('a.Angular velocity when arms are pulled in = %0.2f rev/s',omega_prime)
+KE_rot=(1/2)*I*(omega*2*%pi)^2;//Rotational kinetic energy when arms are extended (J), also convert omega to units of rad/s
+printf('\nb.Initial rotational kinetic energy (extended arms) = %0.1f J',KE_rot)
+KE_rot_prime=(1/2)*I_prime*(omega_prime*2*%pi)^2;//Rotational kinetic energy when arms are pulled in (J), also convert omega to units of rad/s
+printf('\n Final rotational kinetic energy (arms pulled in) = %0.1f J',KE_rot_prime)
+//Answer varies due to round off error
+//Openstax - College Physics
+//Download for free at http://cnx.org/content/col11406/latest
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