Torque on crane arm and load limit

AI Thread Summary
The discussion centers on calculating the maximum torque a crane can withstand based on its arm length and load angle. For part (a), the maximum torque is determined using the cosine of the angle with the horizontal, leading to a corrected value of approximately 6342.93 N m instead of the original calculation. In part (b), the correct angle for calculations is also clarified, emphasizing the use of cosine rather than sine for torque calculations. Participants discuss the importance of understanding the relationship between the angles and the forces involved in the torque equation. Overall, the conversation highlights the necessity of proper trigonometric application in solving torque-related problems.
syncstarr
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hello-

i had this problem: the arm of a crane is 15.0 m long and makes an angle of 20.0 degrees with the horizontal. assume that the maximum load for the crane is limited by the amount of torque the load produces around the base of the arm.
a) what is the mximum torque the crane can withstand if the maximum load is 450 N?
b) what is the maximum load for this crane at an angle of 40.0 degrees.

my answer/work: a) max=450 N t=?
t=fd
=(15)(450)
(6300)(sin 20)
2154.73 N m​

b) t=fd(sin 40)
2154.73=15d(sin40)
divide by 15d(sin 40) on both sides
92.34=d
92.34N

is this correct? are my answers and work correct? please let me know by commenting on this post. thank you:smile:
 
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syncstarr said:
hello-

i had this problem: the arm of a crane is 15.0 m long and makes an angle of 20.0 degrees with the horizontal. assume that the maximum load for the crane is limited by the amount of torque the load produces around the base of the arm.
a) what is the mximum torque the crane can withstand if the maximum load is 450 N?
b) what is the maximum load for this crane at an angle of 40.0 degrees.

my answer/work: a) max=450 N t=?
t=fd
=(15)(450)
(6300)(sin 20)
2154.73 N m​

Firstly, note that you require cos20, not sin20 (check your diagram!)
I'm not sure how you've gone from the 2nd to the 3rd line. It should read t=fd=450*cos(20)*15

b) t=fd(sin 40)
2154.73=15d(sin40)
divide by 15d(sin 40) on both sides
92.34=d
92.34N

Once again, you have the wrong angle. However, your method is correct, apart from the bit in bold.. you should only divide by 15 sin(40)! (although, I must reiterate; this is not the correct angle)
 
first off i want to thank you for taking the time to try to help me out.
secondly so the answer for part a should be 6342.93 N m?? why do you use cos instead of sin?
thirdly i do not understand what you are talking about in part b. what angle would i use? am i suppose to use cos instead of sin?

-confussed
 
syncstarr said:
first off i want to thank you for taking the time to try to help me out.
You're welcome.
secondly so the answer for part a should be 6342.93 N m?? why do you use cos instead of sin?
I've not done the calculation, but if you've used the right angle then this should be correct. If you imagine the diagram, you have the angle between the crane and the horizontal. Now the load will be hanging vertically downwards, and we want the angle between this and the normal to the crane. This angle is equal to the angle the crane makes with the horizontal (try it for yourself, using simple trig). Thus, since we are resolving through this angle, we require cos(20).
thirdly i do not understand what you are talking about in part b. what angle would i use? am i suppose to use cos instead of sin?
Sorry, that wasn't very clear- it was late last night when I typed the response! We require cos(angle) for the same reasoning as above.
 
thank you again that made a lot more sense and i was able to get an answer. thank you!
 

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