• Best of luck to the class of 2024 for their HSC exams. You got this!
    Let us know your thoughts on the HSC exams here
  • YOU can help the next generation of students in the community!
    Share your trial papers and notes on our Notes & Resources page
MedVision ad

HSC 2015 mechanics discussion (2 Viewers)

Joined
Jan 22, 2015
Messages
113
Gender
Male
HSC
2015
For the youngs module question I think it's a trick question as it asked for GPa and KN/mm^2 is MPa and I got 202MPa so I put in 0.202 GPa

Forgot to put :1 do you think we. Will lose a mark?
I made same mistake as you for :1 thing, who knows :c Hoping for the best, even though we won't ever get to know if we did or didn't get the mark.
And lol, I just converted all my units into m and N rather than mm or kN so I got like 202 GPA
 

keepLooking

Active Member
Joined
Aug 25, 2014
Messages
477
Gender
Male
HSC
2015
Assuming this diagram is correct, and let the roller joint be A, and pin joint be B, then:
I'm not sure whether that 1200 is 1.5m away or 3m away. I remember getting 3450 for the roller though.



Just for you D94.
 

D94

New Member
Joined
Oct 5, 2011
Messages
4,423
Gender
Male
HSC
N/A
I'm not sure whether that 1200 is 1.5m away or 3m away. I remember getting 3450 for the roller though.
yeah the diagram above was wrong, the 1.2kN force was 1.5m, so, 3450N is the correct answer.
 

D94

New Member
Joined
Oct 5, 2011
Messages
4,423
Gender
Male
HSC
N/A
For the winch question,

You should be able to draw the FBD, if not, then it's unlikely you got the next part correct....

So,

For the horizontal plane (parallel to the surface): T - Ff - mgsin25 = 0
For the vertical plane (perpend. to the surface): N - mgcos25 = 0 => N = mgcos25
Also, Ff = uN.

So, solving this, T - Ff - mgsin25 = 0

T - uN - mgsin25 = 0
T - u(mgcos25) - mgsin25 = 0

T = u(mgcos25) + mgsin25 = 1041.77N (where g = 10N)


For the 2nd winch question, taking moments about the centre = 0,
910(100) - F(350) = 0
So, F = 260N

But this is a frictionless pivot, so taking efficiency into account, Fmin = F/n = 260/0.85 = 305.88N

Alternatively, you could have divided F by n to begin with.
 

D94

New Member
Joined
Oct 5, 2011
Messages
4,423
Gender
Male
HSC
N/A
For the youngs module question I think it's a trick question as it asked for GPa and KN/mm^2 is MPa and I got 202MPa so I put in 0.202 GPa

Forgot to put :1 do you think we. Will lose a mark?
N/mm^2 is MPa.

Answer is 206.25GPa. You can just use 18kN and 0.5mm since it's all a linear relationship.
 

keepLooking

Active Member
Joined
Aug 25, 2014
Messages
477
Gender
Male
HSC
2015
For the winch question,

You should be able to draw the FBD, if not, then it's unlikely you got the next part correct....

So,

For the horizontal plane (parallel to the surface): T - Ff - mgsin25 = 0
For the vertical plane (perpend. to the surface): N - mgcos25 = 0 => N = mgcos25
Also, Ff = uN.

So, solving this, T - Ff - mgsin25 = 0

T - uN - mgsin25 = 0
T - u(mgcos25) - mgsin25 = 0

T = u(mgcos25) + mgsin25 = 1041.77N (where g = 10N)


For the 2nd winch question, taking moments about the centre = 0,
910(100) - F(350) = 0
So, F = 260N

But this is a frictionless pivot, so taking efficiency into account, Fmin = F/n = 260/0.85 = 305.88N

Alternatively, you could have divided F by n to begin with.
Okay, that is all five marks lost then. ;[
 

Users Who Are Viewing This Thread (Users: 0, Guests: 2)

Top