HSC Physics Marathon 2013-2015 Archive (2 Viewers)

Status
Not open for further replies.

Anvaeon

New Member
Joined
Oct 15, 2012
Messages
5
Gender
Female
HSC
2013
Re: 2013 HSC physics marathon

Q: Calculate the effective value of 'g' at the equator. (Given g=9.81ms^-2)
A. The equation to find the value of 'g' is ge= GM/r^2. The radius of the Earth is only slightly bulged at the equator (and flattened at the poles), resulting in only a slight increase in radius and variation from the given "g=9.81ms^-2". The resulting acceleration due to gravity at the equator is about 9.782ms^-2 (sea level).

Q. Describe how the motor effect is used in a loudspeaker. [3 marks]
 

someth1ng

Retired Nov '14
Joined
Sep 18, 2010
Messages
5,558
Location
Adelaide, Australia
Gender
Male
HSC
2012
Uni Grad
2021
Re: 2013 HSC physics marathon

A. The equation to find the value of 'g' is ge= GM/r^2. The radius of the Earth is only slightly bulged at the equator (and flattened at the poles), resulting in only a slight increase in radius and variation from the given "g=9.81ms^-2". The resulting acceleration due to gravity at the equator is about 9.782ms^-2 (sea level).

Q. Describe how the motor effect is used in a loudspeaker. [3 marks]
It clearly said "calculate" - an response like that would get 0.
 

iBibah

Well-Known Member
Joined
Jun 13, 2012
Messages
1,374
Gender
Male
HSC
2013
Re: 2013 HSC physics marathon

It clearly said "calculate" - an response like that would get 0.
This.

Radius of earth = 6378km (probably should have given this)

Therefore velocity at equator: v = (2*pi*6378000)/24*60*60

Centripetal acceleration = v^2/r = 462.82^2/6378000=0.03373 ms^-2

Therefore effective value of 'g' at the equator is reduced by 0.033 ms^-2, and the resultant effective value of 'g' is 9.777 ms^-2.
 

Fizzy_Cyst

Owner @ Sigma Science + Phys Goat
Joined
Jan 14, 2011
Messages
1,212
Location
Parramatta, NSW
Gender
Male
HSC
2001
Uni Grad
2005
re: HSC Physics Marathon Archive

Nice solution Habibi!

New Question:

A satellite is launched from the equator to a stable orbit of altitude 600km. Determine the work done on the satellite.
 

someth1ng

Retired Nov '14
Joined
Sep 18, 2010
Messages
5,558
Location
Adelaide, Australia
Gender
Male
HSC
2012
Uni Grad
2021
re: HSC Physics Marathon Archive

Nice solution Habibi!

New Question:

A satellite is launched from the equator to a stable orbit of altitude 600km. Determine the work done on the satellite.
That's just calculating the change in GPE, isn't it?
 
Last edited:

Sy123

This too shall pass
Joined
Nov 6, 2011
Messages
3,730
Gender
Male
HSC
2013
re: HSC Physics Marathon Archive



 

Fizzy_Cyst

Owner @ Sigma Science + Phys Goat
Joined
Jan 14, 2011
Messages
1,212
Location
Parramatta, NSW
Gender
Male
HSC
2001
Uni Grad
2005
re: HSC Physics Marathon Archive

If Power loss = v^2/r, then why do we transmit electricity at high voltage. Should this not increase power loss? Explain.
 

Sy123

This too shall pass
Joined
Nov 6, 2011
Messages
3,730
Gender
Male
HSC
2013
re: HSC Physics Marathon Archive

I'm pretty sure it is, isn't it?
If we define work properly, let point A be on the equator and point B be the point 600km away:



Where F is force, and x is the distance.

By Newton's Law of Universal Gravitation:









Where E_p is the gravitational potential energy.
 

study1234

Member
Joined
Oct 6, 2011
Messages
181
Gender
Male
HSC
2015
re: HSC Physics Marathon Archive

You should write it as P=I^2 R. Thus since power is proportional to the square of current, there is less power loss when there is low current. Since V=P/I, for a low current, there is a high voltage. Thus, a step-up transformer is used to increase the voltage for minimal power/energy loss in transmission lines.
 

Fizzy_Cyst

Owner @ Sigma Science + Phys Goat
Joined
Jan 14, 2011
Messages
1,212
Location
Parramatta, NSW
Gender
Male
HSC
2001
Uni Grad
2005
re: HSC Physics Marathon Archive

I'm pretty sure it is, isn't it?
If we define work properly, let point A be on the equator and point B be the point 600km away:



Where F is force, and x is the distance.

By Newton's Law of Universal Gravitation:









Where E_p is the gravitational potential energy.
You are making an assumption :)
 

bleakarcher

Active Member
Joined
Jul 8, 2011
Messages
1,509
Gender
Male
HSC
2013
re: HSC Physics Marathon Archive

Nice solution Habibi!

New Question:

A satellite is launched from the equator to a stable orbit of altitude 600km. Determine the work done on the satellite.
Is it the change in the mechanical energy of the satellite?
 

Fizzy_Cyst

Owner @ Sigma Science + Phys Goat
Joined
Jan 14, 2011
Messages
1,212
Location
Parramatta, NSW
Gender
Male
HSC
2001
Uni Grad
2005
re: HSC Physics Marathon Archive

Is it the change in the mechanical energy of the satellite?
Yes :)

Not only does work need to be done to lift it from the Earth to 600km altitude, work must also be done to make its speed increase to the orbital velocity of an orbit of alitutude 600km.

Think about it, change in Ep is just saying 'lifting it from the surface of Earth and placing at a point 600km away', whereas this satellite is ORBITING, not just sitting there, hence it needs more energy and the amount of extra energy it needs is equal to the change in Ek of the satellite :)
 

someth1ng

Retired Nov '14
Joined
Sep 18, 2010
Messages
5,558
Location
Adelaide, Australia
Gender
Male
HSC
2012
Uni Grad
2021
re: HSC Physics Marathon Archive

Ahh, forgot about that - that's why I'm not gonna be majoring in Physics :p
 

Sy123

This too shall pass
Joined
Nov 6, 2011
Messages
3,730
Gender
Male
HSC
2013
re: HSC Physics Marathon Archive





 

yasminee96

Active Member
Joined
Sep 8, 2012
Messages
346
Gender
Female
HSC
2013
re: HSC Physics Marathon Archive

q/m = 1 x10^5
mv^2 /r = qvB (theta = 90degrees)
q/m = v/rB

v/r = q/m x B
v/r =1 x 10^5 x 10
r/v = 1 x 10^-6
distance/speed = time
therefore time = 1x10^-6 seconds



maybe?
 

yasminee96

Active Member
Joined
Sep 8, 2012
Messages
346
Gender
Female
HSC
2013
Re: 2013 HSC physics marathon

The slingshot effect, defined as the increase in velocity given to a spacecraft because it enters the gravitational field of a planet as it passes by, is a technque used by Space agencies in accordance with physicists in order to take full advantage of a planets rotational motion in order to increase a particle's ( spacecraft) final speed.
The slingshot effect is used by many spacecraft which travel within and beyond the solar system.
A spacecraft passes close to a a planet such that its gravity pulls the spacecraft into an arc or circular motion.It leaves with the same speed relative to the planet, but its speed is increased when viewed from an alternate frame of reference such as the Sun.
The acquired speed is large enough so that the spacecraft can travel away from the planet.
Comparatively, a ball thrown from a person who is stationary would have speeds less than a ball thrown from a person who is running at an increasing or stationary speed. Thus the slingshot effect, also known as gravity assist trajectory is used in order to attain a significant change in speed and direction despite the very little expenditure of fuel, improving flight efficiency.
Should possibly consider writing this as "increase in velocity, relative to the Sun", because relative to the planet it passes, no change in velocity is experienced. :)
 

Sy123

This too shall pass
Joined
Nov 6, 2011
Messages
3,730
Gender
Male
HSC
2013
re: HSC Physics Marathon Archive

q/m = 1 x10^5
mv^2 /r = qvB (theta = 90degrees)
q/m = v/rB

v/r = q/m x B
v/r =1 x 10^5 x 10
r/v = 1 x 10^-6
distance/speed = time
therefore time = 1x10^-6 seconds



maybe?
That looks correct to me, nice work.
 

psychotropic

Member
Joined
Feb 24, 2013
Messages
42
Gender
Male
HSC
2013
re: HSC Physics Marathon Archive

Almost a correct solution

However, for one complete revolution the distance is r2pi.
It's a minor error, probs only lose 2 marks
Although in the future try not to just use formulae without thinking:smile:
 

anomalousdecay

Premium Member
Joined
Jan 26, 2013
Messages
5,766
Gender
Male
HSC
2013
re: HSC Physics Marathon Archive

q/m = 1 x10^5
mv^2 /r = qvB (theta = 90degrees)
q/m = v/rB

v/r = q/m x B
v/r =1 x 10^5 x 10
r/v = 1 x 10^-6
distance/speed = time
therefore time = 1x10^-6 seconds



maybe?
isn't it :

t=2(r)(pi)/v

t= 2(10^-4)(pi) = 6.2831*10^-4 seconds

??
 
Status
Not open for further replies.

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

Top