Drsoccerball
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HSC 2015 MX1 Marathon (archive) (2 Viewers)
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davidgoes4wce
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Re: HSC 2015 3U Marathon
From the Normanhurst trials 2015.
Q4. Find the acute angle between the tangents to the graphs y=x and y=x^3 at the point (1,1).
A) 27 degrees B) 30 degrees C) 45 degrees D) 63 degrees
This is their solution:
I had a value of 29.52 degrees, which is closer to 30 degrees.
From the Normanhurst trials 2015.
Q4. Find the acute angle between the tangents to the graphs y=x and y=x^3 at the point (1,1).
A) 27 degrees B) 30 degrees C) 45 degrees D) 63 degrees
This is their solution:
I had a value of 29.52 degrees, which is closer to 30 degrees.
rand_althor
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davidgoes4wce
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rand_althor
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Re: HSC 2015 3U Marathon
Well when I use my calculator to find
, I get 
. Are you sure you entered it into your calculator correctly?
Well when I use my calculator to find
davidgoes4wce
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Re: HSC 2015 3U Marathon
OK there is my problem I was using 'GRAD'.Well when I use my calculator to find
rand_althor
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Re: HSC 2015 3U Marathon
Okay I think I've figured out your problem. Your calculator isn't in degrees, it is in gradians.
EDIT: Nevermind didn't see your post.
Okay I think I've figured out your problem. Your calculator isn't in degrees, it is in gradians.
EDIT: Nevermind didn't see your post.
davidgoes4wce
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Re: HSC 2015 3U Marathon
I understood part (i) and part (ii)
The answer for (i) was ln 2 and the answer for (ii) was 25/36
I have no idea on where to start on part (iii) any suggestions?
I understood part (i) and part (ii)
The answer for (i) was ln 2 and the answer for (ii) was 25/36
I have no idea on where to start on part (iii) any suggestions?
Carrotsticks
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Re: HSC 2015 3U Marathon
So ln(2) ~ 25/36 (assuming your calculation is correct)
e^25/36 ~ 2
e ~ ....
The actual value, via integration, is ln(2).
I understood part (i) and part (ii)
The answer for (i) was ln 2 and the answer for (ii) was 25/36
I have no idea on where to start on part (iii) any suggestions?
So ln(2) ~ 25/36 (assuming your calculation is correct)
e^25/36 ~ 2
e ~ ....
davidgoes4wce
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Re: HSC 2015 3U Marathon
OK thanks I understand that now
OK thanks I understand that now
davidgoes4wce
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Re: HSC 2015 3U Marathon
Any ideas on how often Simpsons Rule pops up in the 2 Unit or 3 Unit exams? I must admit its just a formula that has come back to me today and tutoring my student last night, I guess thats why exam papers are good because it brushes off the cobwebs after not learning it for a period of time.
Any ideas on how often Simpsons Rule pops up in the 2 Unit or 3 Unit exams? I must admit its just a formula that has come back to me today and tutoring my student last night, I guess thats why exam papers are good because it brushes off the cobwebs after not learning it for a period of time.
Drsoccerball
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Carrotsticks
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davidgoes4wce
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Re: HSC 2015 3U Marathon
had a bit of a problem with the last part (iv)
had a bit of a problem with the last part (iv)
davidgoes4wce
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Re: HSC 2015 3U Marathon
^^^^^^^This question was the last question in the Normanhurst Trials 2015
My thinking was to do the derivative and then plot it on a graph but the solution has a totally different solution to me.
^^^^^^^This question was the last question in the Normanhurst Trials 2015
My thinking was to do the derivative and then plot it on a graph but the solution has a totally different solution to me.
davidgoes4wce
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Re: HSC 2015 3U Marathon
Here is my graph of the velocity function , my thinking was the highest velocity occurs at t=3pi/4
Here is my graph of the velocity function , my thinking was the highest velocity occurs at t=3pi/4
Re: HSC 2015 3U Marathon
You'd better read the question again - it's not asking for the highest velocity.
Here is my graph of the velocity function , my thinking was the highest velocity occurs at t=3pi/4
davidgoes4wce
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Re: HSC 2015 3U Marathon
Acceleration is the greatest at the ends of a function. I should do dv/dt=0, is where acceleration is greatest. Hence, t=pi/2 is the time when velocity is increasing most rapidly.
Acceleration is the greatest at the ends of a function. I should do dv/dt=0, is where acceleration is greatest. Hence, t=pi/2 is the time when velocity is increasing most rapidly.
rand_althor
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Re: HSC 2015 3U Marathon
What do you mean by ends of a function? Also dv/dt is the rate of change of velocity, aka acceleration, so dv/dt=0 would give you where acceleration is zero, not where it is greatest. You do have the right answer though.
davidgoes4wce
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Re: HSC 2015 3U Marathon
At the end points the restorative force and acceleration are at a maximum.
My bad I should have said the end points in Simple harmonic Motion (i.e where the particle turns)
At the end points the restorative force and acceleration are at a maximum.
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