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HSC 2014 Maths Marathon (archive) (1 Viewer)
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Re: HSC 2014 2U Marathon
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Grammar error for part ii cos i speak no english
Ceebs latexPost any questions within the scope and level of Mathematics (2 unit). Once a question is posted, it needs to be answered before the next question is raised.
I'll start you guys off
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Grammar error for part ii cos i speak no english
Rhinoz8142
Well-Known Member
Re: HSC 2014 2U Marathon
i) I am not sure if I am correct but I think
L = 5
5 = 150 - e^t
145 = -e^t
In(145) = t
t= 4.976733742
so I think t= 5
I think is wrong, could you correct me ?
ii) i am not sure
i) I am not sure if I am correct but I think
L = 5
5 = 150 - e^t
145 = -e^t
In(145) = t
t= 4.976733742
so I think t= 5
I think is wrong, could you correct me ?
ii) i am not sure
Re: HSC 2014 2U Marathon
Why is L=5, you should first find the equation for P, then equate with the given equation for L, so u are w r o n g
Last edited:
Rhinoz8142
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integral95
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Re: HSC 2014 2U Marathon
Hint
Hint
trungduong12
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hi im trash
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Re: HSC 2014 2U Marathon
lions = 150-e^t
dt/dp = 2/p (rearranged)
t = 2ln(p)+c
c = -2ln5
t=2ln(p/5)
therefore p=5e^(t/2)
5e^(t/2) = 150-e^t
set e^(t/2) as "a"
5a = 150-a^2
a^2 +5a -150
therefore a = 10, -15
e(t/2) = 10, -15
but we cannot use the negative 15 because we cannot "ln" a negative number
therefore t = 2ln10
for the second one, i dont really wanna do it D: i dont know how to draw graphs on the forum.
hoping my answer is right)
edit: im not sure why P = 5e^->(t/10) though
for i) t=0 p=5Ceebs latex
Next question
Grammar error for part ii cos i speak no english
lions = 150-e^t
dt/dp = 2/p (rearranged)
t = 2ln(p)+c
c = -2ln5
t=2ln(p/5)
therefore p=5e^(t/2)
5e^(t/2) = 150-e^t
set e^(t/2) as "a"
5a = 150-a^2
a^2 +5a -150
therefore a = 10, -15
e(t/2) = 10, -15
but we cannot use the negative 15 because we cannot "ln" a negative number
therefore t = 2ln10
for the second one, i dont really wanna do it D: i dont know how to draw graphs on the forum.
hoping my answer is right
) edit: im not sure why P = 5e^->(t/10) though
Last edited:
Re: HSC 2014 2U Marathon
(i) 1/2ln(17)
(ii) Using trapezoidal rule with 5 function values;
1/2ln(17)≈1/2(4/17 + 1 + 7/5)
ln(17)≈224/85
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Question:
At the beginning of each year Danny invests in his superannuation. His account pays 5.6% p.a. annually compounding interest. Danny's first investment was $1000 and each of following year his investment was 20% more than the previous year's. Danny continued his investment for 30 years. That is, until the end of the year following his 30th deposit. What percentage of the total value of the account at the end of the 30 years was interest? Express your answer correct to the nearest whole percentage.
(i) 1/2ln(17)
(ii) Using trapezoidal rule with 5 function values;
1/2ln(17)≈1/2(4/17 + 1 + 7/5)
ln(17)≈224/85
-----------------------------------------------------------------------------------------
Question:
At the beginning of each year Danny invests in his superannuation. His account pays 5.6% p.a. annually compounding interest. Danny's first investment was $1000 and each of following year his investment was 20% more than the previous year's. Danny continued his investment for 30 years. That is, until the end of the year following his 30th deposit. What percentage of the total value of the account at the end of the 30 years was interest? Express your answer correct to the nearest whole percentage.
Rhinoz8142
Well-Known Member
Re: HSC 2014 2U Marathon
du/dx = 2x
du = 2x dx
x=4
4^2 +1
= 17
x= 0
0^2 +1
= 1
1/2( 17,1{1/u du )
1/2 (17,1[In u])
1/2 ([In 17] - [In 0])
Ans = 1/2(In17)
ii
I cant remember how to do the traps rule need to revise that.
Let u= x^2 +1 Find$ \ \int_0^4 \frac{x}{x^2+1} \ dx \ \ \ \fbox{2} \\ \\ $ii) Using the trapezium rule on the integral in part (i), estimate the value of$ \ \ln (17) \ \ \ \fbox{3})
du/dx = 2x
du = 2x dx
x=4
4^2 +1
= 17
x= 0
0^2 +1
= 1
1/2( 17,1{1/u du )
1/2 (17,1[In u])
1/2 ([In 17] - [In 0])
Ans = 1/2(In17)
ii
I cant remember how to do the traps rule need to revise that.
Carrotsticks
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Re: HSC 2014 2U Marathon
This question is fallacious because P = 0 always.
Grammar error for part ii cos i speak no english
Carrotsticks
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aDimitri
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Re: HSC 2014 2U Marathon
substitution is a 3U method. i'm actually not sure how to do this question using 2U methods.
RealiseNothing
what is that?It is Cowpea
Re: HSC 2014 2U Marathon
The top is just the derivative of the bottom, therefore log function.
aDimitri
i'm the cook
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