maxima / minima (1 Viewer)

ozidolroks

Member
Joined
Feb 26, 2008
Messages
36
Gender
Female
HSC
2009
can some please help me with these questions ?

18. A picture frame has a border of 2cm at the top and bottom and 3cm at the sides. If the total area of the border is to be 100cm ^2, find the maximum area of the frame.

19. A 3m piece of wire is cut into two pieces and bent around to form a square and a circle. Find the size of the two lengths, correct to 2 decimal places, that will make the total area of the square and circle a minimum.

20. Two cars are travelling along roads that intersect at right angles to one another. One starts 200 km away and travels towards the intersection at 80km/ hour, while the other travels at 120 km away and travels towards the intersection at 60km/ hour.

Show that their distance apart after t hours is given by

d^2=10 000t^2- 46 400t + 54 400 and hence find their minimum distance apart.

Thanks
 

bored of sc

Active Member
Joined
Nov 10, 2007
Messages
2,314
Gender
Male
HSC
2009
Yes. In due time. Draw diagrams. They make it easier to see how to approach the question. It's about making a substitution to eliminate a variable, differentiating, checking derivates and subbing back into equations.
 

addikaye03

The A-Team
Joined
Nov 16, 2006
Messages
1,267
Location
Albury-Wodonga, NSW
Gender
Male
HSC
2008
can some please help me with these questions ?
20. Two cars are travelling along roads that intersect at right angles to one another. One starts 200 km away and travels towards the intersection at 80km/ hour, while the other travels at 120 km away and travels towards the intersection at 60km/ hour.

Show that their distance apart after t hours is given by

d^2=10 000t^2- 46 400t + 54 400 and hence find their minimum distance apart.

Thanks
The first two just require diagrams (as stated) and careful thought.

Q3)D1=200-80t
D2=120-60t

we know have 2 expressions for the distance and both have the same variable. Also, since they are travelling perpendicular to eachother, u can think of that as one travelling along the x-axis and the other along the y-axis ( if u know what i mean). So we can use a coordinate geom. formula

d=rt(x2-x1)^2+(y2-y1)^2

d^2=(x2-x1)^2+(y2-y1)^2
d^2=(200-80t)^2+(120-60t)2...by expanding both terms and collecting like terms.

d^2=10 000t^2- 46 400t + 54 400 #

d(d^2)/dt=20000t-46400... S.P occurs when d/dt=0

20000t=46400
t=2.32

Check that theirs a change in gradient.
Since at t=2.32, d/dt=0 when t=2, d/dt>0 and when t=3, d/dt<0 therefore Min T.P.

N.B It asks for there distance, so u resub into the original equation.
d=24km
 

Users Who Are Viewing This Thread (Users: 0, Guests: 1)

Top