-
Looking for HSC notes and resources? Check out our Notes & Resources page
help please (1 Viewer)
- Thread starter SEAKING
- Start date
a) pi x 1.4 x 3.9 = 17.15309589 = 17.1 (1dp)
b) (8 x 15) - (pi x 4 x 7.5) = 25.75222039 = 25.8 (1dp)
c) pi(5.5^2-2.5^2) = 75.39822369 = 75.4 (1dp)
d) sorry no idea.
e) 80/360pi(10^2-7^2) = 35.60471674 = 35.6 (1dp)
f) (9 x 5) - ((4.2 x 2.2) + (pi x 1.1^2)) (theres 2 semi circles so only need to do 1 total circle. u also need to divide 2.2 in order to get the radius. redzenith did two circle and didnt divide it.
b) (8 x 15) - (pi x 4 x 7.5) = 25.75222039 = 25.8 (1dp)
c) pi(5.5^2-2.5^2) = 75.39822369 = 75.4 (1dp)
d) sorry no idea.
e) 80/360pi(10^2-7^2) = 35.60471674 = 35.6 (1dp)
f) (9 x 5) - ((4.2 x 2.2) + (pi x 1.1^2)) (theres 2 semi circles so only need to do 1 total circle. u also need to divide 2.2 in order to get the radius. redzenith did two circle and didnt divide it.
yosemite sam
Member
- Joined
- Nov 12, 2006
- Messages
- 356
- Gender
- Female
- HSC
- 2007
wouldnt e be pi 15^2 - pi 7.5^2
Mark576
Feel good ...
- Joined
- Jul 6, 2006
- Messages
- 515
- Gender
- Male
- HSC
- 2008
(d) is drawn terribly, it seems as if it's supposed to represent two circles, the unshaded circle having a diameter of 15mm. If so it's simple to find the area of the shaded region, just use A = pi ( R^2 - r^2), where R and r are the respective radii of the larger and smaller circle.
Last edited: