Math Olympiad | Can you find the Blue region area?

Math Olympiad | Can you find the Blue region area? | (Step-by-step explanation) |

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Learn how to find the Blue shaded region area. Quarter circle with radius 8. Important Geometry and Algebra skills are also explained: Pythagorean Theorem; area of a circle formula; area of a triangle formula. Step-by-step tutorial by PreMath.com
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Step-by-step tutorial by PreMath.com
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Пікірлер: 62

@walcholjacob4259 Жыл бұрын

Nice one

@PreMath Жыл бұрын

Thanks for watching You are awesome. Keep it up 👍

@marioalb9726 Жыл бұрын

Radius of circle: r = R cos 45° = 8 / √2 = √32 r = 5,657 cm Area circle : A = πr² = 32π cm² Area circular segment: A₂ = ½ R² (α - sin α) A₂ = ½ 8² (π/2- sin π/2 ) A₂ = 32 (π/2- 1)= 16π - 32 A₂ = 18,2655 cm² Blue shaded area : A₁ = ½ A - A₂ A₁ = 16π - (16π - 32) A₁ = 32 cm² ( Solved √ )

@marioalb9726 Жыл бұрын

Everytime we have this configuration: Blue shaded area = Radius² A = r² A = (8 cos45°)² = ( 8 / √2 )² A = 8² / 2 A = 32 cm² ( Solved √ )

@parthtomar6987 Жыл бұрын

Nice trick

@PreMath Жыл бұрын

Thanks for your feedback! Cheers! 😀 You are awesome. Keep it up 👍

@marioalb9726 Жыл бұрын

Radius of circle: r = R cos 45° = 8 / √2 = √32 r = 5,657 cm Area circle : A = πr² = 32π cm² Area quarter circle: A₁ = ¼ π R² = ¼ π 8² A₁ = 16π cm² Area circular segment: A₂ = ½ r² (α - sin α) A₂ = ½ 32 (π/2- sin π/2 ) A₂ = 16 (π/2- 1)= 8π - 16 A₂ = 9,1327 cm² Blue shaded area : A₃ = A - A₁ - 2. A₂ A₃ = 32π - 16π - 2. 9,1327 A₃ = 32 cm² ( Solved √ )

@murdock5537 Жыл бұрын

Nice! 16π - 16(π - 2) - the "Lune of Hippocrates"... 🙂

@marioalb9726 Жыл бұрын

Being R the radius of quarter circle. Everytime we have this configuration: Blue shaded area = ½ R² A = ½ 8² = 32 cm² ( Solved √ )

@jacquespictet5363 Ай бұрын

You could perhaps generalize to the case of a quarter-circle placed anywhere in a circle.

@sorourhashemi3249 4 ай бұрын

I connected A to C and AC ( diameter of large circle) according to Pythagoras theory is 11.313 . so radius is 5.656. The area of large circle= 100.45÷2=50.225. The area of triangle ABC =32==>the area of segmental circle=50.24. So 50.24-32=18.24 and the area of blue shaded region is 50.225-18.24=31.985.

@marioalb9726 Жыл бұрын

Everytime we have this configuration: Blue shaded area = Triangle area A = ½ b.h = ½ 8² A = 32 cm² ( Solved √ )

@JLvatron Жыл бұрын

Wow, I solved it in my head! (I’ve seen the trick over the years)

@lifeisamarathon2098 Жыл бұрын

another method we have circle with radius 8 so this area is (8X8 pi)/4 remaining two small congruent parts can be calculated as (area of circle of radius 4 root 2 - area of square formed with side 8 unit) X 2.........since that angle is 90 so joining A and C will give us diagonal....and hence we can imagine a square to find the area of segment now we got all the areas then subtract it from the original circle and and is 32

@PreMath Жыл бұрын

Thanks for sharing! Cheers! You are awesome. Keep it up 👍

@SpokeSeadog Жыл бұрын

AC is a diameter, so D= r sqrt 2. AB is the radius of the quarter circle inscribed (ABC), so r = 8. A=Area of the full circle (center O, radius D/2). pi D^2/4 = pi r^2/2 A2=Area of the quarter circle is pi r^2/4 = A/2 A3=Area of the half circle AOC is half of full circle, or pi r^2/2 = A/2 The overlap between A2 and A3 is the area of the right triangle of side r. A4 = Area of triangle = r^2/2 BA= Blue area A = A2 + A3 - A4 + BA = A/2 + A/2 - A4 + BA BA = A4 = r^2/2 = 64/2 = 32

@PreMath Жыл бұрын

Thanks for sharing! Cheers! You are awesome. Keep it up 👍

@octavianmitrea6449 Жыл бұрын

Just my opinion: this is not olimpiad level, not even for a regional olympiad. It is very suitable for an end of semester (or trimester, what have you) test. Depending on the country, grades 7-8 in mid-school, or maybe first year high schoo (not higher). Thanks for the post 👍

@wackojacko3962 Жыл бұрын

Thales Flat Earth floating on water....when Pythagoras showed up , he took Thales "know thyself" to the extreme! Quadricircle BCA is nice and neat with radius = 8. Redo this problem with Inscribed 3 4 5 triangle. It's more fun! 🙂

@marioalb9726 Жыл бұрын

Everytime we have this configuration: Blue shaded area = 1/π Area circle Radius of circle: r = R cos 45° = 8 / √2 = r = √32 cm Area of circle : A = πr² = 32π cm² Blue shaded area : A₁ = 1/π x A = 1/π x 32π A₁ = 32 cm²

@PreMath Жыл бұрын

Excellent! Thanks for sharing! Cheers! You are awesome. Keep it up 👍

@dirklutz2818 Жыл бұрын

Very nice! And surpising that there is no PI in the solution.

@misterenter-iz7rz Жыл бұрын

Note that the radius of the oitside circle is 4root2 and AOC is a diameter, therefore the answer is 16pi-(64pi/4-64/2)=32.😊

@PreMath Жыл бұрын

Excellent! Thanks for sharing! Cheers! You are awesome. Keep it up 👍

@misterenter-iz7rz Жыл бұрын

@@PreMath respond in deadly painful in my left knee, maynot I can continue my participation in premath in future😪.

@PreMath Жыл бұрын

@@misterenter-iz7rz No worries! Your health is more important. You are always in our thoughts and prayers. 🙏

@KAvi_YA666 Жыл бұрын

Thanks for video.Good luck sir!!!!!!!°

@PreMath Жыл бұрын

So nice of you, dear❤️

@soniamariadasilveira7003 Жыл бұрын

❤

@PreMath Жыл бұрын

Thank you, dear! Cheers! 😀 You are awesome. Keep it up 👍

@devondevon4366 Жыл бұрын

32 The radius of the circle: sqrt (4^2 + 4^2) [Pythagorean] sqrt ( 32) The area of the circle 32 pi [pi r^2] Draw a right angle to complete an 8 by 8 square The area of this square is 64 The area not covered by the square = 32 pi - 64 Hence the area of each segment (32pi - 64)/4 Since two are unshaded, the area of those two is (32pi -64)/4 *2 = 32 pi - 64)/2 = 16 pi -32 Since the next unshaded area is the quarter circle, its area is 16 pi ( 64 pi /4) Hence the area of the SHADED area is 32 pi - (16 pi - 32) + 16 pi 16 pi - [ 16 pi - 32 ] 16 pi - 16 pi + 32 32 Answer

@PreMath Жыл бұрын

Excellent! Thanks for sharing! Cheers! You are awesome. Keep it up 👍

@Saxysaboy77 Жыл бұрын

I got it! I feel proud!

@PreMath Жыл бұрын

Bravo! Thanks for sharing! Cheers! You are awesome. Keep it up 👍

@jarikosonen4079 Жыл бұрын

It looks like the π disappearing in the round type area...

@PreMath Жыл бұрын

Yes, you are right Thanks for your feedback! Cheers! 😀 You are awesome. Keep it up 👍

@MarieAnne. Жыл бұрын

Diameter of circle: AC = √(8^2 + 8^2) = 8√2 → Radius = 4√2 Radius of quarter circle = 8 Area of blue region = Area of semi-circle (with radius 4√2) − (Area of quarter circle (with radius 8) − Area of △ABC) = Area of semi-circle (with radius 4√2) + Area of △ABC − Area of quarter circle (with radius 8) = 1/2 × π(4√2)² + 1/2 × (8 × 8) − 1/4 × π(8)² = 16π + 32 − 16π = 32

@bigm383 Жыл бұрын

❤😁👍

@PreMath Жыл бұрын

Excellent! Thank you! Cheers! 😀 You are awesome. Keep it up 👍

@klementhajrullaj1222 Жыл бұрын

The area of "moony" it's equal with area of triangle! 😀😉

@PreMath Жыл бұрын

Very true! Thanks for your feedback! Cheers! 😀 You are awesome. Keep it up 👍

@giuseppemalaguti435 Жыл бұрын

Ablue=(pi(sqrt32)^2)/2-(pi8^2/4-8*8/2)=32

@PreMath Жыл бұрын

Excellent! Thanks for sharing! Cheers! You are awesome. Keep it up 👍

@ybodoN Жыл бұрын

This problem is over 2400 years old and is known as the *lune of Hippocrates* 😉

@PreMath Жыл бұрын

Amazing! Thanks for your feedback! Cheers! 😀 You are awesome. Keep it up 👍

@AmirgabYT2185 7 ай бұрын

S=32

@fppro1679 Жыл бұрын

If I take the length of the angle at 8, Make the diameter 16, square it, then x .7854 = 201 x .25= the area you're looking for.(50.56?)

@PreMath Жыл бұрын

Thanks for your feedback! Cheers! 😀 You are awesome. Keep it up 👍

@fppro1679 Жыл бұрын

@@PreMath thanks. I sold hydraulic cylinders for 35 years. Area of a circles burned into my brain.

@soli9mana-soli4953 Жыл бұрын

This is the lune of Hippocrates, Prof, wellknown solution

@MegaSuperEnrique Жыл бұрын

Curious to me that a moon shape has arcs of circles for both sides, the area does not involve pi.

@PreMath Жыл бұрын

Excellent! Thanks for your feedback! Cheers! 😀 You are awesome. Keep it up 👍

@batavuskoga Жыл бұрын

I could also solve this math problem, but my way is much more complicated than yours 😅 radius of the big circle = R, radius of the quarter circle = r = 8 draw a line from the midpoint of AB to the midpoint of BC, you will have a triangle with a 90°angle at point B R²=4²+4²=32 --> R²=32 area big circle=32π area quarter circle=π*r²/4=16π draw a square : from point A a vertical line, from point C a horizontal line the blue region is now divided in three parts, two parts are equal to the parts of the circle, below the line AB and at the right of line BC let's these parts be A1 = (area big circle-area square)/4=(32π-64)/4 A1=8π-16 area blue region=area big circle-area quarter circle-2*A1 area blue region=32π-16π-2*(8π-16)=32π-16π-16π+32 area blue region=32