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Megoldás - Properties of ellipses

Equation in standard form x2157+y21511=1
\frac{x^2}{\frac{15}{7}}+\frac{y^2}{\frac{15}{11}}=1
Center (0,0)
(0, 0)
Radius of the major axis 1,464
1,464
Vertex_1 (1.464,0)
(1.464, 0)
Vertex_2 (1.464,0)
(-1.464, 0)
Radius of the minor axis 1,168
1,168
Co-vertex_1 (0,1.168)
(0, 1.168)
Co-vertex_2 (0,1.168)
(0, -1.168)
Focal length 0,883
0,883
Focus_1 (0.883,0)
(0.883, 0)
Focus_2 (0.883,0)
(-0.883, 0)
Area 1,71π
1,71π
x-intercepts (1.464,0),(1.464,0)
(1.464, 0), (-1.464, 0)
y-intercepts (0,1.168),(0,1.168)
(0, 1.168), (0, -1.168)
Eccentricity 0,603
0,603

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Tudj meg többet a Tigerrel

If you cut a carrot in half across its grain (like this: =|> ) the resulting cross-section would be circular and, therefore, somewhat easy to measure. But what if you cut the same carrot across the grain at an angle (like this: =/> )? The resulting shape would be more of an ellipse and measuring it would prove to be a bit more difficult than measuring a plain old circle. But why would you need to measure the cross section of a carrot to begin with?
Well... you probably would not, but such occurrences of ellipses in nature are actually quite common, and understanding them from a mathematical perspective can be useful in many different contexts. Fields such as art, design, architecture, engineering, and astronomy all rely at times on ellipses - from painting portraits, to building homes, to measuring the orbit of moons, planets, and comets.

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