1 Making a nonagon with ruler and circle 1 Take a point as midpoint

Making a nonagon with ruler and circle 1

Take a point as midpoint for a circle with radius r = a.

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Take on the circumference a point as being the midpoint for another circle with a radius a. r = a. The two circles intersect at points A and B.

A

B

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3 Take intersection point A as midpoint for a circle with radius a. The circle intersects the other circles at points C, D, E and F.

A

D

E

C

F

B

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4 Take intersection point B as midpoint for a circle with radius a. The circle intersects the other circles in the already existing intersecting points E and F and newly in the points G and H.

A

D

E

H

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C

F

B

G

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5 Take intersection point G as midpoint for a circle with radius a. The circle intersects the 4 present circles in the intersecting points B and F and newly in the points i and J.

A

D

C

i E

F

H

G B

J

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6 Take intersection point H as midpoint for a circle with radius a. The circle intersects the 4 present circles in the intersecting points B and E and newly in the points K and L.

A

D

C

L

i E

F

H

G B

K

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7

Draw a line from point A to B.

A

D

C

L

i E

F

H

G B

K

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8

Draw a line from point G to E.

A

D

C

L

i E

F

H

G

B

K

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9

Draw a line from point H to F.

A

D

C

L

i E

F

H

G B

K

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10

take the intersecting point of the 3 lines as midpoint N of a circle with a radius equal to line ND.

A

D

C

L

i N

E

F

H

G B

K

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11 Extend the lines NA to NA2, NG to NG2 and NH to NH2 and draw the lines NC , Ni , NJ , NK and NL. These are the radii of the nonagon.

A2

D

C

A

i

L E

F N

H

B

G

H2

G2

K

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12

The length of the edges of triangle BEF is equal to the edges of the nonagon.

A2

D

C

A

i

L E

F N

H

B

G

H2

G2

K

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A2

D

C

A

i

L E

F N

H

B

G

H2

G2

K

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13 The length of the edges of triangle AGH is equal to the length of the edges in the order of their appearance: A2i, iJ, JH2, H2D, DC, CG2, G2K, KL and LA2 by which a nonagonal star appears als two interwoven pentagons.

A2

D

C

A

i

L E

F N

H

B

G

H2

G2

K

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A2

D

C

A

i

L E

F N

H

B

G

H2

G2

K

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14 The length of the edges of triangle A2G2H2 is equal to the edges of the triangles CJL and iKD, by which a nonagonal star appears of three the same midpoint encircling triangles.

A2

D

C

A

i

L E

F N

H

B

G

H2

G2

K

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A2

D

C

A

i

L E

F N

H

B

G

H2

G2

K

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15 Trough the combination of the length of the edges of the triangles AGH and A2GcH2 appears a often used nonagonal figure known as the enneagram.

A2

D

C

A

i

L E

F N

H

B

G

H2

G2

K

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A2

D

C

A

i

L E

F N

H

B

G

H2

G2

K

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9

8

1

2

7

6

3

5

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Take length AB

D

C

A

i

L E

F

H

B

K

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G

J

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take N as midpoint for a circle with a radius r = AB so that radius NA3 originates.

A3

D

C

A

i

L E

F N

H

B

K

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G

J

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And NG3 and NH3

A3

D

C

A

i

L E

F N

H

B

G

H3

G3

K

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20 The length of the edges of triangle A3G3H3 is equal to the length of the lines A2J – JD – DG2 – G2L – Li – iH2 – H2C – CK – KA2 in this order connected to each other in circle A2 – C – i - G2 – J – K - H3 – L – D - A2 so that a nonagonal star appears.

A3

D

C

A

i

L E

F N

H

B

G

H3

G3

K

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A2

D

C

A

L

i E

F N

H

B

G

H2

G2

K

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The nonagon and its circumscribed circle and the three possible nonagonal stars features as combination the following figure:

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The 4 used triangles, the 3 used circles and the 3 centrifugal radial lines as a combination is this figure:

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