Gyroelongated square bicupola

45th Johnson solid
Gyroelongated square bicupola
TypeJohnson
J44J45J46
Faces24 triangles
10 squares
Edges56
Vertices24
Vertex configuration 8 × ( 3 × 4 3 ) + 2 × 8 × ( 3 4 × 4 ) {\displaystyle 8\times (3\times 4^{3})+2\times 8\times (3^{4}\times 4)}
Symmetry group D 4 {\displaystyle D_{4}}
Propertiesconvex, chiral
Net

In geometry, the gyroelongated square bicupola is the Johnson solid constructed by attaching two square cupolae on each base of octagonal antiprism. It has the property of chirality.

Construction

The gyroelongated square bicupola is constructed by attaching two square cupolae on each base of octagonal antiprism, a process known as gyroelongation. This construction involves the removal of octagons, and replacing them with cupolae.[1] As a result, this polyhedron has twenty triangular and ten square faces.[2] The Johnson solid is the convex polyhedron with all of its faces are regular, and the gyroelongated square bicupola is one of them, enumerated as J 45 {\displaystyle J_{45}} .[3]

Properties

Given that the edge length a {\displaystyle a} , the surface area is:

( 10 + 6 3 ) a 2 20.392 a 2 , {\displaystyle \left(10+6{\sqrt {3}}\right)a^{2}\approx 20.392a^{2},}
the total area of twenty equilateral triangles and ten squares. Its volume is:
( 2 + 4 3 2 + 2 3 4 + 2 2 + 2 146 + 103 2 ) a 3 8.154 a 3 , {\displaystyle \left(2+{\frac {4}{3}}{\sqrt {2}}+{\frac {2}{3}}{\sqrt {4+2{\sqrt {2}}+2{\sqrt {146+103{\sqrt {2}}}}}}\right)a^{3}\approx 8.154a^{3},}
the total volume of two square cupolae and an octagonal antiprism.[2] Its dihedral angles can be calculated by adding the components of cupolae and antiprism. The dihedral angle of antiprism between two adjacent triangles is approximately 153.9 {\displaystyle 153.9^{\circ }} . The dihedral angle of each cupola between two squares is 135 {\displaystyle 135^{\circ }} , and that between triangle and square is 144.7 {\displaystyle 144.7^{\circ }} . The dihedral angle of the cupolae and antiprism between two adjacent triangles and triangle-square is 151.3 {\displaystyle 151.3^{\circ }} and 141.6 {\displaystyle 141.6^{\circ }} , respectively.[4]

The gyroelongated square bicupola is one of five Johnson solids, which is chiral, meaning that they have a "left-handed" and a "right-handed" form. In the following illustration, each square face on the left half of the figure is connected by a path of two triangular faces to a square face below it and on the left. In the figure of opposite chirality (the mirror image of the illustrated figure), each square on the left would be connected to a square face above it and on the right. These two chiral forms are not considered different Johnson solids.[citation needed] It has the symmetry of dihedral group D 4 {\displaystyle D_{4}} .[4]

References

  1. ^ Rajwade, A. R. (2001). Convex Polyhedra with Regularity Conditions and Hilbert's Third Problem. Texts and Readings in Mathematics. Hindustan Book Agency. p. 84–89. doi:10.1007/978-93-86279-06-4. ISBN 978-93-86279-06-4.
  2. ^ a b Berman, Martin (1971). "Regular-faced convex polyhedra". Journal of the Franklin Institute. 291 (5): 329–352. doi:10.1016/0016-0032(71)90071-8. MR 0290245.
  3. ^ Francis, Darryl (2013). "Johnson solids & their acronyms". Word Ways. 46 (3): 177.
  4. ^ a b Johnson, Norman W. (1966). "Convex polyhedra with regular faces". Canadian Journal of Mathematics. 18: 169–200. doi:10.4153/CJM-1966-021-8. MR 0185507. S2CID 122006114.

External links

  • Weisstein, Eric W., "Gyroelongated square bicupola" ("Johnson solid") at MathWorld.
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Johnson solids
Pyramids, cupolae and rotundaeModified pyramidsModified cupolae and rotundae
Augmented prismsModified Platonic solidsModified Archimedean solidsElementary solids
(See also List of Johnson solids, a sortable table)