Trigonometry of a tetrahedron

The trigonometry of a tetrahedron[1] explains the relationships between the lengths and various types of angles of a general tetrahedron.

Trigonometric quantities

Classical trigonometric quantities

The following are trigonometric quantities generally associated to a general tetrahedron:

Let X = \overline{P_1P_2P_3P_4} be a general tetrahedron, where P_1,P_2,P_3,P_4 are arbitrary points in three-dimensional space.

Furthermore, let e_{ij} be the edge that joins P_{i} and P_{j} and let F_{i} be the face of the tetrahedron opposite the point P_{i}; in other words:

where i,j,k,l \in \{1,2,3,4\} and i \neq j \neq k \neq l.

Define the following quantities:

Area and volume

Let \Delta_i be the area of the face F_i. Such area may be calculated by Heron's formula (if all three edge lengths are known):

\Delta_i = \sqrt{\frac{(d_{jk}+d_{jl}+d_{kl})(-d_{jk}+d_{jl}+d_{kl})(d_{jk}-d_{jl}+d_{kl})(d_{jk}+d_{jl}-d_{kl})}{16}}

or by the following formula (if an angle and two corresponding edges are known):

\Delta_i = \frac{1}{2}d_{jk} d_{jl}\sin\alpha_{j,i}

Let h_i be the altitude from the point P_{i} to the face F_{i}. The volume V of the tetrahedron X
is given by the following formula: {\displaystyle V = \frac{1}{3}\Delta_{i}h_{i}}It satisfies the following relation:[2]

288V^2 = \begin{vmatrix} 2Q_{12} & Q_{12}+Q_{13}-Q_{23} & Q_{12}+Q_{14}-Q_{24} \\ Q_{12}+Q_{13}-Q_{23} & 2Q_{13} & Q_{13}+Q_{14}-Q_{34} \\ Q_{12}+Q_{14}-Q_{24} & Q_{13}+Q_{14}-Q_{34} & 2Q_{14} \end{vmatrix}

where Q_{ij} = d_{ij}^2 are the quadrances (length squared) of the edges.

Basic laws of trigonometry

Affine triangle

Take the face F_{i}; the edges will have lengths d_{jk},d_{jl},d_{kl} and the respective opposite angles are given by \alpha_{l,i},\alpha_{k,i},\alpha_{j,i}.

The usual laws for planar trigonometry of a triangle hold for this triangle.

Projective triangle

Consider the projective (spherical) triangle at the point P_i; the vertices of this projective triangle are the three lines that join P_i with the other three vertices of the tetrahedron. The edges will have spherical lengths \alpha_{i,j},\alpha_{i,k},\alpha_{i,l} and the respective opposite spherical angles are given by \theta_{ij},\theta_{ik},\theta_{il}.

The usual laws for spherical trigonometry hold for this projective triangle.

Laws of trigonometry for the tetrahedron

Alternating sines theorem

Take the tetrahedron X, and consider the point P_i as an apex. The Alternating sines theorem is given by the following identity:{\displaystyle \sin(\alpha_{j,l})\sin(\alpha_{k,j})\sin(\alpha_{l,k}) = \sin(\alpha_{j,k})\sin(\alpha_{k,l})\sin(\alpha_{l,j})}One may view the two sides of this identity as corresponding to clockwise and counterclockwise orientations of the surface.

The space of all shapes of tetrahedra

Putting any of the four vertices in the role of O yields four such identities, but at most three of them are independent; if the "clockwise" sides of three of the four identities are multiplied and the product is inferred to be equal to the product of the "counterclockwise" sides of the same three identities, and then common factors are cancelled from both sides, the result is the fourth identity.

Three angles are the angles of some triangle if and only if their sum is 180° (π radians). What condition on 12 angles is necessary and sufficient for them to be the 12 angles of some tetrahedron? Clearly the sum of the angles of any side of the tetrahedron must be 180°. Since there are four such triangles, there are four such constraints on sums of angles, and the number of degrees of freedom is thereby reduced from 12 to 8. The four relations given by the sine law further reduce the number of degrees of freedom, from 8 down to not 4 but 5, since the fourth constraint is not independent of the first three. Thus the space of all shapes of tetrahedra is 5-dimensional.[3]

Law of sines for the tetrahedron

See: Law of sines#Higher dimensions

Law of cosines for the tetrahedron

The law of cosines for the tetrahedron[4] relates the areas of each face of the tetrahedron and the dihedral angles about a point. It is given by the following identity:

\Delta_i^2 = \Delta_j^2 + \Delta_k^2 + \Delta_l^2 - 2(\Delta_{j}\Delta_{k}\cos\theta_{il} + \Delta_j \Delta_l \cos\theta_{ik}+\Delta_k \Delta_l \cos\theta_{ij})

Relationship between dihedral angles of tetrahedron

Take the general tetrahedron X and project the faces F_i,F_j,F_k onto the plane with the face F_l. Let c_{ij} = \cos\theta_{ij}.

Then the area of the face F_l is given by the sum of the projected areas, as follows:{\displaystyle \Delta_l = \Delta_ic_{jk} + \Delta_jc_{ik} + \Delta_kc_{ij}}By substitution of i,j,k,l \in \{1,2,3,4\} with each of the four faces of the tetrahedron, one obtains the following homogeneous system of linear equations:{\displaystyle \begin{cases}
-\Delta_1 + \Delta_2c_{34} + \Delta_3c_{24} + \Delta_4c_{23} = 0 \\ 
\Delta_1c_{34} - \Delta_2 + \Delta_3c_{14} + \Delta_4c_{13} = 0\\ 
\Delta_1c_{24} + \Delta_2c_{14} - \Delta_3 + \Delta_4c_{12} = 0\\
\Delta_1c_{23} + \Delta_2c_{13} + \Delta_3c_{12} - \Delta_4 = 0
\end{cases}}This homogeneous system will have solutions precisely when: {\displaystyle \begin{vmatrix} 
-1 & c_{34} & c_{24} & c_{23} \\ 
c_{34} & -1 & c_{14} & c_{13} \\ 
c_{24} & c_{14} & -1 & c_{12} \\ 
c_{23} & c_{13} & c_{12} & -1
\end{vmatrix}
= 0}By expanding this determinant, one obtains the relationship between the dihedral angles of the tetrahedron,[1] as follows: {\displaystyle 1-\sum_{1 \leq i < j \leq 4}c^{2}_{ij}+\sum_{j=2\atop k\neq l\neq j}^{4}c^{2}_{1j}c^{2}_{kl}
= 2\left(\sum_{i=1\atop j\neq k\neq l\neq i}^{4}c_{ij}c_{ik}c_{il}+\sum_{2\leq j<k\leq 4\atop l\neq j,k}c_{1j}c_{1k}c_{jl}c_{kl}\right)
}

Skew distances between edges of tetrahedron

Take the general tetrahedron X and let P_{ij} be the point on the edge e_{ij} and P_{kl} be the point on the edge e_{kl} such that the line segment \overline{P_{ij}P_{kl}} is perpendicular to both e_{ij} & e_{kl}. Let R_{ij} be the length of the line segment \overline{P_{ij}P_{kl}}.

To find R_{ij}:[1]

First, construct a line through P_{k} parallel to e_{il} and another line through P_{i} parallel to e_{kl}. Let O be the intersection of these two lines. Join the points O and P_{j}. By construction, \overline{OP_iP_lP_k} is a parallelogram and thus \overline{OP_kP_i} and \overline{OP_lP_i} are congruent triangles. Thus, the tetrahedron X and Y = \overline{OP_iP_jP_k} are equal in volume.

As a consequence, the quantity R_{ij} is equal to the altitude from the point P_{k} to the face \overline{OP_iP_j} of the tetrahedron Y; this is shown by translation of the line segment \overline{P_{ij}P_{kl}}.

By the volume formula, the tetrahedron Y satisfies the following relation: {\displaystyle 3V = R_{ij} \times \Delta(\overline{OP_iP_j})}where \Delta(\overline{OP_iP_j}) is the area of the triangle \overline{OP_iP_j}. Since the length of the line segment \overline{OP_i} is equal to d_{kl} (as \overline{OP_iP_lP_k} is a parallelogram): {\displaystyle \Delta(\overline{OP_iP_j}) = \frac{1}{2}d_{ij}d_{kl}\sin\lambda}where \lambda = \angle OP_iP_j. Thus, the previous relation becomes: {\displaystyle 6V = R_{ij}d_{ij}d_{kl}\sin\lambda}To obtain \sin\lambda, consider two spherical triangles:

  1. Take the spherical triangle of the tetrahedron X at the point P_i; it will have sides \alpha_{i,j},\alpha_{i,k},\alpha_{i,l} and opposite angles \theta_{ij},\theta_{ik},\theta_{il}. By the spherical law of cosines:{\displaystyle \cos\alpha_{i,k} = \cos\alpha_{i,j}\cos\alpha_{i,l}+\sin\alpha_{i,j}\sin\alpha_{i,l}\cos\theta_{ik}}
  2. Take the spherical triangle of the tetrahedron X at the point P_i. The sides are given by \alpha_{i,l},\alpha_{k,j},\lambda and the only known opposite angle is that of \lambda, given by \pi - \theta_{ik}. By the spherical law of cosines:{\displaystyle \cos\lambda = \cos\alpha_{i,l}\cos\alpha_{k,j}-\sin\alpha_{i,l}\sin\alpha_{k,j}\cos\theta_{ik}}

Combining the two equations gives the following result:{\displaystyle \cos\alpha_{i,k}\sin\alpha_{k,j} + \cos\lambda\sin\alpha_{i,j}
= \cos\alpha_{i,l}\left(\cos\alpha_{i,j}\sin\alpha_{k,j} + \sin\alpha_{i,j}\cos\alpha_{k,j}\right)
=\cos\alpha_{i,l}\sin\alpha_{l,j}}

Making \cos\lambda the subject:{\displaystyle \cos\lambda = \cos\alpha_{i,l}\frac{\sin\alpha_{l,j}}{\sin\alpha_{i,j}} - \cos\alpha_{i,k}\frac{\sin\alpha_{k,j}}{\sin\alpha_{i,j}}}Thus, using the cosine law and some basic trigonometry:{\displaystyle \cos\lambda 
= \frac{d_{ij}^2+d_{ik}^2-d_{jk}^2}{2d_{ij}d_{ik}}\frac{d_{ik}}{d_{kl}} 
- \frac{d_{ij}^2+d_{il}^2-d_{jl}^2}{2d_{ij}d_{il}}\frac{d_{il}}{d_{kl}}
= \frac{d_{ik}^2+d_{jl}^2-d_{il}^2-d_{jk}^2}{2d_{ij}d_{kl}}}Thus:{\displaystyle \sin\lambda = \sqrt{1-\left(\frac{d_{ik}^2+d_{jl}^2-d_{il}^2-d_{jk}^2}{2d_{ij}d_{kl}}\right)^2}
=\frac{\sqrt{4d_{ij}^2d_{kl}^2-(d_{ik}^2+d_{jl}^2-d_{il}^2-d_{jk}^2)^2}}{2d_{ij}d_{kl}}}So:{\displaystyle R_{ij} = \frac{12V}{\sqrt{4d_{ij}^2d_{kl}^2-(d_{ik}^2+d_{jl}^2-d_{il}^2-d_{jk}^2)^2}}}R_{ik} and R_{il} are obtained by permutation of the edge lengths.

Note that the denominator is a re-formulation of the Bretschneider-von Staudt formula, which evaluates the area of a general convex quadrilateral.

References

  1. 1 2 3 Richardson, G. (1902-03-01). "The Trigonometry of the Tetrahedron". The Mathematical Gazette 2 (32): 149–158. doi:10.2307/3603090.
  2. 100 Great Problems of Elementary Mathematics. New York: Dover Publications. 1965-06-01. ISBN 9780486613482.
  3. Rassat, André; Fowler, Patrick W. (2004). "Is There a "Most Chiral Tetrahedron"?". Chemistry: A European Journal 10 (24): 6575–6580. doi:10.1002/chem.200400869
  4. Lee, Jung Rye (June 1997). "The law of cosines in a tetrahedron". J. Korea. Soc. Math. Educ. Ser. B: Pure Appl. Math. 4 (1): 1–6. ISSN 1226-0657.
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