The volume of a tetrahedron formed by the coterminous edges ` vec a , vec b ,a n d vec c` is 3. Then the volume of the parallelepiped formed by the coterminous edges ` vec a+ vec b , vec b+ vec ca n d vec c+ vec a` is `6` b. `18` c. `36` d. 9

To solve the problem, we need to find the volume of a parallelepiped formed by the coterminous edges \(\vec{a} + \vec{b}\), \(\vec{b} + \vec{c}\), and \(\vec{c} + \vec{a}\) given that the volume of the tetrahedron formed by the edges \(\vec{a}\), \(\vec{b}\), and \(\vec{c}\) is 3. ### Step-by-Step Solution: 1. **Volume of the Tetrahedron**: The volume \(V\) of a tetrahedron formed by vectors \(\vec{a}\), \(\vec{b}\), and \(\vec{c}\) is given by the formula: \[ V = \frac{1}{6} |\vec{a} \cdot (\vec{b} \times \vec{c})| ...