The system of linear equations (\lambda x+2y+2z=5) (2\lambda... | Mathematics | SolveeIt

Question

The system of linear equations $\lambda x+2y+2z=5$ $2\lambda x+3y+5z=8$ $4x+\lambda y+6z=10$ has :

no soiution when $\lambda = 2$

infinitely many solutions when $\lambda = 2$

no solution when $\lambda = 8$

a unique solution when $\lambda = -8$

Answer

no soiution when $\lambda = 2$

Explanation

Solution

$D = \begin{vmatrix}\lambda&3&2\\\ 2\lambda&3&5\\\ 4&\lambda&6\end{vmatrix} = \left(\lambda+8\right)\left(2-\lambda\right)$ for $\lambda = 2 ; D_{1} \ne 0$ Hence, no solution for $\lambda= 2$

Mathematics Question on solution of system of linear inequalities in two variables

Solution