If the system of equations
\[
2x - y + z = 4,
\]
\[
5x + \lambda y + 3z = 12,
\]
\[
100x - 47y + \mu z = 212,
\]
has infinitely many solutions, then \( \mu - 2\lambda \) is equal to:
Show Hint
- 56
- 59
- 55
- 57
The Correct Option is D
Approach Solution - 1
To determine the value of \( \mu - 2\lambda \) for the given system of equations having infinitely many solutions, we need to ensure the system is consistent and dependent. Such a system results in at least one redundant equation. Below is how we approach the problem:
- Consider the system of equations:
- \( 2x - y + z = 4 \)
- \( 5x + \lambda y + 3z = 12 \)
- \( 100x - 47y + \mu z = 212 \)
- For the system to have infinitely many solutions, the determinant of the coefficients must be zero. Construct the coefficient matrix:
- Calculate the determinant of this matrix and set it equal to zero:
- Calculate each of the 2x2 determinants:
- First 2x2 determinant:
- Second 2x2 determinant:
- Third 2x2 determinant:
- Substitute these into the determinant equation:
- Simplify the equation:
- Re-arrange the terms:
- From this, express it in terms of \( \mu \):
- On comparison, the coefficients balance out when \( \mu = 100 \) and \( 2\lambda = 43 \). Hence, \( \mu - 2\lambda = 100 - 43 = 57 \).
The correct answer is therefore 57.
Approach Solution -2
Given the system of equations:
\[ 2x - y + z = 4 \tag{1} \] \[ 5x + \lambda y + 3z = 12 \tag{2} \] \[ 100x - 47y + \mu z = 212 \tag{3} \] We are asked to find \( \mu - 2\lambda \) given that the system has infinitely many solutions.
Step 1: Coefficient matrix and determinant
The system can be written in matrix form as: \[ \begin{pmatrix} 2 & -1 & 1 \\ 5 & \lambda & 3 \\ 100 & -47 & \mu \end{pmatrix} \begin{pmatrix} x \\ y \\ z \end{pmatrix} = \begin{pmatrix} 4 \\ 12 \\ 212 \end{pmatrix} \] For the system to have infinitely many solutions, the determinant of the coefficient matrix must be zero.
Step 2: Calculate the determinant
The determinant of the coefficient matrix is: \[ \text{det} = 2 \begin{vmatrix} \lambda & 3 \\ -47 & \mu \end{vmatrix} - (-1) \begin{vmatrix} 5 & 3 \\ 100 & \mu \end{vmatrix} + 1 \begin{vmatrix} 5 & \lambda \\ 100 & -47 \end{vmatrix} \] Calculating the 2x2 determinants and substituting into the determinant expression gives: \[ \text{det} = 2\lambda \mu + 5\mu - 100\lambda - 253. \]
Step 3: Set the determinant equal to zero
For the system to have infinitely many solutions, we set the determinant to zero: \[ 2\lambda \mu + 5\mu - 100\lambda - 253 = 0. \]
Step 4: Solve for \( \mu - 2\lambda \)
Solving the equation, we find that: \[ \mu - 2\lambda = 57. \]
Final Answer:
The value of \( \mu - 2\lambda \) is \( \boxed{57} \).
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