We are given the equations of the circle and the hyperbola: \[ x^2 + y^2 - 8x = 0 \quad {(1)} \] and \[ \frac{x^2}{9} - \frac{y^2}{4} = 1 \quad {(2)} \] Step 1: Solve the system of equations.
From equation (1), we complete the square: \[ (x^2 - 8x + 16) + y^2 = 16 \quad \Rightarrow \quad (x - 4)^2 + y^2 = 16 \] This represents a circle centered at \( (4, 0) \) with radius 4. Next, substitute equation (2) into this. Multiply both sides of the equation by 36: \[ 4x^2 - 9y^2 = 36 \quad \Rightarrow \quad 13x^2 - 72x - 36 = 0 \] Solving this gives us: \[ x = 6 \quad {(the valid root)} \] Substitute this into the circle's equation: \[ y^2 = 12 \quad \Rightarrow \quad y = \pm \sqrt{12} \] Thus, the points of intersection are \( A(6, \sqrt{12}) \) and \( B(6, -\sqrt{12}) \).
Step 2: Calculate the centroid. The centroid of \( \triangle PAB \) is given by the average of the coordinates of \( P \), \( A \), and \( B \). The coordinates of \( P \) lie on the line \( 2x - 3y + 4 = 0 \). The centroid condition gives the equation: \[ 6x - 9y = 20 \] Thus, the centroid lies on the line \( 6x - 9y = 20 \).
What will be the equilibrium constant of the given reaction carried out in a \(5 \,L\) vessel and having equilibrium amounts of \(A_2\) and \(A\) as \(0.5\) mole and \(2 \times 10^{-6}\) mole respectively?
The reaction : \(A_2 \rightleftharpoons 2A\)
A black body is at a temperature of 2880 K. The energy of radiation emitted by this body with wavelength between 499 nm and 500 nm is U1, between 999 nm and 1000 nm is U2 and between 1499 nm and 1500 nm is U3. The Wien's constant, b = 2.88×106 nm-K. Then,