Step 1: Define the variables
Let the length of the rectangle be \( x \) cm and the breadth be \( (150 - x) \) cm (since the perimeter is \( 2(x + \text{breadth}) = 300 \)).
When the rectangle is rolled along its length, the radius \( r \) and height \( h \) of the cylinder formed are: \[ 2\pi r = x \implies r = \frac{x}{2\pi}, \quad h = (150 - x). \] Step 2: Write the volume of the cylinder
The volume \( V \) of the cylinder is given by: \[ V = \pi r^2 h = \pi \left(\frac{x}{2\pi}\right)^2 (150 - x). \] Simplify: \[ V = \pi \frac{x^2}{4\pi^2} (150 - x) = \frac{x^2}{4\pi} (150 - x). \] Step 3: Differentiate \( V \) with respect to \( x \)
The derivative of \( V \) is: \[ \frac{dV}{dx} = \frac{1}{4\pi} \left(2x(150 - x) - x^2\right). \] Simplify: \[ \frac{dV}{dx} = \frac{1}{4\pi} \left(300x - 3x^2\right). \] Step 4: Set \( \frac{dV}{dx} = 0 \) to find critical points
\[ 300x - 3x^2 = 0 \implies x(300 - 3x) = 0 \implies x = 0 \text{ or } x = 100. \] Step 5: Use the second derivative test to confirm maxima
The second derivative is: \[ \frac{d^2V}{dx^2} = \frac{1}{4\pi} (300 - 6x). \] At \( x = 100 \): \[ \frac{d^2V}{dx^2} = \frac{1}{4\pi} (300 - 600) = \frac{-300}{4\pi} = \frac{-75}{\pi} < 0. \] Hence, \( V \) is maximum when \( x = 100 \).
Step 6: Calculate the dimensions of the rectangle
When \( x = 100 \), the length is \( 100 \) cm, and the breadth is: \[ 150 - x = 50 \, \text{cm}. \]
List-I | List-II |
(A) Absolute maximum value | (I) 3 |
(B) Absolute minimum value | (II) 0 |
(C) Point of maxima | (III) -5 |
(D) Point of minima | (IV) 4 |
In number theory, it is often important to find factors of an integer \( N \). The number \( N \) has two trivial factors, namely 1 and \( N \). Any other factor, if it exists, is called a non-trivial factor of \( N \). Naresh has plotted a graph of some constraints (linear inequations) with points \( A(0, 50) \), \( B(20, 40) \), \( C(50, 100) \), \( D(0, 200) \), and \( E(100, 0) \). This graph is constructed using three non-trivial constraints and two trivial constraints. One of the non-trivial constraints is \( x + 2y \geq 100 \).
Based on the above information, answer the following questions:
On her birthday, Prema decides to donate some money to children of an orphanage home.
If there are 8 children less, everyone gets ₹ 10 more. However, if there are 16 children more, everyone gets ₹ 10 less. Let the number of children in the orphanage home be \( x \) and the amount to be donated to each child be \( y \).
Based on the above information, answer the following questions:
Let \( X \) denote the number of hours a Class 12 student studies during a randomly selected school day. The probability that \( X \) can take the values \( x_i \), for an unknown constant \( k \):
\[ P(X = x_i) = \begin{cases} 0.1, & {if } x_i = 0, \\ kx_i, & {if } x_i = 1 { or } 2, \\ k(5 - x_i), & {if } x_i = 3 { or } 4. \end{cases} \]The correct IUPAC name of \([ \text{Pt}(\text{NH}_3)_2\text{Cl}_2 ]^{2+} \) is: