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प्रश्न
Two kinds of foods A and B are being considered to form a weekly diet. The minimum weekly requirements of fats, Carbohydrates and proteins are 12, 16 and 15 units respectively. One kg of food A has 2, 8 and 5 units respectively of these ingredients and one kg of food B has 6, 2 and 3 units respectively. The price of food A is Rs. 4 per kg and that of food B is Rs. 3 per kg. Formulate the L.P.P. and find the minimum cost.
उत्तर
Let x kg of food A and y kg of food B be purchased.
| Ingredients/foods | A (x) |
B (y) |
Minimum requirement |
| Fats | 2 | 6 | 12 |
| Carbohydrates | 8 | 2 | 16 |
| Proteins | 5 | 3 | 15 |
The L.P.P. is
Minimize Z = 4x + 3y,
Subject to 2x + 6y ≥ 12,
8x + 2y ≥ 16,
5x + 3y ≥ 15,
x ≥ 0, y ≥ 0
| To draw | x | y | (x, y) | Sign | Region lies on |
| L1: 2x + 6y = 12 |
0 | 2 | A(0, 2) | ≥ | Non-origin side of line L1 |
| 6 | 0 | B(6, 0) | |||
| L2: 8x + 2y = 16 |
0 | 8 | C(0, 8) | ≥ | Non-origin side of line L2 |
| 2 | 0 | D(2, 0) | |||
| L3: 5x + 3y = 15 |
0 | 5 | E(0, 5) | ≥ | Non-origin side of line L3 |
| 3 | 0 | F(3, 0) |
Solving equations of L2 and L3
4x + y = 8
5x + 3y = 15
12x + 3y = 24
5x + 3y = 15
– – –
7x = 9
∴ x = `9/7`, y = `20/7`
∴ P = `(9/7, 20/7)`
Solving equations of L1 and L3
x + 3y = 6
5x + 3y = 15
– – –
–4x = –9
∴ x = `9/7`, y = `5/7`
∴ Q = `(9/7, 5/7)`
∴ The feasible region is CPQB
| Vertices | Value of Z = 4x + 3y |
| C(0, 8) | 24 |
| `P(9/7, 20/7)` | `36/7 + 60/7` = 13.7 |
| `Q(9/4, 5/4)` | `36/4 + 15/4` = 12.7 |
| B(6, 0) | 24 |
∴ Z is minimum at x = `9/7`, y = `5/4` and Min. Z = 12.7
