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The Production Function for Buses - Edgeworth Box - Assignment Example

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The paper "The Production Function for Buses - Edgeworth Box" states that any deviation from the curve will be less effective for the company because with such indicators all the resources are allocated fully and efficaciously providing maximum production of two products…
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The Production Function for Buses - Edgeworth Box
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? Microeconomics Part (A) Does the production function for buses imply increasing or diminishing returns to scale? (explain how we can tell). Find the number of buses, in each cell of this table. Production function shows maximum output with every given combination of production factors (Dwivedi, 2006, p. 211). The number of buses in Utropica is represented by Cobb-Douglas function, which is considered to be linear and homogenous demonstration of constant return by changing of production scale. According to the fact that a sum of indicators’ powers defines type of a function concerning its increase or decrease, we can predict functional behavior beforehand by making the following calculation: F(L, K) = 1.1 + 0.41 = 1.51 Taking into account that calculated figure exceeds 1, it can be concluded that our function will reproduce increasing returns to scale. This means that with an accumulation of production factors volume of produced goods will grow. To find number of buses with every combination of production factors, it is necessary to substitute each number of employees and quantity of machines for K and L indicators. Hence, if number of machines is 14 and number of employees who make buses is 5, then calculation of production output will be the following: In accordance with above example, we can calculate all the rest level of production. (K=10, L=3): (K=8, L=1): etc. Therefore, this allows filling in each cell of the table, which is represented below.   L= 0 L= 1 L= 2 L= 3 L= 4 L= 5 L= 6 K= 16 0 8 11 13 15 16 18 K= 14 0 7 10 11 13 14 15 K= 12 0 6 8 10 11 12 13 K= 10 0 5 7 8 9 10 10 K= 8 0 4 5 6 7 8 8 K= 6 0 3 4 5 5 6 6 K= 4 0 2 2 3 3 4 4 K= 2 0 1 1 1 2 2 2 K= 0 0 0 0 0 0 0 0 From the table we can also see that in accordance with accumulation of employees, number of produced buses grows. Part (B) Make an ‘Edgeworth box’ diagram for production of buses in Utropica: put the number of employees making buses on the horizontal axis (0 to 6), and number of machines used to make buses on the vertical axis (0 to 16). Draw an isoquant line for 5 buses. On the same diagram, add an isoquant for 7 buses, and an isoquant for 10 buses. To draw an ‘Edgeworth box’ diagram for production of specific number of buses, it is required to find all combinations of factors that are able to create the stated level of production. Hence, using a table above, it can be seen that 5 buses can be produced by 10 machines and 1 employee or 8 machines and 2 employees. So there are several alternatives for this output. Consequently, finding all possible combinations, we receive points that will form isoquant line on diagram. They are the following: K = 10, L = 1 K = 8, L = 2 K = 6, L = 3 K = 6, L = 4 Using the same method, we find combinations of the factors for producing 7 buses. K = 14, L = 1 K = 10, L = 2 K = 8, L = 4 And finally, 10 buses can be produced with a help of the following combinations: K = 14, L = 2 K = 12, L = 3 K = 10, L = 5 K = 10, L = 6 Having number of employees on the horizontal axis and number of machines on the vertical axis, diagram for three levels of production is represented below. Represented diagram proves the fact that isoquants never intersect with each other and have negative angulation. Also it can be noticed that isoquant with the biggest production is situated more to the right and upper compared to the rest (Slavin, 2011, p. 289). Part (C) If an employee doesn’t work on buses, s/he works on cars; machines not used for buses are used for cars. The production function for cars is Ncars = 0.34 K0.83L0.96 In the same ‘Edgeworth box’ as Part (B), add an isoquant for 9 cars. Add an isoquant to represent 6 cars, and a third isoquant for 3 cars, on the same diagram. Explain how this ‘Edgeworth Box’ can be used to show inefficient combinations of people & machines. Taking into account that the production function for cars is , we will use the same procedure for car production as for buses to define required combinations of factors and draw isoquant lines. So the table is represented below.   L= 0 L= 1 L= 2 L= 3 L= 4 L= 5 L= 6 K= 16 0 3 7 10 13 16 19 K= 14 0 3 6 9 12 14 17 K= 12 0 3 5 8 10 13 15 K= 10 0 2 4 7 9 11 13 K= 8 0 2 4 5 7 9 11 K= 6 0 2 3 4 6 7 8 K= 4 0 1 2 3 4 5 6 K= 2 0 1 1 2 2 3 3 K= 0 0 0 0 0 0 0 0 Consequently, on diagram points for various productions of cars will be the following: For 9 cars: K = 14, L = 3 K = 10, L = 4 K = 8, L = 5 For 6 cars: K = 14, L = 2 K = 6, L = 4 K = 4, L = 6 For 3 cars: K = 16, L = 1 K = 14, L = 1 K = 12, L = 1 K = 6, L = 2 K = 4, L = 3 K = 2, L = 5 K = 2, L = 6 Therefore, new diagram with isoquants for cars is represented below. The points where isoquant of buses intersects with isoquant of cars indicate that specific combination of factors can be used in a full way with alternatives. Hence, for producing 7 buses it is required to buy 14 machines and hire 1 employee; meanwhile, the same number of equipment and staff can produce 3 cars. Also with a help of the diagram it can be seen, for example, that 2 employees can produce 3 cars, 5 or 10 buses according to different number of required machines. Hence, taking into account company’s product priorities along with availability and prices of machines, entrepreneur should assign production factors correctly. Therefore, a producer acquires alternatives for using combinations of machines and workers and makes a decision concerning the most effective implementation of these factors. Optimal combination of factors can be found in those points that lie on contract curve, which connects tangency points of isoquants of two alternative goods. Part (D) Currently, 3 staff and 8 machines make/repair cars. Explain whether there could be a better allocation of resources; and using the diagram you produced for Part (B) and Part (C), explain why the ‘contract curve’ is relevant to this question. If currently 3 staff and 8 machines make cars, then this combination of factors is considered to be effective one, because contract curve intersects stated point. This means that no any other allocations of resources are needed. Any deviation from the curve will be less effective for the company, because with such indicators all the resources are allocated fully and efficaciously providing maximum production of two products. The issue of contract curve is relevant to this question because as we can see on provided diagrams the company uses the same factors for producing different types of goods, which marginal rates of substitution in tangency points are equal (Arnold, 2008, p. 135). This achieves Pareto Optimality stating that it is impossible to use one factor better without making worse the usage of the second one. Reference List Arnold, R. A. (2008) Microeconomics. South-Western: Cengage Learning. Dwivedi, D.N. (2006) Microeconomics: Theory and Applications. India: Dorling Kindersley. Slavin, S. (2011) Microeconomics. New York: McGraw-Hill/Irwin. Read More
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