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Matakuliah: D0762 – Ekonomi Teknik Tahun: 2009 Annual Worth Analysis Course Outline 5
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Outline 2 Principle and Benefit Equivalent Annual Worth Capital Ownership Cost AW by salvage sinking-fund method AW by Salvage present-worth method AW by Capital recovery plus interest method Spreadsheet Refererences -Engineering Economy – Leland T. Blank, Anthoy J. Tarquin p.180- 199 -Engineering Economic Analysis, Donald G. Newman, p. 141-163 -Engineering Economy, William G. Sulivan, p.137-194, p. 212-284 next - http://www.cs.wright.edu/~snarayan/hfeeconomics/ise481_07_files/v3_document.htm next
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Annual Worth Analysis Principle: Measure investment worth on annual basis Benefit: By knowing annual equivalent worth, we can: Seek consistency of report format Determine unit cost (or unit profit) Facilitate unequal project life comparison 3
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AE(12%) = $189.43(A/P, 12%, 6) = $46.07 PW(12%) = $189.43 Computing Equivalent Annual Worth 4 $100 $50 $80 $120 $70 0 2 3 4 5 6 1 A = $46.07 2 3 4 5 6 1 $189.43 0 http://www.cs.wright.edu/~snarayan/hfeeconomics/ise481_07_files/v3_document.htm
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Annual Equivalent Worth Repeating Cash Flow Cycles 5 $500 $700 $800 $400 $500 $700 $800 $400 $1,000 Repeating cycle http://www.cs.wright.edu/~snarayan/hfeeconomics/ise481_07_files/v3_document.htm
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Annual Equivalent Worth First Cycle: PW(10%) = -$1,000 + $500 (P/F, 10%, 1) +... + $400 (P/F, 10%, 5) = $1,155.68 AE(10%) = $1,155.68 (A/P, 10%, 5) = $304.87 Both Cycles: PW(10%) = $1,155.68 + $1,155.68 (P/F, 10%, 5) +... + $400 (P/F, 10%, 5) = $1,873.27 AE(10%) = $1,873.27 (A/P, 10%,10) = $304.87 6http://www.cs.wright.edu/~snarayan/hfeeconomics/ise481_07_files/v3_document.htm
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Annual Equivalent Cost When only costs are involved, the AE method is called the annual equivalent cost. Revenues must cover two kinds of costs: Operating costs and capital costs. 7 Capital costs Operating costs + Annual Worth Costs http://www.cs.wright.edu/~snarayan/hfeeconomics/ise481_07_files/v3_document.htm
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Capital (Ownership) Costs Definition: The cost of owning an equipment is associated with two transactions— (1)its initial cost (I) and (2) its salvage value (S). Capital costs: Taking into these sums, we calculate the capital costs as: 8 0 1 2 3 N 0 N I S CR(i) http://www.cs.wright.edu/~snarayan/hfeeconomics/ise481_07_files/v3_document.htm
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Example - Capital Cost Calculation Given: I = $200,000 N = 5 years S = $50,000 i = 20% Find: CR(20%) 9http://www.cs.wright.edu/~snarayan/hfeeconomics/ise481_07_files/v3_document.htm $ 200,000 $50,000 5 0
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Justifying an investment based on AE Method Given: I = $20,000, S = $4,000, N = 5 years, i = 10% Find: see if an annual revenue of $4,400 is enough to cover the capital costs. Solution: CR(10%) = $4,620.76 Conclusion: Need an additional annual revenue in the amount of $220.76. 10http://www.cs.wright.edu/~snarayan/hfeeconomics/ise481_07_files/v3_document.htm
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Salvage -Sinking Fund Method General Equation Example 6.1 Calculate the AW of a tractor attachment that has an initial cost of $8000 and a salvage value of $500 after 8 years. Annual operating cost for the machine are estimated to be $900 and an interest rate of 20% per year is applicable. Solution The problem indicates there are 2 cashflow AW = A1 + A2 Where A1 = annual cost of initial investment with salvage value considered Equation above = -8000(A/P,20%8) + 500(A/F,20%,8) = $2055 A2 = annual operating cist = $-900 The Annual worth for the attachment is : AW = -2055 – 900 = $-2955 11
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Salvage Present-Worth Method General Equation The Steps to determine the complete asset AW are 1.Calculate the present worth of the salvage value via the P/F factor 2.Combine the value obtained in step 1 with the investment cost P 3.Annualize the resulting difference over the life of the asset using the A/P factor 4.Combine any uniform annual worth with the value from step 3 5.Convert any other cash flows into an equivalent uniform annual worth and combine with the value obtained in step 4 12
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Example 6.2 Compute the AW of the attachment detailed in Example 6.1 using the salvage present worth method Solution Using the steps outline and equation before AW = [-8000+500(P/F,20%,8)(A/P,20%,8) – 900 = $-2955 13
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Capital Recovery Plus Interest Method General equation The steps to be followed for this method are : 1.Reduce the initial cost by the amount of the salvage value 2.Annualize the value in step 1 using A/P factor 3.Multiply the salvage value by the interest rate 4.Combine the values obtained in steps 2 and 3 5.Combine any uniform annual amounts 6.Convert all other cash flows into equivalent uniform amount and combine them with the value from step 5 Step 1 through 4 are accomplished bya pplying equation before 14
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Example 6.1 Use the value of Example 6.1 to compute the AW using the capital recovery plus interest Solution From equation and steps before : AW =-(8000-500)(A/P,20%,8)-500(0,20) – 900 = $-2955 15
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Comparing Alternatives Following costs are estimated for two equal service tomato peeling machines to evaluated by a canning plant manager’ if the minimum required rate of return is 15% per year, help the manager decide which machine to select ! Solution AW A = -26,000(A/P,15%,6) + 2000(A/F,15%,6)-11800 = $-18,442 AW B = -36,000(A/P,15%,10)+3000(A/F,15%,10) = $-16,925 16 Machine AMachine B First Cost26,00036,000 Annual maintenance cost,$800300 Annual Labor cost, $11,0007000 Extra annual income taxes, $-2,600 Salvage Value2,0003,000 Life, years610
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Spreadsheet 17 Example 6.10 If Ms.Kaw Deposits $10,000 now at an interest rate of 7% per year, hom many year s must the money accumulate before she can withdraw $1400 per year forever
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