Question
In: Economics
Thickness Installation Cost annual savings Maintenance once in each 2 years 2cm 217000 68000 4600 5cm...
| Thickness | Installation Cost | annual savings | Maintenance once in each 2 years |
| 2cm | 217000 | 68000 | 4600 |
| 5cm | 446000 | 125000 |
0 |
Useful lives of both alternatives are 10 years. Find the best alternative using modified benefit cost ratio method. MARR= %13 per year.
Solutions
Rahul Sunny answered 2 years agoRelated Solutions
Thickness Installation Cost annual savings Maintenance once in each 2 years 2cm 217000 68000 4600 5cm...
Thickness
Installation Cost
annual savings
Maintenance once in each 2 years
2cm
217000
68000
4600
5cm
446000
125000
0
Useful lives of both alternatives are 10 years. Find the best
alternative using discounted payback period when MARR= %13 per
year
thickness Installation Cost annual savings Maintenance once in each 2 years 2cm 217000 68000 4600 5cm...
thickness
Installation Cost
annual savings
Maintenance once in each 2 years
2cm
217000
68000
4600
5cm
446000
125000
0
Useful lives of both alternatives are 10 years. Find the best
alternative using conventional benefit cost ratio method. MARR= %13
per year.
A certain piece ofequipment has an initial cost of $10,000 with an annual maintenance cost of...
A certain piece ofequipment has an initial cost of $10,000 with
an annual maintenance cost of $500 per year with no salvage value
at the end of its useful life of 4 years. There is an
alternative equipment that costs $20,000 with no maintenance cost
the first year. However, it has a maintenance cost of
$100 the second year and increases $100 per year in subsequent
years. Its salvage value is $5,000 and has a useful life
of 12 years. The MARR...
Resurfacing a particular section of highway would result in cost of maintenance savings of $500 per...
Resurfacing a particular section of highway would result in cost
of maintenance savings of $500 per year for the first five years
and $1,000 per year for the next five years. If maintenance costs
are the only consideration, the maximum amount to spend now on the
project at 5% interest is
Years 0 1 2 3 4 Investment Outlay Equipment cost ($350,000) Shipping and installation ($70,000)...
Years
0
1
2
3
4
Investment Outlay
Equipment
cost
($350,000)
Shipping
and installation
($70,000)
Increase
in inventory
($55,000)
Increase
in accounts payable
$18,000
Total
initial investment
($457,000)
Operating
cash flow
$ 113,990
$
96,350
$ 140,450
$ 152,210
Total
termination cash flow
$
53,250
Project Cash Flows
Net cash flows
($457,000)
$113,990
$96,350
$140,450
$205,460
Required
return (used as the discount rate)
12%
Payback
period
(2.22)
Present
value of net cash inflows
Present
value of cash outflows
Profitability...
The Furros Company purchased equipment providing an annual savings of $10,000 at the end of each year over the next 10 years.
Question 5 - TVM Worksheet – compute PV in an Ordinary Annuity [2 points]
The Furros Company purchased equipment providing an annual savings of $10,000 at the end of each year over the next 10 years. Assuming an annual discount rate of 10%, what is the present value of the savings?
Question 6 - TVM Worksheet – compute PV in an Annuity Due [2 points]
The Furros Company purchased equipment providing an annual savings of $10,000 at...
vompany need to decide .a initial cost -225000000 annual operations cost -30000000 maintenance cost 50000000 estimated...
vompany need to decide .a
initial cost -225000000
annual operations cost -30000000
maintenance cost 50000000
estimated life in years -infinite
and b option
inital ckst - 350000000
annual depreciation cost 6000000
maintenance cost
per every 20 ysars 30000000 .estimated life - infinite
marr is 7%
which option you would recommend
The following data pertain to an investment proposal Cost of investment 45,000 annual Cost savings 10,000...
The following data pertain to an investment proposal
Cost of investment 45,000
annual Cost savings 10,000
Estimated salvage value 0
Expected life of investemnt 5 years
discount Rate 10%
What is the net present Value of the proposed investment
Alternative A has an initial acquisition cost of $10,000 and an annual average operating and maintenance...
Alternative A has an initial acquisition cost of $10,000 and an
annual average operating and maintenance cost of $1402 per down
time. Alternative B has a higher acquisition cost of $20,000, but
has a lower annual average operating and maintenance cost of $500
per down time. With an expected lifetime of 5 years for both
alternatives, and an annual interest of 5%, determine the break
even number of down times per year.
please show all work
A project has a first cost P, annual savings A and a salvage value of $500...
A project has a first cost P, annual savings A and a salvage
value of $500 at the end of its 10-year service life. It is also
known that the IRR for this project is 11 %, and the payback period
is 8 years. What is the project's first cost? (Don't use
the $ sign and coma in your answer!)
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