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Tema [17]
3 years ago
10

Morgana Company identifies three activities in its manufacturing process: machine setups, machining, and inspections. Estimated

annual overhead cost for each activity is $150,000, $375,000, and $87,500, respectively. The cost driver for each activity and the expected annual usage are number of setups 2,500, machine hours 25,000, and number of inspections 1,750.
Compute the overhead rate for each activity.
Machine setups $ per setup
Machining $ per machine hour
Inspections $ per inspection
Business
1 answer:
Alex_Xolod [135]3 years ago
7 0

Answer:

Machine setup= $60 per setup

Machining= $15 per machine hour

Inspections= $50 per inspection

Explanation:

Giving the following information:

Estimated overhead costs:

Machine setup= 150,000

Machining= 375,000

Inspections= 87,500

The cost driver for each activity and the expected annual usage are number of setups 2,500, machine hours 25,000, and number of inspections 1,750.

To calculate the estimated manufacturing overhead rate we need to use the following formula:

Estimated manufacturing overhead rate= total estimated overhead costs for the period/ total amount of allocation base

Machine setup= 150,000/2,500= $60 per setup

Machining= 375,000/25,000= $15 per machine hour

Inspections= 87,500/1,750= $50 per inspection

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Answer:

An insurance premium is the amount of money an individual or business pays for an insurance policy.

Explanation:

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6 0
3 years ago
Any combination of goods that can be produced with currently available resources is an?
Lostsunrise [7]

Any combination of goods that can be produced with currently available resources is an efficient point. Thus, option C is correct.

<h3>What are resources? </h3>

Every company's basic production inputs and outputs in the supply chain are considered economic assets. The concept of corporate finance, in particular, the management of yield and pricing.

As there will be no need to purchase any new product and the old ones will also be made just without making any expenses, then that means that the line of production will receive a point in efficiency. Therefore, option C is the correct option.

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The question is incomplete, the complete question will be;

a. attainable and efficient point.

.b. attainable point

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6 0
1 year ago
A cylindrical part of diameter d is loaded by an axial force p. this causes a stress of pya, where a 5 pd2y4. if the load is kno
raketka [301]

Here is the correct question.

A cylindrical part of diameter d is loaded by an axial force p. this causes a stress of P/A, where A= πd²/4. if the load is known with an uncertainty of ±10 percent, the diameter is known within ±5 percent (tolerances), and the stress that causes failure (strength) is known within ±15 percent, determine the minimum design factor that will guarantee that the part will not fail.

Answer:

the minimum design factor that will guarantee that the part will not fail. = 1.434

Explanation:

Looking at the uncertainty; loss of strength must be raised to \dfrac{1}{0.85} due to the stress that causes the failure (strength)  is known within ±15% uncertainty.

Looking at the uncertainty; the maximum allowable load  must be reduced to \dfrac{1}{1.1} because the load is known with an uncertainty of ±10.

Looking at the uncertainty; the diameter must be raised to \dfrac{1}{0.95}  because the diameter is known within an uncertainty of ±5.

The decrease in the maximum allowable stress can be estimated as:

\sigma' = \dfrac{P'}{A'}

where,

\sigma = stress

P = load

A = cross-sectional area of the cylinder

∴

\sigma' = \dfrac{P'}{\dfrac{\pi}{4}(d')^2}

replacing P' with \dfrac{1}{1.1}P   and d' with \dfrac{1}{0.95}d, we have:

\sigma' = \dfrac{(\dfrac{1}{1.1})\times p }{\dfrac{\pi}{4}(\dfrac{1}{0.95 } d)^2 }

\sigma' =\dfrac{P}{\dfrac{\pi}{4}d^2} (\dfrac{\dfrac{1}{1.1} }{(\dfrac{1}{0.95})^2 }) }

\sigma' =\sigma \times (\dfrac{\dfrac{1}{1.1} }{(\dfrac{1}{0.95})^2 }) }

\sigma' =\sigma \times 0.82045

\dfrac{\sigma' }{\sigma } =0.82045

Thus, the uncertainty in diameter and the load of the allowable stress needs to decrease to 0.82045

Now, the minimum design factor that will ascertain that the part will not fail can be computed as:

n_d = \dfrac{loss  \ of  \ function \  parameter }{maximum \  allowable \ parameter}

where;

the design factor = n_d

n_d =\dfrac{\dfrac{1}{0.85} }{0.82045}

the design factor  n_d = 1.434.

Thus,  the minimum design factor that will guarantee that the part will not fail. = 1.434

7 0
3 years ago
Green Corporation has total sales revenues of $400,000. If its total fixed costs are $70,000 and its total variable costs are $1
Georgia [21]

Answer:

Part 1

the contribution margin is $220,000

Part 2

the net change in operating income is $270,000

Part 3

Stanley's Bicycles contribution margin is $7,500

Explanation:

Green Corporation Contribution Margin Statement

Sales revenues                 $400,000

Less Variable costs          ($180,000)

Contribution                      $220,000

Less Fixed Cost                 ($70,000)

Net Income                         $150,000

Frost Company Contribution Margin Statement

Contribution  ($49 x   10,000)                  $490,000

Less Fixed Cost                                         ($70,000)

Net Income                                                $420,000

Change = $420,000 - $150,000 = $270,000

Stanley's Bicycles Contribution Margin Statement

Sales Revenue ($750 x 200)                     $150,000

Less Variable Costs :

Cost of Sales ( $600 x 200)                     ($120,000)

Commission ($150,000 x 15%)                  ($22,500)

Contribution                                                   $7,500

Less Fixed Costs

Rent expense                                                ($1,400)

Salaries                                                         ($3,000)

Net Income                                                     $3,100

8 0
3 years ago
How much interest will Pablo receive from his investment?
Arlecino [84]

Explanation:

please post full question ..... question is incomplete...

5 0
3 years ago
Read 2 more answers
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