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Setler79 [48]
3 years ago
7

A round hole will be created at a sheet metal with a single punch. The diameter of the hole is 10 mm and the thickness of the sh

eet metal is 1 mm. The ultimate tensile strength of the material is 190 MPa.
Calculate the necessary force to cut the hole at the sheet metal.
Engineering
1 answer:
matrenka [14]3 years ago
7 0

Answer:

force = 5.969 kN

Explanation:

given data

diameter of the hole D =  10 mm

thickness of sheet metal T = 1 mm

ultimate tensile strength =  190 MPa

solution

force is express as

force = ultimate tensile strength × Area  ............1

and here area will be

area = π × D × T   ................2

area = π × 10  × 1

area = 31.4159 mm²

so put value in equation 1 we get

force  = 190 × 31.4159

force = 5969.02 N

force = 5.969 kN

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Answer:

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2.66 atm

Explanation:

Using the ideal gas equation

PV =nRT

P =pressure = 2.9 atm

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n = number of moles = ?

R = the gas constant = 0.0821 atm L/(mol K)

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make n subject of the formula

n =PV/RT

n = 2.9 atm x 0.72 L / 0.0821 atm L/(mol K) x 319K = 0.07973 moles of O2 gas were produced

Pnew = atm?

P = nRT/V

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Cuáles son los sentidos comunes que se pueden utilizar, para identificar un metal, gases o líquido
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Answer:

A solid has definite volume and shape, a liquid has a definite volume but no definite shape, and a gas has neither a definite volume nor shape.

Explanation:

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3 years ago
It is the tool used to measure the amount of electric current​
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Answer:

Ammeter

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3 years ago
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Determine the carburizing time necessary to achieve a carbon concentration of 0.30 wt% at a position 4 mm into an iron–carbon al
Ahat [919]

Answer:

the carburizing time necessary to achieve a carbon concentration is 31.657 hours

Explanation:

Given the data in the question;

To determine the carburizing time necessary to achieve the given carbon concentration, we will be using the following equation:

(Cs - Cx) / (Cs - C0) = ERF( x / 2√Dt)

where Cs is Concentration of carbon at surface = 0.90

Cx is Concentration of carbon at distance x = 0.30 ; x in this case is 4 mm = ( 0.004 m )

C0 is Initial concentration of carbon = 0.10

ERF() = Error function at the given value

D = Diffusion of Carbon into steel

t = Time necessary to achieve given carbon concentration ,

so

(Cs - Cx) / (Cs - C0) = (0.9 - 0.3) / (0.9 - 0.1)

= 0.6 / 0.8

= 0.75

now, ERF(z) = 0.75; using ERF table, we can say;

Z ~ 0.81; which means ( x / 2√Dt) = 0.81

Now, Using the table of diffusion data

D = 5.35 × 10⁻¹¹ m²/sec at (1100°C) or 1373 K

now we calculate the carbonizing time by using the following equation;

z = (x/2√Dt)

t is carbonizing time

so we we substitute in our values

0.81 = ( 0.004 / 2 × √5.35 × 10⁻¹¹ × √t)

0.81 = 0.004 / 1.4628 × 10⁻⁵ × √t

0.81 × 1.4628 × 10⁻⁵ × √t = 0.004

1.184868 × 10⁻⁵ × √t = 0.004  

√t = 0.004 / 1.184868 × 10⁻⁵

√t = 337.5903

t = ( 337.5903)²  

t = 113967.21 seconds

we convert to hours

t = 113967.21 / 3600

t = 31.657 hours

Therefore, the carburizing time necessary to achieve a carbon concentration is 31.657 hours

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