12. Never spray brakes with a high-pressure stream of water or air because it could blow asbestos fibers into the air.

Check the answer that best describes the relationship between f(x) and x. (For example if f(x) is Θ(x) check that as your answer

egoroff_w [7]

Answer:

Correct option is A - O(x)

Explanation:

Given f(x) = 10 and g(x) = x

Hence f(x) is O g(x)

As such correct answer is O(x) which is option A

3 0

2 years ago

The 2-Mg concrete pipe has a center of mass at point G. If it is suspended from cables AB and AC, determine the diameter of cabl

Lapatulllka [165]

Answer:

d_ab = 0.01189 m or 11.89 mm

Explanation:

Given:

- Weight of the block W = 2 Mg

- The diameter of cable AC, d_ac = 10 mm

Find:

- determine the diameter of cable AB so that the average normal stress in this cable is the same as in the cable AC.

Solution:

- We will apply equilibrium conditions on the given structure:

Sum of forces in vertical y direction = 0

F_ab*cos(30) + F_ac*sin(45) - W = 0

Where, W = 2*10^3 * 9.81 = 19.62 KN

F_ab*cos(30) + F_ac*sin(45) - 19.62 = 0 .... 1

Sum of forces in horizontal x direction = 0

F_ab*sin(30) - F_ac*cos(45) = 0 ..... 2

- Now solve Equation 1 and 2 simultaneously:

From Eq 2: F_ac*cos(45) = F_ab*sin(30)

Input Eq 1: F_ab * (cos(30) + sin(30)) = 19.62

F_ab = 19.62 / (cos(30) + sin(30))

F_ab = 14.36 KN

Input Eq 2: F_ac = 14.36*sin(30) / cos(45)

F_ac = 10.16 KN

- Compute the cross-section areas of the both cables:

A_ac = pi*d_ac^2 / 4 = pi*(0.01)^2 / 4

A_ac = pi*d_ab^2 / 4 = pi*(d_ab)^2 / 4

- Compute the normal stress in both cables:

Q_ac = F_ac / A_ac

Q_ab = F_ab / A_ab

We know that: Q_ab = Q_ac

F_ac / A_ac = F_ab / A_ab

- Plug in the values:

F_ac / F_ab = A_ac / A_ab

10.16 / 14.36 = (pi*(0.01)^2 / 4) / (pi*(d_ab)^2 / 4)

d_ab = sqrt (14.355*0.01^2 / 10.16)

d_ab = sqrt (0.000141338)

d_ab = 0.01189 m or 11.89 mm

8 0

2 years ago

Two resistors of values 7.0 and 15.0 Ω are connected in parallel. This combination in turn is hooked in series with a 3.8- Ω res

Alex

Answer:

1.8A

Explanation:

Firstly, we need to find the effective resistance in the circuit.

For the two parallel resistors, the effective resistance is;

1/R = 1/7 + 1/15

R = 8.57Ω

Now let's connect it in series with the series resistor

R = 8.57 + 3.8 = 12.37Ω

This is the total effective resistance

The total current is therefore

22.3/8.57 = 1.8A

This is also the current flowing through the 3.8 resistor since it is connected in series

7 0

2 years ago

Theorems of Pappus and Guldinus are used to find: a. The surface area and volume of a body of rotation b. The surface area and v

s2008m [1.1K]

Answer:

option (a). The surface area and volume of a body of rotation

is the correct option

Explanation:

Theorems of Pappus and Guldinus are used to find the surface area and volume of a revolving body. It is neither applicable for surface areas and volumes of a symmetric body nor it helps to find the overall mass of any body. Thus, it can help to calculate the surface area and volume of any body rotated in 2-D frame(or any 2-D curve).

It is given or calculated as the product of area, perpendicular distance from the axis and length of the 2-D curve.

6 0

2 years ago

A steam power plant operates on an ideal reheat- regenerative Rankine cycle and has a net power output of 80 MW. Steam enters th

trasher [3.6K]

Answer:

flow(m) = 54.45 kg/s

thermal efficiency u = 44.48%

Explanation:

Given:

- P_1 = P_8 = 10 KPa

- P_2 = P_3 = P_6 = P_7 = 800 KPa

- P_4 = P_5 = 10,000 KPa

- T_5 = 550 C

- T_7 = 500 C

- Power Output P = 80 MW

Find:

- The mass flow rate of steam through the boiler

- The thermal efficiency of the cycle.

Solution:

State 1:

P_1 = 10 KPa , saturated liquid

h_1 = 192 KJ/kg

v_1 = 0.00101 m^3 / kg

State 2:

P_2 = 800 KPa , constant volume process work done:

h_2 = h_1 + v_1 * ( P_2 - P_1)

h_2 = 192 + 0.00101*(790) = 192.80 KJ/kg

State 3:

P_3 = 800 KPa , saturated liquid

h_3 = 721 KJ/kg

v_3 = 0.00111 m^3 / kg

State 4:

P_4 = 10,000 KPa , constant volume process work done:

h_4 = h_3 + v_3 * ( P_4 - P_3)

h_4 = 721 + 0.00111*(9200) = 731.21 KJ/kg

State 5:

P_5 = 10,000 KPa , T_5 = 550 C

h_5 = 3500 KJ/kg

s_5 = 6.760 KJ/kgK

State 6:

P_6 = 800 KPa , s_5 = s_6 = 6.760 KJ/kgK

h_6 = 2810 KJ/kg

State 7:

P_7 = 800 KPa , T_7 = 500 C

h_7 = 3480 KJ/kg

s_7 = 7.870 KJ/kgK

State 8:

P_8 = 10 KPa , s_8 = s_7 = 7.870 KJ/kgK

h_8 = 2490 KJ/kg

- Fraction of steam y = flow(m_6 / m_3).

- Use energy balance of steam bleed and cold feed-water:

E_6 + E_2 = E_3

flow(m_6)*h_6 + flow(m_2)*h_3 = flow(m_3)*h_3

y*h_6 + (1-y)*h_3 = h_3

y*2810 + (1-y)*192.8 = 721

Compute y: y = 0.2018

- Heat produced by the boiler q_b:

q_b = h_5 - h_4 +(1-y)*(h_7 - h_8)

q_b = 3500 -731.21 + ( 1 - 0.2018)*(3480 - 2810)

Compute q_b: q_b = 3303.58 KJ/ kg

-Heat dissipated by the condenser q_c:

q_c = (1-y)*(h_8 - h_1)

q_c= ( 1 + 0.2018)*(2810 - 192)

Compute q_c: q_c = 1834.26 KJ/ kg

- Net power output w_net:

w_net = q_b - q_c

w_net = 3303.58 - 1834.26

w_net = 1469.32 KJ/kg

- Given out put P = 80,000 KW

flow(m) = P / w_net

compute flow(m) flow(m) = 80,000 /1469.32 = 54.45 kg/s

- Thermal efficiency u:

u = 1 - (q_c / q_b)

u = 1 - (1834.26/3303.58)

u = 44.48 %

5 0

2 years ago