contestada

An electric water heater held at 120° F is kept in a 60°F room. When purchased, its insulation is equivalent to R-5. An owner puts a 30-ft^2 blanket on the water heater, raising its total R value to 15. Assuming 100 percent conversion of electricity costs 6.0 cents/kWh, how much money will be saved in the energy each year?

Respuesta :

Answer:

Total saving would be of 36.917 $\yr

Explanation:

Given Data:

[tex]T_{heater} = 120[/tex] Degree F

[tex] T_{room} = 60[/tex] Degree F

A = 30 ft^2

[tex]\eta = 100[/tex]%

Heat loss before previous final value [tex]= \frac{A \Delta T}{R}[/tex]

                                                              [tex]=\frac{30\times *(120-60)}{5}[/tex]

                                                              = 360 Btu/hr

Heat loss after new value[tex] = \frac{30\times \times (120-60)}{15} = 120 Btu/hr[/tex]

saving would be [tex]= 360 - 120 Btu/hr \times kw hr/ 3412 Btu\times 24 hr/day \times 365 day/year[/tex]

                           = 616.1782 kw hr/yr

[tex]cost = 616.1782 \times 0.06[/tex]$

         = 36.917 $\yr

Otras preguntas

ACCESS MORE
EDU ACCESS