¿que cantidad de cobre de una solucion de sulfato cuprico CuSO4 se depositara cuando pasa una corriente de 5 amperios en 30 minutos ?
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Cu⁺² + 2e⁻ → Cu
Mm Cu = 63.5 g/mol
1. aplicar la fórmula m = Mm x I x t
`````````````````
carga x 96500
t = 1 min ------- 60 s
30 min ------- x
x = 1800 s
m = 63.5 g/mol x 5 c/s x 1800 s
`````````````````````````````````````
2 x 96500 c/eq
m = 2.96 g de cobre
```````````````````````````````````````````````````````````````````````````````````````````
otra forma de calcular gramos
Mm Cu = 63.5 g/mol
calcular eq-g del Cu = 63.5 g/mol / 2
eq-g = 31.75 g/eg
calcular Q = I x T
Q = 5 c/s x 1800 s
Q = 9000 coulombios
calcular faraday
1 faraday ------- 96500 c
x -------- 9000 c
x = 0.0932 faraday
3. calcular gramos
1 f ------- 31.75 g
0.0932 f ------- x
x = 2.96 g de Cu
Mm Cu = 63.5 g/mol
1. aplicar la fórmula m = Mm x I x t
`````````````````
carga x 96500
t = 1 min ------- 60 s
30 min ------- x
x = 1800 s
m = 63.5 g/mol x 5 c/s x 1800 s
`````````````````````````````````````
2 x 96500 c/eq
m = 2.96 g de cobre
```````````````````````````````````````````````````````````````````````````````````````````
otra forma de calcular gramos
Mm Cu = 63.5 g/mol
calcular eq-g del Cu = 63.5 g/mol / 2
eq-g = 31.75 g/eg
calcular Q = I x T
Q = 5 c/s x 1800 s
Q = 9000 coulombios
calcular faraday
1 faraday ------- 96500 c
x -------- 9000 c
x = 0.0932 faraday
3. calcular gramos
1 f ------- 31.75 g
0.0932 f ------- x
x = 2.96 g de Cu
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