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Recent questions in Chemistry
0
votes
1
answer
46
views
Calculate the corrosion potential of copper in seawater environment having a pH of 8.2 and a temperature of 25°C given that the standard hydrogen electrode potential is -0.76 V and the concentration of copper ions in seawater is 2.5 x 10^-5 M.
asked
Jan 23
in
ElectroChemistry
by
BillBonds192
(
490
points)
0
votes
1
answer
50
views
Calculate the corrosion potential of copper in a galvanic couple with a standard hydrogen electrode at 298 K, given that the standard electrode potential of copper is +0.34 V and the standard electrode potential of hydrogen is 0 V.
asked
Jan 23
in
ElectroChemistry
by
DaniPflaum9
(
410
points)
0
votes
1
answer
60
views
Calculate the corrosion potential of a zinc-copper galvanic couple in which the zinc electrode has a concentration of 0.1 M and the copper electrode has a concentration of 0.01 M. The standard reduction potentials for Zn2+/Zn and Cu2+/Cu are -0.76 V and +0.34 V, respectively.
asked
Jan 23
in
ElectroChemistry
by
JeramyFerret
(
650
points)
0
votes
1
answer
29
views
Calculate the corrosion potential of a silver metal in a solution containing 0.1 M silver nitrate and 1 M nitric acid given that the standard reduction potential of the Ag⁺/Ag couple is +0.80 V and the standard reduction potential of the NO₃⁻/NO₂⁻ couple is +0.96 V.
asked
Jan 23
in
ElectroChemistry
by
PatriceBuck
(
310
points)
0
votes
1
answer
52
views
Calculate the corrosion potential of a pure copper metal electrode immersed in a 0.1 M solution of CuSO4 at 298 K, given that the standard electrode potential of Cu2+/Cu is +0.34 V and the standard potential of the hydrogen electrode is 0 V. Assume that activity coefficients for copper ions and sulfate ions are equal to 1.0 in the solution. What is the likelihood that this copper electrode will corrode in this given environment?
asked
Jan 23
in
ElectroChemistry
by
BuckForro541
(
310
points)
0
votes
1
answer
52
views
Calculate the corrosion potential of a nickel metal electrode in a 0.1 M NaCl solution with a pH of 7.2, given that the standard electrode potential for the Ni2+/Ni redox reaction is -0.25 V vs. the standard hydrogen electrode.
asked
Jan 23
in
ElectroChemistry
by
RhondaMcfadd
(
570
points)
0
votes
1
answer
47
views
Calculate the corrosion potential of a copper metal electrode in a solution containing 0.1M CuSO4 and 0.5M H2SO4 at 298K, given that the standard electrode potential of the Cu2+/Cu electrode is +0.34V and a hydrogen electrode is used as the reference electrode.
asked
Jan 23
in
ElectroChemistry
by
DebraAtkinso
(
470
points)
0
votes
1
answer
44
views
Calculate the corrosion potential of a copper metal electrode in a 0.1 M CuSO4 solution at 25°C, given that the standard reduction potential of Cu2+/Cu is +0.34 V.
asked
Jan 23
in
ElectroChemistry
by
KerstinFidle
(
350
points)
0
votes
1
answer
47
views
Calculate the corrosion potential of a copper electrode that is coupled with a silver electrode in a 0.010 M silver nitrate solution at 25°C. Given that the standard reduction potential for Ag+ + e- → Ag is +0.80V and for Cu2+ + 2e- → Cu is +0.34V. What is the potential of the copper electrode with respect to the standard hydrogen electrode?
asked
Jan 23
in
ElectroChemistry
by
HeatherMaur
(
450
points)
0
votes
1
answer
48
views
Calculate the corrosion potential of a copper electrode immersed in a 1 M CuSO4 solution in contact with a silver electrode immersed in a 1 M AgNO3 solution. Given that the standard reduction potentials of Cu2+/Cu and Ag+/Ag are +0.34 V and +0.80 V, respectively. Determine which electrode will corrode and which electrode will act as a cathode in the galvanic cell.
asked
Jan 23
in
ElectroChemistry
by
LorrineLaby8
(
390
points)
0
votes
1
answer
52
views
Calculate the corrosion potential of a copper electrode immersed in a 0.10 M solution of copper(II) sulfate at 25°C, given that the standard reduction potential of Cu2+/Cu is +0.34 V and the pH of the solution is 4.5.
asked
Jan 23
in
ElectroChemistry
by
DeonFoos037
(
450
points)
0
votes
1
answer
57
views
Calculate the corrosion potential for an iron electrode in a galvanic couple with a standard hydrogen electrode at 25°C if the concentration of Fe2+ ion is 0.05 M and pH is 7.
asked
Jan 23
in
ElectroChemistry
by
JustinWolins
(
470
points)
0
votes
1
answer
54
views
Calculate the corrosion potential for a pure iron (Fe) electrode in a 1 M HCl solution at 25°C, given that the standard reduction potential of Fe in acidic solution is -0.44 V.
asked
Jan 23
in
ElectroChemistry
by
CyrusPremo0
(
310
points)
0
votes
1
answer
43
views
Calculate the corrosion current density of an iron rod having a surface area of 15 cm², immersed in an acid solution (pH=3) with a temperature of 50°C. The concentration of iron ions (Fe²⁺) in the solution is 0.1 M, and the standard reduction potential of iron is -0.44 V. The Tafel slope obtained experimentally is 0.12 V/decade. Use the Tafel equation to calculate the corrosion current density (in A/cm²) of the iron rod.
asked
Jan 23
in
ElectroChemistry
by
WendellHowel
(
190
points)
0
votes
1
answer
51
views
Calculate the corrosion current density of a steel metal in contact with a copper metal, given that the corrosion potential of steel and copper are -0.58 V and +0.34 V, respectively. The temperature and pH of the solution are 25°C and 7, respectively. The surface area of the steel metal is 10 cm2 and the copper metal is a large area electrode.
asked
Jan 23
in
ElectroChemistry
by
RainaGumm51
(
430
points)
0
votes
1
answer
58
views
Calculate the corrosion current density of a stainless steel electrode in a 0.5 M HCl solution at 25 degrees Celsius, given that the polarization resistance of the electrode is 200 ohms and the corrosion potential is -0.3 V vs. the standard hydrogen electrode (SHE).
asked
Jan 23
in
ElectroChemistry
by
TerrenceMurn
(
310
points)
0
votes
1
answer
53
views
Calculate the corrosion current density of a metal M in a 0.5 M H2SO4 solution with a pH of 2.5, where the half-cell potential of the metal M is -0.8V and the standard hydrogen electrode potential is 0V. The temperature of the solution is 25°C and the density of the metal is 7.85 g/cm³.
asked
Jan 23
in
ElectroChemistry
by
KellieBarber
(
250
points)
0
votes
1
answer
45
views
Calculate the corrosion current density of a copper metal in 1 M HCl solution at 25°C, given that the corrosion potential of copper electrode in the given environment is -0.35 V(SHE) and the exchange current density is 0.038 A/m². Also, determine the corrosion rate of copper in the same environment if the density of copper is 8.96 g/cm³.
asked
Jan 23
in
ElectroChemistry
by
VirgilioGree
(
350
points)
0
votes
1
answer
37
views
Calculate the corrosion current density for a zinc-copper galvanic couple, with a surface area of 10 cm² each, immersed in a 0.1 M copper sulfate solution and a 0.1 M zinc sulfate solution, respectively. Given that the exchange current density for the zinc and copper electrodes are 0.0035 A/cm² and 0.1184 A/cm², respectively, What will be the corrosion rate for the zinc electrode in micrometers per year?
asked
Jan 23
in
ElectroChemistry
by
AdalbertoMcC
(
410
points)
0
votes
1
answer
10
views
Calculate the corrosion current density for a steel pipe of diameter 10 cm and length 20 m, which is exposed to a 0.1 M HCl solution. The corrosion potential of steel in the given environment is -0.5 V (SHE), the Tafel slope is 0.12 V/decade, and the temperature is 25°C. Consider the density of steel to be 7.86 g/cm³ and the flow rate of the solution to be 5 L/min.
asked
Jan 23
in
ElectroChemistry
by
GabrieleMich
(
350
points)
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