A Large Equation Balanced by Nathan Mettlach

To balance this equation, balancing for mass seems to be the easiest way. The number of each type of element should be the same on both sides. Since coefficients are sought, let the letters "a" through "i" stand for the coefficients of the different compounds. All the following equations need to be satisfied to balance the equation:

for chromium 7a = 2d

for nitrogen 66a = g

hydrogen 96a + 2c = 2i

carbon 42a = f

oxygen

(excluding O present in SO₄ ion) 24a+4b = 7d+2f+3g+i

potassium b = 2d + g + 2h
manganese b = e

sulfate ions

(since it is not broken apart) c = e + h

Since all the equations need to be satisfied, combining them while trying to eliminate as many variables as possible is the next step.
c = e + h b = e, b = 2d + g + 2h

c = (2d + g + 2h) + h 96a + 2c = 2i

96a + 2(2d + g + 3h) = 2i

24a + 4b = 7d + 2f + 3g + [48a + (2d + g + 3h)]

4b = 24a + 9d + 2f + 4g + 3h d = 3.5a

4b = 24a + 31.5a + 84a + 264a + 3h h = 0.5b - d - 0.5g

h = 0.5b - 3.5a - 33a

4b = 403.5a + 1.5b - 10.5a - 99a

2.5b = 294a (at this point, since d = 3.5a, the coefficient

in front of "b" is even)

10b = 1176a (since "a" must be even, and the only factors
of ten are 5 and 2, these numbers are factors

of the original equation's coefficients)
Using a = 10 and b = 1176, we can find the rest of the coefficients by substituting into the set of equations that needed to be satisfied.
c = 1399, d = 35, e = 1176, f = 420, g = 660, h = 223, i = 1879

The balanced equation is as follows:

10[Cr(N₂H₄CO) ₆]₄[Cr(CN)₆]₃ + 1176KMnO₄ + 1399H₂SO₄ ->

35K₂Cr₂O₇ + 1176MnSO₄ + 420CO₂ + 660KNO₃

+ 223K₂SO₄ +