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Mass Balance ( Paul ASHALL )

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200 kg of a 40% w/w methanol/water solution is mixed with 100 kg of a 70% w/w methanol/water solution in a batch mixer unit.

What is the final quantity and composition?

Total initial mass = total final mass = 300 kg

Initial methanol mass = final methanol mass

80 + 70 = final methanol mass = 150 kg

Therefore final composition of batch is (150/300) x 100 = 50 % by wt.

1000 kg of 8% by wt. sodium hydroxide  (NaOH) solution is required. 20% sodium hydroxide solution in water and pure water are available. How much of each is required?

Batch processes operate to a batch cycle and are non-steady state. Materials are added to a vessel in one operation and then process is carried out and batch cycle repeated. Integral balances are carried out on batch processes where balances are carried out on the initial and final states of the system.

3 steps

These processes are continuous in nature and operate in steady state and balances are carried out over a fixed period of time. Materials enter and leave process continuously.

When there is no net accumulation or depletion of mass in a system (steady state) then:

Total mass entering system = total mass leaving system

or total mass at start = total final mass

Input + generation – output – consumption = accumulation

Notes: 1. generation and consumption terms refer only to generation of products and consumption of reactants as a result of chemical reaction. If there is no chemical reaction then these terms are zero.

  1. Apply to a system

  2. Apply to total mass and component mass

1000 kg of a 10 % by wt. sodium chloride solution is concentrated to 50 % in a batch evaporator. Calculate the product mass and the mass of water evaporated from the evaporator.

Calculate E and x

A 1000 kg batch of a pharmaceutical powder containing 5 % by wt water is dried in a double cone drier. After drying 90 % of the water has been removed. Calculate the final batch composition and the weight of water removed.

1000 kg of a 20% by wt mixture of acetone in water is separated by multistage batch distillation. The top product (distillate) contains 95% by wt. acetone and the still contains 2% acetone. Calculate the amount of distillate.

It is often useful to calculate a mass balance using molar quantities of materials and to express composition as mole fractions or mole %.

Distillation is an example, where equilibrium data is often expressed in mole fractions.

Benzene is C6H6. The molecular weight is (6×12) + (6×1) = 78

So 1 mole of benzene is 78 grams

1 kmol is 78 kg

1000 kmol of an equimolar mixture of benzene and toluene is distilled in a multistage batch distillation unit. 90 % of the benzene is in the top product (distillate). The top product has a benzene mole fraction of 0.95. Calculate the quantities of top and bottom products and the composition of the bottom product.

A crystalliser contains 1000 kg of a saturated solution of potassium chloride at 80 deg cent. It is required to crystallise 100 kg KCl  from this solution. To what temperature must the solution be cooled?

At 80 deg cent satd soln contains (51.1/151.1)x100 % KCl i.e. 33.8% by wt

So in 1000 kg there is 338 kg KCl & 662 kg water.

Crystallising 100 kg out of soln leaves a satd soln containing 238 kg KCl and 662kg water i.e. 238/6.62 g KCl/100g water which is 36 g KCl/100g. So temperature required is approx 27 deg cent from table.

F = 195 kg; xf = 0.11 kg API/kgwater

S = 596 kg chloroform

y = 1.72x, where y is kgAPI/kg chloroform in extract and x is kg API/kg water in raffinate.

Total balance 195 + 596 = E + R

API balance 19.5 = 175.5×1 + 596y1

19.5 = 175.5×1 + 596.1.72×1

x1 = 0.0162 and y1 = 0.029

R is 175.5 kg water + 2.84 kg API

and E is 596 kg chloroform + 17.28 kg API

Note: chloroform and water are essentially immiscible

E – evaporator; C – crystalliser; F – filter unit

F1 – fresh feed; W2 – evaporated water; P3 – solid product; R4 – recycle of saturated solution from filter unit

A mass balance and tracking of usage of a solvent used in an API production process is required for a Pollution Emission Register (PER).

Discuss and outline in general terms how you would do this.

Ref. www.epa.ie

aA + bB    cC + dD

i.e. a moles of A react with b moles of B to give c moles of C and d moles of D.

a,b,c,d are stoichiometric quantities

A reactant is in excess if it is present in a quantity greater than its stoichiometric proportion.

% excess = [(moles supplied – stoichiometric moles)/stoichiometric moles] x 100

Yield = (moles product/moles limiting reactant supplied) x s.f. x 100

Where s.f. is the stoichiometric factor = stoichiometric moles reactant required per mole  product

Selectivity = (moles product/moles reactant converted) x s.f. x100

OR

Selectivity = moles desired product/moles byproduct

Extent of reaction = (moles of component leaving reactor – moles of component entering reactor)/stoichiometric coefficient of component

Note: the stoichiometric coefficient of a component in a chemical reaction is the no. of moles in the balanced chemical equation ( -ve for reactants and +ve for products)

A   B

i.e. stoichiometric coefficients a = 1; b = 1

100 kmol fresh feed A; 90 % single pass conversion in reactor; unreacted A is separated and recycled and therefore overall process conversion is 100%

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