Equilibrium Process Flowsheets & Simulations
Explore 4 validated, solved Equilibrium simulation flowsheets in MaximaLabs — real components: sulfur_dioxide, oxygen, nitrogen, sulfur_trioxide, methane, water. Open any one directly in your browser.
Solved via: PENG-ROBINSON, NRTL.
Sulfuric acid: catalytic SO2 oxidation (contact process)
The heart of a sulfuric-acid plant: roaster/burner gas (SO₂ in excess air) is oxidized to SO₃ over a vanadium-pentoxide catalyst bed, then the SO₃ is absorbed to make acid. The converter is a Gibbs-minimization reactor (Aspen RGibbs equivalent) that finds the SO₂ ⇌ SO₃ equilibrium from first-principles formation energies — no assumed conversion — so it captures the real design tension of the contact process: the reaction SO₂ + ½O2 → SO₃ is exothermic, so a lower bed temperature drives the equilibrium toward SO₃ (higher conversion) while a higher temperature is needed for catalyst activity. At 700 K this converts ~99% of the SO₂; raise the sensitivity temperature and watch the equilibrium conversion fall — the reason real plants use multiple catalyst beds with interstage cooling. The SO₃-rich gas then goes to an absorption tower (modeled as SO₃ capture into the acid product, leaving a spent tail gas of N₂ + excess O₂). Formation-energy source: CRC Handbook / NIST-JANAF (ΔHf°/ΔGf° for SO₂ and SO₃).
5 unit ops • PENG-ROBINSON
176 0
View & openBlue hydrogen: SMR + water-gas-shift + CO2 capture
A low-carbon (blue) hydrogen train: steam-methane reforming converts natural gas + steam to syngas (CH₄ + H₂O <=> CO + 3H2) at 1123 K, a water-gas-shift reactor converts the CO with more steam to extra H₂ + CO₂ (CO + H₂O <=> CO₂ + H₂), the gas is cooled, the process water knocked out, and 96% of the CO₂ is captured as a pure stream for sequestration/EOR (the CCS that makes the hydrogen 'blue'). Both reactors are solved to real chemical equilibrium (partial-pressure basis) rather than a fixed conversion.
10 unit ops • PENG-ROBINSON
226 1
View & openC5/C6 isomerization: why the colder catalyst wins
The light end of a gasoline pool. Straight-chain C₅/C₆ paraffins have poor octane, their branched isomers have good octane, and the reaction between them is a simple reversible exothermic rearrangement. Which means the equilibrium gets worse as the reactor gets hotter — and that single fact, not activity, is the technology choice in this unit. Run the built-in temperature sweep: this light straight-run naphtha reaches 74.9% iso-C₅ and 67.2% iso-C₆ at 400 K (the chlorided-alumina window) and only 65.3% and 57.6% at 530 K (the zeolitic window). A chlorided-alumina catalyst does not beat a zeolite by being more active; it beats it by approaching a better equilibrium. That is also why the two are not interchangeable in a revamp — a zeolitic unit cannot be pushed to alumina octane by running harder, only by running colder than its catalyst allows. Two things the flowsheet shows directly: moles are conserved exactly (one molecule in, one molecule out — 100.00000 mol/s out for 100 in, the module's own gate), and the benzene and cyclohexane in the feed pass through untouched at 4.00% and 6.00%, because a component named in no pair is not something this block pretends to convert. Only two pairs are written (n-pentane/isopentane and n-hexane/2-methylpentane) and that is deliberate: pairs are applied in sequence over a shared mole pool, so two pairs sharing one normal would let the second redistribute what the first already converted. A real C₆ network (n-hexane / 2-MP / 3-MP / 2,2-DMB / 2,3-DMB, each with its own equilibrium) is a coupled problem this block does not solve — see the.
3 unit ops • PENG-ROBINSON
91 0
View & openBatch campaign: a batch step inside a continuous flowsheet
Fine chemicals and pharma run batches, but a flowsheet is written in mol/s. These two unit ops reconcile that: they integrate the real batch physics over the batch, then report the products as the RATE that campaign delivers, so a batch step sits inside a continuous flowsheet the way a plant actually runs one. The batch reactor esterifies ethanol with acetic acid to ethyl acetate and water. It reaches 63.2% conversion and stops, and that number is not a specification — it is the equilibrium. The reaction is reversible with an equilibrium constant of 4 (the forward and reverse pre-exponentials are given as 5.0e4 and 1.25e4), and solving K = x(0.10+x)/(0.45-x)^2 = 4 for an equimolar charge carrying 10% water gives an extent of 0.285, which is 63.3% of the acid. Fischer esterification really does plateau there; a model that ran to completion would be describing a different reaction. Turnaround time costs throughput exactly as reaction time does. Two hours of reaction plus one hour of turnaround is a 3-hour cycle and 2922 batches a year, and the reactor is only reacting for 67% of the time it is occupied. That fraction is the number that decides whether you need a second reactor, and it is invisible to a steady-state model. The batch still then takes the crude and recovers the ethyl acetate — the distillate comes off essentially pure, from a pot that started at 28.5 mol% ester — on its own longer 4-hour cycle, so the two units run at genuinely different campaign rates. Bounded: the flowsheet sees each unit's CYCLE AVERAGE, not the transient. A real plant has a surge tank between these two smoothing the pulses, and neither the concentration profile during the batch nor the still's changing overhead composition is visible downstream.
5 unit ops • NRTL
69 0
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