MaximaLabs
Back to gallery

Pinch Process Flowsheets & Simulations

Explore 2 validated, solved Pinch simulation flowsheets in MaximaLabs — real components: air, water, methane, ethane, propane, nitrogen. Open any one directly in your browser.

Solved via: PENG-ROBINSON.

Ambient Air
Process Air In
Pvt Heat Source
hot
cold
hot
cold
Pvt Coil
Pvt Heat Sink
Condenser Heat Source
hot
cold
hot
cold
Condenser Coil
Condenser Heat Sink
District Heat Source
hot
cold
hot
cold
District Coil
District Heat Sink
ƒ(x)
Regen Section
Regen Exhaust
ƒ(x)
Dehum Section
Evap Coil
Supply Air Out
Songdo, Incheon, South Korea

Desiccant rotor HVAC — three-stage low-grade heat recovery

A desiccant dehumidification rotor whose regeneration air is preheated by three low-grade heat sources in ascending temperature order: a PVT (photovoltaic-thermal) collector loop at 40 °C, condenser heat rejected by the chiller at 50 °C, and a district-heating return at 55 °C. Cascading them warmest-last is the whole point — each coil lifts the air as far as its own source can reach, so the 55 °C district return is spent only on the final lift instead of being wasted on air that is still at ambient. Every coil leaves a 5 K approach at its hot end, which is what makes this solvable: a cold stream can never leave an exchanger hotter than the hot stream entering it, and in a series train each coil's outlet is the next one's inlet, so a target that looks reasonable in isolation becomes impossible two units downstream. The hot-side flows are sized so the water gives up its duty over a modest ΔT and stays above the air at the cold end as well — specifying the approach alone is not enough if the heat-capacity flow rates don't support it. The rotor's two halves are custom_block equation blocks (the regen side and the process side), and the process air is finished to a 16 °C supply condition by the evaporator coil.

16 unit ops • PENG-ROBINSON

61 1

View & open
FEED GAS
COLD Resid
COLD LIQ
1
2
3
4
5
6
1
2
3
4
5
6
BOX
P COLD
P WARM
P FREE
Reference model

Multistream exchanger: one core, three streams, one free outlet

A cryogenic cold box is not a network of two-stream exchangers — it is one brazed-aluminium core with several streams exchanging heat simultaneously, and the multistream exchanger models it as such. Three streams share this core: 300 mol/s of 300 K feed gas being chilled, 250 mol/s of 190 K residue gas being rewarmed, and 60 mol/s of 200 K cold liquid. You specify outlet temperatures for all but one — 225 K for the feed gas, 280 K for the residue — and the remaining stream is the free one: its outlet, 230.1 K, is not specified but SOLVED, because it is what closes the adiabatic energy balance across the core. That is the correct number of degrees of freedom for an adiabatic exchanger, and specifying all three would over-specify it. The 1.08 MW duty and a composite-curve pinch check against a 3 K minimum approach come with it, so a specification that would need heat to flow the wrong way is rejected rather than reported. Bounded: this is a thermal feasibility and duty model, not a mechanical design. There is no core geometry, no layer stacking, no fin type, no per-stream pressure drop from passage dimensions — a real cold box datasheet needs all of those, and a vendor computes them from proprietary correlations.

7 unit ops • PENG-ROBINSON

10 0

View & open

Stop fighting legacy software. Build your first flowsheet in 60 seconds.