| name | pinch-analysis |
| description | Pinch analysis — composite curves, pinch point, minimum utility targets (Q_H_min, Q_C_min), heat exchanger network (HEN) design, ΔT_min, stream matching rules, Linnhoff methodology, energy integration. |
| metadata | {"priority":7,"promptSignals":{"phrases":["pinch analysis","pinch technology","composite curve","heat exchanger network","HEN design","minimum utility","energy integration"],"minScore":3}} |
Pinch Analysis — Complete Skill
Fundamentals (Linnhoff, 1978)
Purpose: identify minimum energy targets for process before designing heat exchanger network (HEN)
Key principle: process-to-process heat exchange reduces external utility requirements
Pinch: bottleneck temperature in heat exchange; determines minimum heating and cooling utilities
Stream Data Collection
For each process stream, collect:
- Supply temperature T_s [°C]: starting temperature
- Target temperature T_t [°C]: required ending temperature
- Heat capacity flow rate CP = ṁ × c_p [kW/°C]
- Heat duty Q = CP × |T_t - T_s| [kW]
Hot stream: requires cooling (T_s > T_t)
Cold stream: requires heating (T_s < T_t)
Composite Curves
Hot composite curve: overlap of all hot streams on H-T diagram
Plot heat content H vs. T for all hot streams superimposed
Cold composite curve: similarly for all cold streams
Construction:
- Extract T intervals where stream populations change
- Sum CP values of all hot (or cold) streams in each T interval
- Integrate ΔH = CP_sum × ΔT across each interval
- Plot cumulative ΔH vs. T for both curves
Minimum approach temperature ΔT_min:
Horizontal distance between composite curves where they are closest
Typical: ΔT_min = 10°C (oil refinery); 20°C (chemical plant); 3–5°C (refrigeration)
Pinch temperature:
At ΔT_min overlap → hot pinch T_pinch,hot; cold pinch T_pinch,cold = T_pinch,hot - ΔT_min
Minimum Utility Targets
From composite curve overlay:
Q_H_min = area of cold composite curve NOT covered by hot composite (left overhang)
Q_C_min = area of hot composite curve NOT covered by cold composite (right overhang)
Energy conservation rule:
Q_H_actual = Q_H_min + Q_extra [extra = cross-pinch heat transfer]
Every kW of heat transferred across pinch costs 1 kW more hot utility AND 1 kW more cold utility
Three golden rules of pinch analysis:
- Do not transfer heat across the pinch
- Do not use hot utility below the pinch
- Do not use cold utility above the pinch
Targeting Method (Temperature Interval Method)
Problem table algorithm:
- Shift temperatures: hot stream T → T - ΔT_min/2; cold stream T → T + ΔT_min/2
- Divide into temperature intervals
- Within each interval: heat available = Σ(CP_hot - CP_cold) × ΔT_interval
- Cascade heat from hot to cold intervals (waterfall)
- Pinch = interval with zero cumulative surplus (after adding minimum hot utility)
Algebraic result:
Q_H_min = minimum hot utility required
Q_C_min = Q_H_min + ΣQ_process (energy balance)
Heat Exchanger Network Design
Above Pinch
Driving force: hot streams enter above T_pinch,hot; cold streams exit above T_pinch,cold
Rule: CP_hot ≤ CP_cold (to prevent ΔT violation)
Minimum units: U_above = N_streams_above - 1 (Euler's graph theorem for connected network)
Below Pinch
Rule: CP_hot ≥ CP_cold
Minimum units: U_below = N_streams_below - 1
Total minimum units:
U_min = N_hot + N_cold + N_utilities - 1 [for one connected graph; ignoring multiple utilities]
Network with loops: can reduce units but increases cross-pinch heat transfer
Matching Streams (Tick-off Heuristic)
Above pinch:
- Match largest CP_hot with largest CP_cold (if CP_hot ≤ CP_cold)
- Exhaust one stream (tick off)
- Repeat until all hot streams cooled to pinch T
Below pinch:
- Match largest CP_cold with largest CP_hot (if CP_hot ≥ CP_cold)
- Exhaust one stream
- Repeat until all cold streams heated to pinch T
Capital vs. Energy Trade-off
Total annual cost (TAC):
TAC = Q_H × C_hot + Q_C × C_cold + Σ(annualized capital cost of each HX)
Optimize ΔT_min:
Smaller ΔT_min → lower utility cost; more/larger heat exchangers → higher capital
Typical optimal ΔT_min found by plotting TAC vs. ΔT_min → curve minimum
Payback period for energy-saving retrofits:
n = (C_HX_added) / (annual utility savings)
Multiple Utilities and Temperature Levels
Multiple hot utilities: steam at different pressures + furnace
Use highest-quality utility (furnace, HP steam) only where needed (highest T above pinch)
Multiple cold utilities: air cooling (free) vs. refrigeration (expensive)
Use cheapest cooling (air) first at highest T; refrigeration only at lowest T
Grand Composite Curve (GCC):
Plots shifted surplus vs. temperature from problem table
Shows "pockets" where process self-sufficient in energy → use internally available heat
Retrofit vs. New Design
New design: target first; then design network
Retrofit: identify inefficiencies in existing network
Cross-pinch exchangers → candidates for modification
Retrofit strategy:
- Identify cross-pinch matches → reroute to avoid crossing
- Identify closest temperatures for new matches → add HX there
- Reduce utility by adding HX upstream of current first utility input
Process Integration Beyond Heat
Water pinch: minimize freshwater use (analogous to heat, using contaminant mass as currency)
Hydrogen pinch: oil refinery hydrogen management
Carbon pinch: CO₂ allocation (Tan and Foo methodology)
ASPEN Hysys / Aspen Plus / HINT / SuperTarget
Software tools for pinch analysis:
Aspen Energy Analyzer: attached to Aspen Plus; automated composite curves, HEN design
HINT: standalone; early commercial tool
SuperTarget (KBC): commercial; integrated with economics
Output
Provide: minimum hot utility Q_H_min [kW or MW], minimum cold utility Q_C_min [kW or MW], pinch temperature (hot/cold) [°C], recommended ΔT_min [°C], number of HX units above and below pinch (U_min), stream matching pairs with heat duty and area for each match, energy recovery potential vs. current design [kW and %], and annual utility cost saving at current utility prices [$/yr].