๐Ÿ”„ Chilled Water Decoupler Loop

Size primary-secondary hydraulic decoupler bridge pipes, identify flow direction, mixed supply header degradation, and Low Delta-T syndrome penalties.

โšก Fortran 90 Engine Double Precision (IEEE 754) โœ“ ISO / ASME Validated
Chilled Water Decoupler Loop Hvac
๐Ÿ“Š Solver Telemetry โ— ACTIVE
๐Ÿ‘๏ธ Views 36
โšก Solves 29
๐Ÿ’พ Downloads 279 ๐Ÿ“ฆ Fortran Code 4.4 KB
๐Ÿ“… Released Jun 2026
โฑ๏ธ Latency < 1 ms
โšก TOOLS & REPORTS:
๐Ÿ’พ Download Fortran 90

๐Ÿ”„ Primary-Secondary Chilled Water Hydronic Decoupler Bridge

Real-time visual simulation of production vs distribution flow balance, bridge direction & mixed temperatures

๐Ÿ“ Configuration & Presets

โœ… Forward Flow (200 / 175 mยณ/h) โš ๏ธ Reverse Deficit (150 / 220 mยณ/h) ๐Ÿ“‰ Low ฮ”T Syndrome (8.5ยฐC Ret) ๐Ÿฅ Hospital Plant (320 mยณ/h)
๐Ÿ’ง Primary & Secondary Hydronic Flows
Operating constant speed chillers
Variable speed pump loop
๐ŸŒก๏ธ Water Temperatures & Sizing Velocity
Low value triggers Low ฮ”T syndrome
ASHRAE standard: โ‰ค 0.50 m/s
Decoupled Hydronic Formulations:
โ€ข Decoupler Flow: Qbridge = Qprim โˆ’ Qsec
โ€ข Minimum Bridge Diameter: Dmin = โˆš[ (4 ยท Qmax) / (ฯ€ ยท vmax) ]
โ€ข Mixed Supply (Reverse): Tmix,sup = (Qprim Tsup + |Qb| Tret) / Qsec
โ€ข Low ฮ”T Penalty: Loss = [1 โˆ’ (ฮ”Tact / ฮ”Tdes)] ร— 100%

๐Ÿ“Š Decoupler Sizing Results

๐Ÿ“Š Output Summary
๐Ÿ’พ Fortran Source

Recommended Decoupler Bridge Pipe Size
DN300 (ร˜ 300 mm)
โœ… BALANCED EQUILIBRIUM (Zero Decoupler Bypass)
+0.0 mยณ/h
Mixed Supply to Coils (Tmix,sup) 6.00 ยฐC Chiller Setpoint = 6.0 ยฐC
Mixed Return to Chillers (Tmix,ret) 8.50 ยฐC Actual Secondary = 8.5 ยฐC
Low ฮ”T Capacity Penalty 58.3 % ฮ”Tact = 2.5 ยฐC (Des: 6.0 ยฐC)
Decoupler Flow Velocity 0.00 m/s Limit: โ‰ค 0.50 m/s

๐Ÿ“ˆ Required Decoupler Diameter vs Bypass Flow

๐Ÿ“‰ Mixed Supply Temperature Degradation vs Secondary Overpumping

=================================================================
 THERMOFLUIDCALC โ€” CHILLED WATER DECOUPLER ANALYSIS REPORT
=================================================================
Case Title                 : Low Delta-T Syndrome Dilution (Unbalanced Coil Valves)
Primary Production Flow    : 250.00 m3/h (1100.8 GPM)
Secondary Distribution Flow: 250.00 m3/h (1100.8 GPM)
Decoupler Bypass Flow      : +0.00 m3/h
Hydronic Bridge Status     : โœ… BALANCED EQUILIBRIUM (Zero Decoupler Bypass)
-----------------------------------------------------------------
MINIMUM DECOUPLER PIPE DIA : DN300 (300.0 mm ID)
Mixed Header Supply Temp   : 6.00 ยฐC (Chiller out: 6.00 ยฐC)
Mixed Header Return Temp   : 8.50 ยฐC (Secondary out: 8.50 ยฐC)
Low Delta-T Penalty        : 58.3 % capacity derating
=================================================================

๐Ÿ“˜ Calculation Methodology & ASHRAE Standards

Hydraulic Decoupling Bridge

The bridge pipe provides a zero pressure drop junction ($v \le 0.5\,\text{m/s}$), hydraulically isolating the constant-flow chiller loop from variable-flow loads:

Qbridge = Qprimary โˆ’ Qsecondary

Reverse Flow & Low Delta-T Risks

If $Q_{secondary} > Q_{primary}$, warm return water flows backward across the bridge into the coil supply header, causing loss of space dehumidification control.

Key Engineering Assumptions

  • Water velocity in decoupler bridge limited to $0.5\,\text{m/s}$ ($\Delta P < 1.5\,\text{kPa}$).
  • Perfect adiabatic mixing at header tee junctions.
  • Sized for max flow mismatch or 100% capacity of largest chiller module.