Engineering Reference & ASME Code Basis
1. Formula & conversion factors
Ron Darby — Chemical Engineering Fluid Mechanics (3-K method) · Crane Technical Paper No. 410 — Flow of Fluids Through Valves, Fittings, and Pipe · ASME B36.10M / B36.19M — Pipe inside diameter
K = K1Re + Ki · (1 + KdDin0.3)
Leq = K · DifT
Darby 3-K · Crane TP-410 f_T for L_eq · ASME B36 D_i
Resistance coefficient from Darby 3-K constants (K₁, Kᵢ, K_d) with pipe Reynolds number and internal diameter in inches. Equivalent length uses Crane fully turbulent f_T so L_eq compares with TP-410 L/D screening. Prefer Darby 3-K when Re < 2000 (laminar / high viscosity).
- K (Resistance coefficient) — Darby 3-K loss coefficient for the fitting (total = per-fitting × quantity).
- K₁ (Laminar constant) — Low-Reynolds fitting constant in the K₁/Re term.
- Kᵢ (Turbulent constant) — High-Reynolds asymptotic constant (K_∞).
- K_d (Diameter scale factor) — Pipe-size scale constant in the (1 + K_d/D_in^0.3) term.
- Re (Reynolds number) — Pipe Reynolds number Re = ρ v D_i / μ.
- L_eq (Equivalent length) — Straight-pipe length with the same loss at Crane f_T: L_eq = K·D_i/f_T.
2. Quick reference lookup table
| Quantity | Value | Unit | Notes |
|---|---|---|---|
| D_i | 52.51 | mm | B36 Sch 40 |
| K₁ · Kᵢ · K_d | 800 · 0.09 · 4.0 | — | Darby 3-K |
| K | ≈ 0.396 | — | Re = 50,000 |
| L_eq | ≈ 1.09 | m | via Crane f_T |
| Regime | Turbulent | — | Re > 4000 |
Hero K follows Darby 3-K physics. L_eq uses Crane f_T so lengths compare with TP-410 L/D tables.
3. How to use this calculator
- 1
Select NPS and schedule
Fixes ASME B36 inside diameter D_i and Crane f_T for L_eq.
- 2
Choose fitting type
Loads Darby constants K₁, Kᵢ, and K_d for the fitting or valve.
- 3
Enter Reynolds number and quantity
Re sets laminar vs turbulent weighting; quantity scales total K and L_eq.
- 4
Read K, L_eq, and Crane comparison
Hero shows K and L_eq; rows split laminar/turbulent parts and Crane K = f_T·(L/D).
4. Engineering FAQ
A tool that estimates fitting resistance coefficient K and equivalent length L_eq using Darby’s 3-K constants across laminar, transition, and turbulent Reynolds numbers.
When Re < 2000 (laminar / viscous fluids) or when you need size-dependent turbulent K. Crane TP-410 L/D is a turbulent-flow screening shortcut.
FEK converts with L_eq = K·D_i/f_T using Crane’s fully turbulent friction factor so lengths compare with TP-410 tables.
K₁ scales the laminar term K₁/Re; Kᵢ is the turbulent asymptote; K_d scales the diameter correction (1 + K_d/D_in^0.3).