| name | plate-hx |
| description | Plate heat exchanger (PHX) design — corrugated plate geometry (chevron angle β, mean channel gap), NTU-effectiveness method, pressure drop (friction factor, equivalent diameter), fouling factor, gasketed vs. brazed vs. welded PHX, LMTD correction F-factor, port sizing, thermal performance (NTU, ε, UA calculation), TEMA/ASME standards for PHX, and industrial applications (dairy, HVAC, refinery). |
| metadata | {"priority":7,"promptSignals":{"phrases":["plate heat exchanger","PHX design","gasketed plate heat exchanger","corrugated plate","NTU plate exchanger","plate HX fouling"],"minScore":3}} |
Plate Heat Exchanger Design — Complete Skill
Geometry and Configuration
Corrugated Plate Geometry
Chevron (herringbone) corrugation:
β = chevron angle: angle of corrugation ridges relative to flow direction
β = 30° (low angle, "L" plates): low pressure drop, lower heat transfer
β = 60° (high angle, "H" plates): high heat transfer, higher pressure drop
β = 45°: intermediate; most common compromise
Mean channel gap (gap between adjacent plates):
b = corrugation depth: typically 2–6 mm
D_h = hydraulic diameter = 2b [for parallel plate channel; D_h = 4 × area / wetted perimeter ≈ 2b]
Enlargement factor φ = actual corrugated area / projected area = 1.1–1.3 (depends on β and pitch)
Effective surface area per plate:
A_plate_eff = L × W × φ [L = plate length; W = plate width; φ = enlargement factor]
Number of channels:
N_channels = (N_plates - 1) / 2 [for single-pass counter-current; alternating hot/cold]
Hot side: (N_plates - 1)/2 channels; Cold side: (N_plates - 1)/2 channels
Flow Arrangements
Counter-current (most common):
Maximum driving force; F-factor = 1.0 (no correction needed to LMTD)
Requires: hot in one port, cold in opposite diagonal port
Co-current (parallel flow):
Lower effectiveness; F-factor < 1; rarely used
Multi-pass:
Hot or cold side divided into multiple passes → increases contact length → higher effectiveness
U-turn flow: requires special port design; F-factor correction needed
Heat Transfer Calculation
Overall Heat Transfer Coefficient (U)
U for plate HX:
1/U = 1/h_hot + (t_plate / k_plate) + 1/h_cold + R_f_hot + R_f_cold
h_hot, h_cold = local film heat transfer coefficients [W/(m²·K)]
t_plate = plate thickness [m]; k_plate = thermal conductivity [W/(m·K)]; stainless steel: k = 16–20 W/(m·K)
R_f = fouling resistance [(m²·K)/W]
Typical U values:
| Service | U [W/(m²·K)] |
|---|
| Water-water | 3,500–7,500 |
| Steam-water | 3,000–6,000 |
| Light oil-water | 800–2,500 |
| Heavy oil-water | 200–800 |
| Gas-water | 100–400 |
| Refrigerant-water | 1,500–4,000 |
Film Heat Transfer Coefficient (h)
Correlation for corrugated plate HX (Martin 1996):
Nu = c_q × (Re_q^q × Pr^(1/3)) × (η/η_w)^0.14
For β = 45°: c_q = 0.40, q = 0.73 (turbulent Re > 10)
For β = 30°: c_q = 0.17, q = 0.66
For β = 60°: c_q = 0.72, q = 0.59
Reynolds number:
Re = ṁ_ch × D_h / (μ × A_ch) [ṁ_ch = mass flow per channel; A_ch = channel cross-section = b × W]
Or Re = G × D_h / μ [G = mass flux = ṁ_ch / A_ch]
Turbulent flow onset:
Re_transition ≈ 10–200 for corrugated plates (much lower than smooth tubes → turbulent at very low Re)
PHX advantage: high h even at low flow velocity → compact
h from Nu:
h = Nu × k_fluid / D_h [W/(m²·K)]
NTU-Effectiveness Method
Number of Transfer Units (NTU):
NTU = U × A_total / C_min [A_total = effective area = N_plates × A_plate; C = ṁ × c_p; C_min = smaller]
Effectiveness ε:
Counter-current flow: ε = (1 - exp(-NTU(1-C*))) / (1 - C* × exp(-NTU(1-C*))) [C* = C_min/C_max < 1]
For C* = 1 (balanced flow): ε = NTU / (1 + NTU)
Heat duty from effectiveness:
Q = ε × C_min × (T_hot_in - T_cold_in) [W]
Exit temperatures:
T_hot_out = T_hot_in - Q / C_hot
T_cold_out = T_cold_in + Q / C_cold
Required NTU from duty:
NTU = -ln[(ε - 1)/(ε × C* - 1)] / (1 - C*) [for C* ≠ 1; solved from desired ε]
Or equivalently: NTU = LMTD_basis approach below
LMTD Method
Log Mean Temperature Difference:
LMTD = (ΔT₁ - ΔT₂) / ln(ΔT₁/ΔT₂)
ΔT₁ = T_hot_in - T_cold_out; ΔT₂ = T_hot_out - T_cold_in [counter-current]
F-factor correction (multi-pass):
LMTD_effective = F × LMTD_counter [F = 1.0 for pure counter-current; < 1 for multi-pass or co-current]
F from R = (T_hot_in - T_hot_out)/(T_cold_out - T_cold_in) and P = (T_cold_out - T_cold_in)/(T_hot_in - T_cold_in)
Required area:
Q = U × A × LMTD_eff → A_required = Q / (U × LMTD_eff)
Number of plates: N_plates = A_required / A_plate + 2 (end plates); round up to even number + 1
Pressure Drop
Channel Pressure Drop
Friction factor (Martin correlation):
f = [cos β / (0.045 tan β + 0.09 sin β + f_0 / cos β) + (1 - cos β)/√(0.5(3.8 - sin β))]^(-1/2)
Simplified: f ≈ K_p / Re^n [K_p, n from manufacturer data or table by β]
For β = 45°, turbulent: f ≈ 0.60 / Re^0.20 (Kays & London data)
Port pressure drop:
ΔP_port = 1.3 × G_port² / (2ρ) [port connections add ~1.3 velocity heads each; G_port = mass flux in port nozzle]
Channel pressure drop:
ΔP_channel = 4f × (L/D_h) × G_ch² / (2ρ) × φ [friction in corrugated channel; φ accounts for enlargement]
Total pressure drop:
ΔP_total = N_passes × ΔP_channel + 2 × ΔP_port [both port losses counted for each pass]
Typical ΔP: 20–100 kPa per fluid side; more for high-viscosity or high-velocity applications
Port Sizing
Port diameter D_port:
V_port = ṁ / (ρ × π × D_port² / 4) ≤ 6 m/s liquid; ≤ 40 m/s gas [typical maximum velocity]
D_port = √(4ṁ / (ρ × π × V_max))
Standardized: D_port = 25, 40, 50, 65, 80, 100, 125, 150 mm (typical flanges)
Fouling and Cleaning
Fouling Resistance
TEMA fouling resistances (R_f) for PHX:
R_f_clean_water: 0.0002 m²K/W (PHX = 1/3 of shell-tube TEMA value; more turbulent)
R_f_sea_water: 0.0001 m²K/W
R_f_light_oil: 0.0002 m²K/W
R_f_river_water: 0.0003–0.0006 m²K/W
R_f_heavily_fouling: 0.001 m²K/W (must use wide-gap plates)
PHX fouling advantage:
High turbulence (Re → turbulent at Re ~ 10) suppresses fouling formation
High wall shear stress: τ_w = f × ρ × u² / 2 → higher than shell-and-tube → self-cleaning tendency
Cleaning-in-Place (CIP):
Gasketed PHX: disassembly for mechanical cleaning (unique PHX advantage — plates accessible)
CIP chemicals: NaOH 2% (organic fouling); HNO₃ 1% (mineral/scale); EDTA for hard deposits
Cleaning interval: 6–24 months depending on service; more frequent for dairy (weekly)
Wide-Gap Plates
For fibrous or particulate slurries:
Special wide-gap plates: b = 7–10 mm (vs. 3–5 mm standard) → allows solids passage
Semi-welded PHX: alternate welded pairs + gasket between pairs → handle corrosive fluids on one side
PHX Types
Gasketed Plate HX
Construction:
Metal frame + pressure plates (head + follower); plates hung on carrying bar
Gaskets: EPDM (water, steam to 160°C), NBR (oil), HNBR (high-temp oils), Viton (chemicals), PTFE encapsulated
Max design conditions: P ≤ 2.5 MPa; T = -35 to +180°C (gasket dependent)
ASME/TEMA compliance:
ASME VIII Div. 1 Section UHX: design of plate heat exchangers
Pressure rating from gasket limitation (not plate thickness); plate S_y at T
API 662 Pt. 1: petroleum industry gasketed PHX
Brazed Plate HX (BPHE)
No gaskets; brazing with Cu or Ni filler:
Max conditions: Cu-brazed: P ≤ 4.0 MPa; T = -170 to +200°C; no ammonia (Cu corrosion)
Ni-brazed: P ≤ 4 MPa; T = -170 to +550°C; compatible with ammonia
Applications: refrigeration (evaporator/condenser), hydronic heating, solar thermal
Compact; no gasket maintenance; cannot be disassembled
Welded/Semi-Welded PHX
Fully welded: no gaskets; high-pressure and high-temperature; corrosive fluids
P ≤ 6–10 MPa; T ≤ 350°C
Semi-welded: one side welded (corrosive), other side gasketed (utility)
Applications: chemical reactors, ammonia refrigeration (semi-welded)
Standards and References
| Standard | Scope |
|---|
| ASME VIII Div. 1 UHX | Plate heat exchanger pressure vessel design |
| API 662 Pt. 1 | Gasketed PHX for petroleum |
| TEMA | Shell-and-tube standards (referenced for fouling factors) |
| ISO 5131 | PHX terminology |
| EN 14222 | Stainless steel shell-and-tube and plate HX |
| Martin (1996) IJHMT | Corrugated plate HX correlation |
Output
Provide: service (fluid names; hot/cold), inlet/outlet temperatures (T_hot_in, T_hot_out, T_cold_in, T_cold_out [°C]), mass flow rates ṁ_hot, ṁ_cold [kg/s], heat duty Q [kW], LMTD [°C] (counter-current; F-factor if multi-pass), fouling resistances R_f_hot and R_f_cold [(m²·K)/W], U estimated (clean and fouled [W/(m²·K)]), required area A [m²], plate type (chevron β [°]; b [mm]; A_plate [m²]), number of plates N_plates, channel Re (hot and cold sides; verify turbulent), h_hot and h_cold [W/(m²·K)] from Martin correlation, pressure drop ΔP_hot and ΔP_cold [kPa], port diameter D_port [mm], PHX type (gasketed/brazed/welded) with gasket material, design pressure and temperature vs. limits, NTU and effectiveness ε, and applicable standard (ASME VIII UHX, API 662, Martin 1996).