| name | pool-boiling |
| description | Pool boiling heat transfer — boiling curve (Rohsenow, nucleate to film), critical heat flux (Zuber correlation, CHF), Leidenfrost point, boiling incipience (onset of nucleate boiling, ONB), surface effects (roughness, wettability, nanostructures), subcooled boiling, enhanced surfaces (fins, coatings, reentrant cavities), correlations (Rohsenow, Kutateladze, Zuber, Chen for flow boiling), heat transfer coefficient h [W/m²·K], and applications (electronics cooling, nuclear, refrigeration). |
| metadata | {"priority":7,"promptSignals":{"phrases":["pool boiling","nucleate boiling","boiling heat transfer","critical heat flux","Leidenfrost","boiling curve"],"minScore":3}} |
Pool Boiling Heat Transfer — Complete Skill
Boiling Curve and Regimes
Nukiyama Boiling Curve
Complete boiling curve (q vs. ΔT_sat = T_wall - T_sat):
| Regime | ΔT_sat range | Mechanism | q range |
|---|
| Natural convection | < 5°C | Single-phase free convection | Low |
| Partial nucleate boiling | 5–10°C | Isolated bubbles at nucleation sites | Rising |
| Fully developed nucleate boiling | 10–30°C | Dense bubble columns, strong agitation | Peak (CHF) |
| Transition boiling | 30–120°C | Unstable film/nucleate; q decreases with ΔT | Decreasing |
| Film boiling | > 120°C | Stable vapor film; radiant + conductive | Rising again |
| Leidenfrost point | ~120°C | Minimum film boiling; vapor film just stable | q_min |
Critical Heat Flux (CHF): maximum of boiling curve; beyond → film boiling → burnout risk
Leidenfrost temperature T_Leidenfrost: minimum film boiling temperature; stable vapor film below this → transitions to nucleate
Onset of Nucleate Boiling (ONB)
Incipience Criterion
Bergles-Rohsenow criterion:
Active nucleation sites: r_crit = √(2 × σ × T_sat / (q_wall × h_fg × ρ_v)) [minimum active cavity radius]
Wall superheat for incipience:
ΔT_sat,inc = (T_wall - T_sat) at which the largest available cavity begins nucleating
ΔT_sat,inc = 2 × σ × T_sat × q_wall / (k_l × h_fg × ρ_v) [first approximation; substituting h = q/ΔT]
Practical ONB:
For water at atmospheric pressure: ΔT_sat,inc ≈ 3–5°C for a commercial surface
For refrigerants (lower σ): ΔT_sat,inc ≈ 1–3°C
Nucleate Boiling Correlations
Rohsenow Correlation
Most widely used nucleate boiling correlation:
q = μ_l × h_fg × [g(ρ_l - ρ_v)/σ]^(1/2) × [c_p,l × ΔT_sat / (C_sf × h_fg × Pr_l^r)]³
Rearranged for h (or ΔT_sat from q):
ΔT_sat = C_sf × h_fg × Pr_l^r / c_p,l × [q / (μ_l × h_fg × (g(ρ_l-ρ_v)/σ)^(1/2))]^(1/3)
C_sf (surface-fluid combination constant):
| Surface-Fluid | C_sf | r |
|---|
| Water-copper (polished) | 0.0130 | 1.0 |
| Water-stainless (mechanically polished) | 0.0080 | 1.0 |
| Water-brass | 0.0060 | 1.0 |
| R-134a-copper | 0.0065 | 1.7 |
| Benzene-chromium | 0.0100 | 1.7 |
Properties evaluated at T_sat; ρ_v, ρ_l, σ, h_fg, μ_l, c_p,l, Pr_l all at saturation
Example (water-copper, P = 1 atm, q = 300 kW/m²):
Properties at 100°C: ρ_l = 958, ρ_v = 0.60 kg/m³, σ = 0.0589 N/m, h_fg = 2,257 kJ/kg, μ_l = 2.82×10⁻⁴ Pa·s, c_p,l = 4,215 J/kg·K, Pr_l = 1.75
[g(ρ_l-ρ_v)/σ]^(1/2) = [9.81×957.4/0.0589]^(1/2) = 399 m^(-1/2)·s^(-1/2)
Numerator: 2.82×10⁻⁴ × 2.257×10⁶ × 399 = 254,000 W/m²
[q/254,000]^(1/3) = [1.18]^(1/3) = 1.057
ΔT_sat = 0.0130 × 2,257,000 × 1.75^1.0 / 4,215 × 1.057 = 0.0130 × 2,257 × 1.75 / 4.215 × 1.057 ≈ 14.5°C
h = q/ΔT_sat = 300,000/14.5 = 20,700 W/(m²·K)
Stephan-Abdelsalam (Alternative)
For water (1977 correlation):
Nu_boiling = 0.0546 × (ρ_v/ρ_l)^(0.45) × (q×D_b/(k_l×T_sat))^0.67 × (h_fg×D_b²/(α_l²))^(0.57) × (D_b × g × ρ_l/(σ))^0.22
D_b = bubble departure diameter = 0.0208 × θ × [σ/(g(ρ_l-ρ_v))]^(1/2) [θ = contact angle in radians]
Critical Heat Flux (CHF)
Zuber Correlation
Hydrodynamic CHF model (flat horizontal surface):
q_CHF = K × h_fg × ρ_v × [σ × g × (ρ_l - ρ_v) / ρ_v²]^(1/4)
K = π/24 ≈ 0.131 [Zuber; theoretically derived from Helmholtz instability of vapor jets]
Or K = 0.149 [Kutateladze empirical; better agreement with data]
Simplified form:
q_CHF = 0.131 × h_fg × ρ_v × [σ × g × (ρ_l - ρ_v) / ρ_v²]^(1/4)
Example (water at 1 atm):
q_CHF = 0.131 × 2,257,000 × 0.60 × [0.0589 × 9.81 × 957.4 / 0.36]^(1/4)
= 0.131 × 2,257,000 × 0.60 × [1,530]^(0.25)
= 177,000 × 6.25 = 1.11 MW/m² [≈ 1.0 MW/m² typical for water at atmospheric; matches data]
CHF enhancement:
Roughened/porous surfaces: CHF × 2–3 vs. smooth
Subcooled liquid: q_CHF,sub = q_CHF,sat × (1 + A × Ja_sub) [Ja_sub = c_p(T_sat-T_bulk)/h_fg; A ≈ 0.1–0.3]
Orientation: horizontal flat surface maximum; vertical surface CHF ≈ 0.9× horizontal
Kutateladze Correlation
Empirical form:
q_CHF = 0.149 × h_fg × ρ_v × [σ × g × (ρ_l - ρ_v) / ρ_v²]^(1/4)
Slightly higher K = 0.149; matches more datasets
Effect of pressure:
q_CHF peaks at P/P_cr ≈ 0.32 (reduced pressure); decreases at very high or very low pressure
For water: maximum CHF near 70 bar; q_CHF,max ≈ 4–5 MW/m²
Film Boiling
Bromley Correlation (Film Boiling, Horizontal Cylinder)
Heat transfer coefficient:
h_film = 0.62 × [k_v³ × ρ_v × (ρ_l - ρ_v) × g × h_fg' / (μ_v × D × ΔT_sat)]^(1/4)
h_fg' = h_fg + 0.4 × c_p,v × ΔT_sat [corrected latent heat; vapor sensible heat]
D = heater diameter; evaluate vapor properties at T_film = (T_wall + T_sat)/2
Radiation contribution:
At very high wall temperatures (T_wall > 300°C above T_sat): add radiation
h_total = h_film + (3/4) × h_rad [not simply additive; coupling factor 3/4]
h_rad = ε_w × σ_SB × (T_wall⁴ - T_sat⁴) / (T_wall - T_sat)
Enhanced Surfaces
Enhancement Techniques
Micro/nano-structured surfaces:
Wettability: superhydrophilic (θ < 5°) → CHF increase to 2× baseline; delayed transition to film boiling
Microporous coatings (sintered particles): h_nucleate × 3–5 vs. smooth; CHF × 1.5–2
Re-entrant cavities (Thermoexcel, High Flux): guaranteed nucleation sites; h × 3–8 × smooth
Micro-fin surfaces (Turbo-B, Turbo-E):
Surface area increase + enhanced nucleation → h × 2–5 vs. plain tube
Used in refrigeration evaporators, process reboilers
Nanoparticle suspensions (nanofluids):
Al₂O₃, TiO₂, CNT in water: CHF increase 10–50% at low concentration (0.01–0.1 vol%)
h_nucleate: mixed results; often decreases at higher concentrations (surface fouling)
Flow Boiling (Chen Correlation)
Saturated Flow Boiling in Tubes
Chen correlation:
h_tp = S × h_pool + F × h_l [superposition of nucleate and forced convection contributions]
h_l = Dittus-Boelter: 0.023 × Re_l^0.8 × Pr_l^0.4 × k_l/D [liquid-only forced convection]
h_pool = Rohsenow correlation at local heat flux
F = Reynolds number factor = f(1/X_tt) [two-phase multiplier; from Chen chart]
S = suppression factor (0–1): reduces nucleate boiling contribution in forced convection
X_tt = Martinelli parameter: (x/(1-x))^0.9 × (ρ_l/ρ_v)^0.5 × (μ_v/μ_l)^0.1
Applicable range:
Saturated nucleate boiling regime; quality x = 0–0.7; vertical upward tubes
Standards and References
| Standard | Scope |
|---|
| ASHRAE Fundamentals Handbook | Boiling and condensation correlations |
| Rohsenow (1951) | Original nucleate boiling correlation |
| Zuber (1958) | Hydrodynamic CHF theory |
| Lienhard & Dhir (1973) | Extended CHF correlations and geometry effects |
| Bergles & Rohsenow (1964) | Onset of nucleate boiling criterion |
| ASME HTD-97 | Two-phase flow and heat transfer |
Output
Provide: fluid and conditions (P [bar]; T_sat [°C]; subcooling ΔT_sub [°C]; geometry), heater geometry (horizontal/vertical plate, cylinder, tube; characteristic dimension D or L [m]), regime identification (natural convection/nucleate/CHF/film boiling from ΔT_sat [°C]), Rohsenow h_nucleate [W/m²·K] and ΔT_sat [°C] at given q [W/m²] (with C_sf, r values stated), CHF from Zuber/Kutateladze [MW/m²] (enhancement factor if textured surface), Leidenfrost ΔT_sat [°C] and q_min [kW/m²], film boiling h [W/m²·K] (Bromley; include radiation if T_wall >> T_sat), safety margin (q_operating / q_CHF; target ≥ 1/2 for electronics, ≥ 1/3 for nuclear), enhancement recommendation (if h insufficient: microporous coating; fin; nanostructure; expected improvement factor), flow boiling correction (if relevant: Chen F and S factors; h_tp [W/m²·K]), and applicable reference (Rohsenow 1951, Zuber 1958, Chen 1966, ASHRAE Handbook).