| name | thermosyphon |
| description | Closed two-phase thermosyphon (CTPT) — gravity-driven heat pipe (no wick), flooding/geyser/entrainment limits, boiling limit, Bond number and inclination effects, fill ratio optimization, working fluid selection (water/ammonia/methanol/CO₂/R134a), heat transfer coefficients (pool boiling at evaporator, condensation at condenser), thermal resistance network, horizontal and inclined operation, and ASHRAE/ASTM standards for thermosyphon applications. |
| metadata | {"priority":7,"promptSignals":{"phrases":["thermosyphon","two-phase thermosyphon","gravity heat pipe","CTPT","evaporator condenser loop","closed loop thermosyphon"],"minScore":3}} |
Closed Two-Phase Thermosyphon (CTPT) — Complete Skill
Thermosyphon Fundamentals
Operating Principle
Thermosyphon (gravity-assisted heat pipe):
Sealed tube partially filled with working fluid; evaporator at bottom; condenser at top
Heat in at evaporator → liquid evaporates → vapor rises → condenses at condenser → liquid falls back by gravity
No wick required (gravity provides liquid return); simpler and cheaper than wick heat pipe
Limitation: condenser must be above evaporator (gravity drives liquid return); cannot operate inverted
vs. Wick heat pipe:
Thermosyphon: higher capacity (no wick capillary limit); gravity-dependent orientation
Heat pipe with wick: operates in any orientation; lower capacity (capillary pressure limited); more expensive
Thermal Resistance Network
Overall thermal resistance:
R_total = R_evap + R_vapor + R_cond + R_wall_evap + R_wall_cond
R_evap = 1 / (h_evap × A_evap) [evaporator heat transfer; pool boiling or film boiling]
R_cond = 1 / (h_cond × A_cond) [condenser; film condensation]
R_vapor ≈ T_sat / (h_fg × ρ_v × A_cross) [negligible for well-designed units; vapor pressure drop]
R_wall = t / (k_wall × A) [tube wall conduction; usually negligible]
Typical overall R: 0.01–0.2 K/W depending on size and fluid
Working Fluid Selection
Fluid Properties and Selection
Merit number (Liquid transport factor):
FOM = (σ × ρ_l × h_fg) / μ_l [higher FOM → better heat transport capacity; useful for comparing fluids]
Water: FOM_100°C = 0.48 MJ/(m²·s) — extremely high; best for 50–270°C range
Ammonia: excellent for −40 to +100°C; FOM comparable to water at low T; toxic
Methanol: −10 to +130°C; flammable; lower FOM than water
Acetone: 0–120°C; clean; moderate FOM
R134a: −40 to +80°C; non-flammable; ODP = 0; lower FOM
Operating temperature ranges:
| Fluid | T_min [°C] | T_max [°C] | Applications |
|---|
| Water | 50 | 270 | Electronics cooling, waste heat recovery |
| Ammonia | −60 | +100 | Refrigeration, building HVAC |
| Methanol | −10 | 130 | Electronics, moderate T |
| Acetone | 0 | 120 | Moderate temp, clean |
| CO₂ | −50 | +25 | Transcritical refrigeration, food |
| Sodium | 500 | 1000 | High temperature (nuclear, solar) |
| Hg | 200 | 500 | Intermediate high temperature |
Fill Ratio and Flooding Limit
Optimal Fill Ratio
Fill ratio:
φ = V_liquid_fill / V_evaporator [dimensionless; or % of total tube volume]
Too low (φ < φ_min): dry-out; evaporator wall superheating → deterioration
Too high (φ > φ_opt): flooding; liquid fills vapor space → geyser/carryover → instability
Optimal fill ratio (practical):
φ_opt ≈ 0.3–0.7 (30–70% of evaporator volume)
For horizontal thermosyphon: fill ratio less critical (pool covers entire bottom)
Best practice: initial fill calibration testing; start at φ = 0.5 and adjust based on performance
Flooding limit (vapor-liquid counter-flow):
When vapor velocity too high → carries liquid upward → flooding → breakdown of operation
Flooding criterion (Kutateladze flooding constant K_f):
Q_max_flood = A_cross × h_fg × ρ_v^(1/2) × [σ × g × (ρ_l − ρ_v)]^(1/4) × K_f
K_f = 0.16 (empirical; Wallis flooding); accounts for tube diameter via Bond number
Bond number:
Bo = D / √(σ / (g × (ρ_l − ρ_v))) [D = tube inner diameter]
For Bo > 30: flooding limit increases linearly with D (large diameter; flooding not limiting)
For Bo < 30: flooding significant; use larger diameter or multiple small tubes
For water at 100°C: √(σ/(g(ρ_l-ρ_v))) = √(0.058/(9.81×960)) = √(6.2×10⁻⁶) = 2.49 mm
Bo = D / 2.49 mm; Bo = 30 → D_min = 75 mm (large tube needed for water thermosyphon)
Heat Transfer Correlations
Evaporator (Pool Boiling)
Pool boiling heat transfer coefficient:
Forster-Zuber nucleate boiling correlation:
h_evap = 0.00122 × (k_l^0.79 × c_pl^0.45 × ρ_l^0.49) / (σ^0.5 × μ_l^0.29 × h_fg^0.24 × ρ_v^0.24) × ΔT_sat^0.24 × ΔP_sat^0.75
Simplified: h_evap ∝ q^0.7 for pool boiling (nucleate regime)
Typical h_evap for water at 100°C: 5,000–25,000 W/m²K (depending on surface, ΔT_sat)
For refrigerants: 1,000–8,000 W/m²K
Boiling limit:
Critical heat flux (CHF) at evaporator: q_max = h_fg × ρ_v × [σ × g × (ρ_l − ρ_v) / ρ_v²]^(1/4) × K_Z
K_Z = 0.131 (Zuber constant for flat surface); 0.149 (cylinder)
For water at 100°C: q_CHF ≈ 1.5 MW/m² (theoretical; practical: 0.5–1.0 MW/m² in thermosyphon)
Condenser (Film Condensation)
Nusselt film condensation (inside vertical tube):
h_cond = 0.943 × [ρ_l × (ρ_l − ρ_v) × g × h_fg × k_l³ / (μ_l × L_cond × ΔT_cond)]^(1/4)
[L_cond = condenser length; ΔT_cond = T_sat − T_wall]
Or simplified: h_cond = C × (ρ_l² × g × k_l³ × h_fg / (μ_l × Q_cond/A))^(1/3) [turbulent condensation at high Q]
Modified Chato correlation for horizontal condensation:
h_cond_horiz = 0.728 × [ρ_l × (ρ_l − ρ_v) × g × h_fg × k_l³ / (μ_l × D × ΔT)]^(1/4)
Typical h_cond:
Water: 5,000–20,000 W/m²K; Ammonia: 4,000–15,000 W/m²K; Refrigerants: 1,500–8,000 W/m²K
Inclination Effects
Tilted and Horizontal Operation
Inclined thermosyphon:
Inclination angle θ from horizontal: 0° = horizontal; 90° = vertical (optimal for gravity return)
As θ decreases below 60°: flooding limit decreases (reduced gravity component driving liquid return)
Liquid return velocity: v_liq = V_vapor_condensed / (π × D × t_film) [film flow by gravity component g×sin(θ)]
Horizontal thermosyphon (θ = 0°):
Pool of liquid in bottom; vapor in upper half; no flooding limit (counter-flow minor)
But: stratified flow; only bottom of tube active in evaporator → reduced effective area
Performance 30–50% lower than vertical (per unit area)
Best inclination: 60–90° from horizontal; 75° is practical optimum in many installations
Applications
| Application | Fluid | T_range [°C] | Q_capacity [W] | Notes |
|---|
| CPU heat sink | Water/methanol | 40–90 | 50–300 | Laptop/server cooling |
| Transformer cooling | Diala oil | 60–120 | 10,000+ | Electrical insulation required |
| Permafrost preservation | CO₂/NH₃ | −40 to −10 | 100–1000 | Arctic pipeline supports |
| Solar water heater | Water | 30–90 | 500–5000 | Domestic and commercial |
| Waste heat recovery | Water | 60–200 | 50,000+ | Industrial flue gas |
| Data center immersion | Fluorinert/HFE | 40–60 | 5,000–50,000 | 2-phase immersion |
Standards and References
| Standard | Scope |
|---|
| ASHRAE Handbook Fundamentals | Heat pipe and thermosyphon thermal properties |
| ASTM E1465 | Measurement of thermal resistance of thin insulation |
| ISO 16812 | Petroleum — shell and tube heat exchangers (applicable to waste heat thermosyphon) |
| Chi (1976) "Heat Pipe Theory and Practice" | Foundational reference |
| Faghri (1995) "Heat Pipe Science and Technology" | Comprehensive reference |
Output
Provide: application (heat source/sink; geometry: vertical/inclined/horizontal; T_evap [°C]; T_cond [°C]; ΔT available [°C]; Q_target [W]), fluid selection (working fluid; T_range match; FOM rank; Bo number at operating T), geometry (D [mm]; L_evap [mm]; L_adiabatic [mm]; L_cond [mm]; fill ratio φ [%]), flooding limit (Q_flood from Kutateladze; K_f = 0.16; Bo = D/capillary_length; Q_flood vs. Q_target; safety margin), boiling limit (q_CHF [W/m²]; Q_CHF = q_CHF × A_evap [W]; safety margin vs. Q_target), heat transfer (h_evap from pool boiling correlation [W/m²K]; R_evap = 1/(h_evap×A_evap) [K/W]; h_cond from Nusselt [W/m²K]; R_cond [K/W]; R_total [K/W]; ΔT_total = Q × R_total [°C]), inclination (optimal angle [°]; performance factor vs. vertical [%]; g×sinθ effect on flooding), material compatibility (fluid-tube compatibility: copper+water OK; Al+ammonia OK; SS+methanol OK; avoid copper+ammonia; Al+water — oxide issue), and applicable standard (ASHRAE Fundamentals; Chi/Faghri references for detailed design; ASTM E1465 for insulation verification).