thermodynamics_diagnostic.md
Atmosphere Module — Thermodynamics Diagnostic (Canon)#
(Source: turn0browsertab1)
Thermodynamics Diagnostic — Atmosphere Module#
TriadicFrameworks Canon
The Thermodynamics Diagnostic evaluates atmospheric energy behavior across micro → meso → macro → mega scales. It interprets temperature gradients, energy flux pathways, radiative balance, and phase‑change boundaries. It is the human‑readable companion to:
thermodynamics_diagnostic.jsonthermodynamics_diagnostic.min.jsonthermodynamics_diagnostic.schema.jsonthermodynamics_diagnostic.example.jsonthermodynamics_map.mdthermodynamics_envelope.mdthermodynamics_trace.md
1. Diagnostic Purpose#
The Thermodynamics Diagnostic provides:
- temperature gradient interpretation
- energy flux evaluation
- radiative balance assessment
- phase‑change boundary detection
- operator‑aligned thermodynamic signatures
- stability and regime classification
It is used by envelopes, maps, and traces to interpret thermodynamic behavior.
2. Thermodynamic Fields#
Temperature#
- vertical lapse rate
- inversion layers
- adiabatic zones
- radiative cooling layers
Energy Flux#
- sensible heat flux
- latent heat flux
- radiative flux
- convective flux
Phase Change#
- condensation boundaries
- evaporation zones
- freezing/melting layers
- sublimation regions
Radiative Balance#
- shortwave absorption
- longwave emission
- albedo feedback
- greenhouse trapping
3. Operator Alignment#
Thermodynamics Operators#
- gradient_interpretation
- flux_alignment
- radiative_balance_check
- phase_boundary_detection
Continuity Operators#
- energy_conservation
- flux_continuity
Coherence Operators#
- stable_thermodynamic_regime
- coherent_flux_behavior
Clarity Operators#
- noise_free_gradient
- radiative_signal_clarity
Dimensional Operators#
- micro → meso thermodynamic scaling
- meso → macro flux alignment
Drift Operators#
- instability_propagation
- thermodynamic_drift_detection
Paradox Operators#
- conflicting_flux_signals
- inversion_paradox
Resonance Operators#
- thermodynamic_oscillations
- harmonic_flux_alignment
4. Thresholds#
- gradient_clarity_min: 0.7
- flux_stability_min: 0.6
- radiative_balance_tolerance: 0.15
Thresholds determine regime classification and operator activation.
5. Regime Zones#
Stable#
- monotonic gradients
- coherent energy flux
- predictable radiative balance
Transition#
- inversion formation
- boundary‑layer breakdown
- moisture‑driven instability
Unstable#
- convective bursts
- rapid lapse‑rate shifts
- radiative imbalance
6. Diagnostic Output#
The Thermodynamics Diagnostic produces:
Clarity#
- high
- medium
- low
Stability#
- stable
- transition
- unstable
Signature#
- gradient_alignment
- coherent_flux
- radiative_balance
- phase_boundary_consistency
Operators Triggered#
- thermodynamics
- continuity
- coherence
- clarity
7. Example#
See thermodynamics_diagnostic.example.json for a complete example input/output pair.
8. Seven‑Phase Alignment#
Thermodynamics Diagnostic participates in:
- Composition
- Forcing
- Dynamics
- Thermodynamics (primary phase)
- Hydrospheric Coupling
- Regime Transitions
- Resonance & Coherence
9. Status#
Thermodynamics Diagnostic is:
- canon‑aligned
- structurally complete
- operator‑aligned
- schema‑compatible
- ready for diagnostic integration
