Files
TeslaRel410/restoration/source410/BT/HEAT.HPP
T
CydandClaude Fable 5 e1e5a9a6db BT410 Phase 5.3.12: experience gates + coolant system -- novice/expert modes REAL
The player-experience system now gates the entire heat/jam economy, verified in
BOTH directions with a one-token egg edit (TESTNOV.EGG, experience=novice):
NOVICE = 212 fire cycles all pinned at T=77, zero jams, zero shutdowns (the
heat model authentically absent); EXPERT = the full economy (duty cycles, 119
shutdowns + 2 authentic jams under forced fire). Zero Fail in both.

- BTPLAYER: the flag block renamed to its TRUE semantics (simLive @0x25c,
  heatModelOn @0x260 -- the FUN_004ad7d4 master switch, advancedDamageOn pair,
  levelFlag26c/270, experienceLevel); the ctor rows were already
  binary-accurate (nov 0000 / std 1011 / vet 1111 / exp 1101); accessors +
  [exp] sentinel.
- HeatSink::HeatModelActive() + ProjectileWeapon::LiveFireEnabled(): owner
  mech -> Entity::GetPlayerLink() -> the BTPlayer flags, NULL-permissive.
  Gates: both HeatSinkSimulation phases, every weapon fire-heat dump, and
  CheckForJam is now the AUTHENTIC form (LiveFireEnabled + heatLoad<=0
  early-outs + the minJamChance floor; the interim heat-degraded gate retired).

- THE LOAD-BEARING FIX: Mech ctor SetValidFlag(). Every 1995 entity ctor tail
  marks itself valid; ours didn't -- Entity::Dispatch routes messages to an
  INVALID entity into the deferred event queue, so the PlayerLink bind (and
  every directly-dispatched mech message) silently never landed and the gates
  read a NULL player forever.

- THE COOLANT SYSTEM (authentic bodies, byte-verified constants: HeatLoadScale
  0.002 -> heatLoad now in [0,1]; equalize eps 1e-4; draw floor/ON
  0.0025/0.003): UpdateCoolant (damage-scaled draw -- an undamaged mech leaks
  nothing), BalanceCoolant (full clamp chain from ConductHeat), DrawCoolant
  base=0 with the RESERVOIR override as THE SOURCE; Reservoir reconstructed
  (capacity overlays thermalCapacity, CoolantSimulation + the full
  InjectCoolant flush distribution, BT_FORCE_FLUSH dev hook); Condenser
  RefrigerationSimulation (massScale = (1-damage)*refrigerationFactor >= 1 --
  the heat pump that chills the bank; valveState inits 1; digit-suffix number
  fix). Deferred: AggregateHeatSink family, cockpit-button handlers
  (MoveValve/ToggleCooling/InjectCoolant), TrackSeekVoltage charge model.

Research driven by a 4-agent workflow dossier over the BT411 RE (verbatim
bodies for every function above + the egg experience plumbing).

Co-Authored-By: Claude Fable 5 <noreply@anthropic.com>
2026-07-22 22:15:07 -05:00

383 lines
11 KiB
C++

//===========================================================================//
// File: heat.hpp //
// Project: BattleTech //
// Contents: Implementation details for heatable subsystems //
//---------------------------------------------------------------------------//
// Date Who Modification //
// -------- --- ---------------------------------------------------------- //
// //
//---------------------------------------------------------------------------//
// Copyright (C) 1995, Virtual World Entertainment, Inc. //
// All Rights reserved worldwide //
// This unpublished sourcecode is PROPRIETARY and CONFIDENTIAL //
//===========================================================================//
#if !defined(HEAT_HPP)
# define HEAT_HPP
# if !defined(MECHSUB_HPP)
# include <mechsub.hpp>
# endif
# if !defined(AVERAGE_HPP)
# include <average.hpp>
# endif
//##################### Forward Class Declarations #######################
class Mech;
//###########################################################################
//################## HeatableSubsystem Model Resource ###################
//###########################################################################
struct HeatableSubsystem__SubsystemResource:
public MechSubsystem::SubsystemResource
{
Scalar startingTemperature;
Scalar degradationTemperature;
Scalar failureTemperature;
Scalar thermalConductance;
Scalar thermalMass;
};
//###########################################################################
//######################## HeatableSubsystem ############################
//###########################################################################
class HeatableSubsystem:
public MechSubsystem
{
//~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~
// Shared Data Support
//
public:
static Derivation ClassDerivations;
static SharedData DefaultData;
//~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~
// Test Class Support
//
public:
static Logical
TestClass(Mech &);
Logical
TestInstance() const;
void
ResetToInitialState();
//~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~
// Construction and Destruction
//
public:
typedef HeatableSubsystem__SubsystemResource SubsystemResource;
HeatableSubsystem(
Mech *owner,
int subsystem_ID,
SubsystemResource *subsystem_resource,
SharedData &shared_data = DefaultData
);
~HeatableSubsystem();
static int
CreateStreamedSubsystem(
NotationFile *model_file,
const char *model_name,
const char *subsystem_name,
SubsystemResource *subsystem_resource,
NotationFile *subsystem_file,
const ResourceDirectories *directories,
int passes = 1
);
//~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~
// Local Data
//
protected:
Scalar currentTemperature;
Scalar heatLoad;
Scalar degradationTemperature;
Scalar failureTemperature;
};
//###########################################################################
//########################## SubsystemConnection ########################
//###########################################################################
//
// A slot linking a heat sink to its master / linked heat sink.
//
class SubsystemConnection
{
public:
SubsystemConnection() { linked = NULL; }
void Add(Subsystem *s) { linked = s; }
Subsystem* Resolve() const { return linked; }
void Clear() { linked = NULL; }
protected:
Subsystem *linked;
int reserved[2];
};
//###########################################################################
//####################### HeatSink Model Resource #######################
//###########################################################################
struct HeatSink__SubsystemResource:
public HeatableSubsystem__SubsystemResource
{
//
// WIRE-VERIFIED (raw-stream dump): the roster index of the sink this
// one conducts its heat into -- the weapons/equipment link to the
// Condenser bank (slots 4-9), the Condensers to the central HeatSink.
// This was THE missing ancestry int that shifted every descendant
// resource block +1 (PoweredSubsystem voltageSourceIndex, the MechWeapon
// block, ...).
//
int linkedSinkIndex;
};
//###########################################################################
//############################## HeatSink ###############################
//###########################################################################
//###########################################################################
//################### HeatWatcher Model Resource #######################
//###########################################################################
struct HeatWatcher__SubsystemResource:
public MechSubsystem__SubsystemResource
{
int watchedSubsystem;
Scalar degradationTemperature;
Scalar failureTemperature;
};
//###########################################################################
//############################# HeatWatcher #############################
//###########################################################################
//
// Watches another subsystem's temperature and drives a 3-level alarm. A
// sibling branch to HeatableSubsystem (derives straight from MechSubsystem);
// PowerWatcher and the Torso/HUD/Gyroscope leaves descend from it.
//
class HeatWatcher:
public MechSubsystem
{
public:
static Derivation ClassDerivations;
static SharedData DefaultData;
static Logical
TestClass(Mech &);
Logical
TestInstance() const;
void
ResetToInitialState(Logical powered);
void
WatchSimulation(Scalar time_slice);
public:
typedef HeatWatcher__SubsystemResource SubsystemResource;
HeatWatcher(
Mech *owner,
int subsystem_ID,
SubsystemResource *subsystem_resource,
SharedData &shared_data = DefaultData
);
~HeatWatcher();
protected:
SubsystemConnection watchedLink;
int watchedSubsystem;
Scalar degradationTemperature;
Scalar failureTemperature;
AlarmIndicator heatAlarm;
};
class HeatSink:
public HeatableSubsystem
{
friend class Condenser;
friend class Reservoir;
//~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~
// Shared Data Support
//
public:
static Derivation ClassDerivations;
static SharedData DefaultData;
//~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~
// Test Class Support
//
public:
static Logical
TestClass(Mech &);
Logical
TestInstance() const;
void
ResetToInitialState(Logical powered);
//~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~
// Heat state (carried in heatAlarm, 3 levels). The thresholds are the
// authored degradation/failure temperatures.
//
public:
enum {
NormalHeat = 0,
DegradationHeat,
FailureHeat,
HeatStateCount
};
unsigned
GetHeatState() { Check(this); return heatAlarm.GetLevel(); }
Scalar
CurrentTemperatureOf() { Check(this); return currentTemperature; }
void
AddPendingHeat(Scalar heat)
{ Check(this); pendingHeat += heat; }
//~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~
// Simulation Support
//
public:
typedef void
(HeatSink::*Performance)(Scalar time_slice);
void
SetPerformance(Performance performance)
{
Check(this);
activePerformance = (Simulation::Performance)performance;
}
//
// The heat-model master switch (binary FUN_004ad7d4): the owning
// BTPlayer's heatModelOn experience flag, reached through the mech's
// playerLink. ON only for veteran / expert; a NULL player reads ON.
//
Logical
HeatModelActive();
void
HeatSinkSimulation(Scalar time_slice);
void
UpdateHeatLoad();
void
ConductHeat(Scalar time_slice);
Scalar
ComputeHeatFlow(HeatSink *other, Scalar time_slice);
void
UpdateCoolant(Scalar time_slice);
void
BalanceCoolant(Scalar time_slice);
virtual Scalar
DrawCoolant(Scalar requested);
//~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~
// Construction and Destruction
//
public:
typedef HeatSink__SubsystemResource SubsystemResource;
HeatSink(
Mech *owner,
int subsystem_ID,
SubsystemResource *subsystem_resource,
SharedData &shared_data = DefaultData
);
~HeatSink();
//~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~
// Local Data
//
protected:
Scalar coolantEfficiency;
Scalar thermalCapacity;
Scalar coolantLevel;
Scalar coolantDraw;
int coolantAvailable;
int coolantActive;
Scalar startingTemperature;
Scalar thermalConductance;
Scalar filterDecay;
Scalar thermalMass;
Scalar heatEnergy;
Scalar coolantFlowScale;
Scalar massScale;
Scalar pendingHeat;
Scalar radiatedHeat;
SubsystemConnection linkedSinks;
AlarmIndicator heatAlarm;
AverageOf<Scalar> heatFilter;
};
//###########################################################################
//#################### Condenser Model Resource ########################
//###########################################################################
struct Condenser__SubsystemResource:
public HeatSink__SubsystemResource
{
Scalar refrigerationFactor;
};
//###########################################################################
//############################## Condenser #############################
//###########################################################################
//
// A HeatSink with active refrigeration (a coolant loop's condenser).
//
class Condenser:
public HeatSink
{
public:
static Derivation ClassDerivations;
static SharedData DefaultData;
static Logical
TestClass(Mech &);
Logical
TestInstance() const;
public:
typedef Condenser__SubsystemResource SubsystemResource;
Condenser(
Mech *owner,
int subsystem_ID,
SubsystemResource *subsystem_resource,
SharedData &shared_data = DefaultData
);
~Condenser();
//~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~
// Per-frame refrigeration (binary @4ae4d8): the condenser actively pumps
// heat toward the central bank -- massScale is recomputed each frame as
// (1 - own damage) * refrigerationFactor, clamped >= 1, so an undamaged
// condenser behaves refrigerationFactor-times "hotter" in the conduction
// exchange and chills itself below ambient (which is what cools the
// weapons equalizing against it). Damage degrades it toward a plain sink.
//
public:
typedef void
(Condenser::*Performance)(Scalar time_slice);
void
SetPerformance(Performance performance)
{
Check(this);
activePerformance = (Simulation::Performance)performance;
}
void
RefrigerationSimulation(Scalar time_slice);
protected:
int valveState;
int condenserNumber;
Scalar refrigerationFactor;
};
#endif