* Removes completely unnecessary block of code in reactions.dm * removes block of code (#36474)
388 lines
18 KiB
Plaintext
388 lines
18 KiB
Plaintext
//Plasma fire properties
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#define OXYGEN_BURN_RATE_BASE 1.4
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#define PLASMA_BURN_RATE_DELTA 9
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#define PLASMA_UPPER_TEMPERATURE 1370+T0C
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#define PLASMA_MINIMUM_OXYGEN_NEEDED 2
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#define PLASMA_MINIMUM_OXYGEN_PLASMA_RATIO 30
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#define PLASMA_OXYGEN_FULLBURN 10
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#define FIRE_CARBON_ENERGY_RELEASED 100000 //Amount of heat released per mole of burnt carbon into the tile
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#define FIRE_HYDROGEN_ENERGY_RELEASED 280000 // Amount of heat released per mole of burnt hydrogen and/or tritium(hydrogen isotope)
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#define FIRE_PLASMA_ENERGY_RELEASED 3000000 //Amount of heat released per mole of burnt plasma into the tile
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//General assmos defines.
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#define WATER_VAPOR_FREEZE 200
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#define NITRYL_FORMATION_ENERGY 100000
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#define TRITIUM_BURN_OXY_FACTOR 100
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#define TRITIUM_BURN_TRIT_FACTOR 10
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#define TRITIUM_BURN_RADIOACTIVITY_FACTOR 50000 //The neutrons gotta go somewhere. Completely arbitrary number.
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#define TRITIUM_MINIMUM_RADIATION_ENERGY 0.1 //minimum 0.01 moles trit or 10 moles oxygen to start producing rads
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#define SUPER_SATURATION_THRESHOLD 96
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#define STIMULUM_HEAT_SCALE 100000
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#define STIMULUM_FIRST_RISE 0.65
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#define STIMULUM_FIRST_DROP 0.065
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#define STIMULUM_SECOND_RISE 0.0009
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#define STIMULUM_ABSOLUTE_DROP 0.00000335
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#define REACTION_OPPRESSION_THRESHOLD 5
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//Plasma fusion properties
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#define PLASMA_BINDING_ENERGY 3000000
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#define MAX_CATALYST_EFFICENCY 9
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#define PLASMA_FUSED_COEFFICENT 0.08
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#define CATALYST_COEFFICENT 0.01
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#define FUSION_PURITY_THRESHOLD 0.95
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#define FUSION_HEAT_DROPOFF 20000+T0C
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#define NOBLIUM_FORMATION_ENERGY 2e9 //1 Mole of Noblium takes the planck energy to condense.
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/datum/controller/subsystem/air/var/list/gas_reactions //this is our singleton of all reactions
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/proc/init_gas_reactions()
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var/list/reaction_types = list()
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for(var/r in subtypesof(/datum/gas_reaction))
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var/datum/gas_reaction/reaction = r
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if(!initial(reaction.exclude))
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reaction_types += reaction
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reaction_types = sortList(reaction_types, /proc/cmp_gas_reactions)
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. = list()
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for(var/path in reaction_types)
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. += new path
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/proc/cmp_gas_reactions(datum/gas_reaction/a, datum/gas_reaction/b) //sorts in descending order of priority
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return initial(b.priority) - initial(a.priority)
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/datum/gas_reaction
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//regarding the requirements lists: the minimum or maximum requirements must be non-zero.
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//when in doubt, use MINIMUM_HEAT_CAPACITY.
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var/list/min_requirements
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var/list/max_requirements
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var/exclude = FALSE //do it this way to allow for addition/removal of reactions midmatch in the future
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var/priority = 100 //lower numbers are checked/react later than higher numbers. if two reactions have the same priority they may happen in either order
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var/name = "reaction"
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var/id = "r"
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/datum/gas_reaction/New()
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init_reqs()
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/datum/gas_reaction/proc/init_reqs()
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/datum/gas_reaction/proc/react(datum/gas_mixture/air, atom/location)
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return NO_REACTION
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/datum/gas_reaction/nobliumsupression
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priority = INFINITY
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name = "Hyper-Noblium Reaction Supression"
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id = "nobstop"
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/datum/gas_reaction/nobliumsupression/init_reqs()
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min_requirements = list(/datum/gas/hypernoblium = REACTION_OPPRESSION_THRESHOLD)
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/datum/gas_reaction/nobliumsupression/react()
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return STOP_REACTIONS
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//water vapor: puts out fires?
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/datum/gas_reaction/water_vapor
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priority = 1
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name = "Water Vapor"
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id = "vapor"
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/datum/gas_reaction/water_vapor/init_reqs()
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min_requirements = list(/datum/gas/water_vapor = MOLES_GAS_VISIBLE)
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/datum/gas_reaction/water_vapor/react(datum/gas_mixture/air, turf/open/location)
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. = NO_REACTION
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if (air.temperature <= WATER_VAPOR_FREEZE)
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if(location && location.freon_gas_act())
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. = REACTING
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else if(location && location.water_vapor_gas_act())
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air.gases[/datum/gas/water_vapor][MOLES] -= MOLES_GAS_VISIBLE
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. = REACTING
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//fire: combustion of plasma and volatile fuel (treated as hydrocarbons). creates hotspots. exothermic
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/datum/gas_reaction/fire
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priority = -1 //fire should ALWAYS be last
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name = "Hydrocarbon Combustion"
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id = "fire"
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/datum/gas_reaction/fire/init_reqs()
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min_requirements = list("TEMP" = FIRE_MINIMUM_TEMPERATURE_TO_EXIST) //doesn't include plasma reqs b/c of other, rarer, burning gases.
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/datum/gas_reaction/fire/react(datum/gas_mixture/air, turf/open/location)
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var/energy_released = 0
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var/old_heat_capacity = air.heat_capacity()
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var/list/cached_gases = air.gases //this speeds things up because accessing datum vars is slow
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var/temperature = air.temperature
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var/list/cached_results = air.reaction_results
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cached_results[id] = 0
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//General volatile gas burn
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if(cached_gases[/datum/gas/tritium] && cached_gases[/datum/gas/tritium][MOLES])
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var/burned_fuel
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if(!cached_gases[/datum/gas/oxygen])
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burned_fuel = 0
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else if(cached_gases[/datum/gas/oxygen][MOLES] < cached_gases[/datum/gas/tritium][MOLES])
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burned_fuel = cached_gases[/datum/gas/oxygen][MOLES]/TRITIUM_BURN_OXY_FACTOR
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cached_gases[/datum/gas/tritium][MOLES] -= burned_fuel
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else
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burned_fuel = cached_gases[/datum/gas/tritium][MOLES]*TRITIUM_BURN_TRIT_FACTOR
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cached_gases[/datum/gas/tritium][MOLES] -= cached_gases[/datum/gas/tritium][MOLES]/TRITIUM_BURN_TRIT_FACTOR
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cached_gases[/datum/gas/oxygen][MOLES] -= cached_gases[/datum/gas/tritium][MOLES]
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if(burned_fuel)
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energy_released += FIRE_HYDROGEN_ENERGY_RELEASED * burned_fuel
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if(location && prob(10) && burned_fuel > TRITIUM_MINIMUM_RADIATION_ENERGY) //woah there let's not crash the server
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radiation_pulse(location, energy_released/TRITIUM_BURN_RADIOACTIVITY_FACTOR)
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ASSERT_GAS(/datum/gas/water_vapor, air) //oxygen+more-or-less hydrogen=H2O
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cached_gases[/datum/gas/water_vapor][MOLES] += burned_fuel/TRITIUM_BURN_OXY_FACTOR
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cached_results[id] += burned_fuel
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//Handle plasma burning
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if(cached_gases[/datum/gas/plasma] && cached_gases[/datum/gas/plasma][MOLES] > MINIMUM_HEAT_CAPACITY)
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var/plasma_burn_rate = 0
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var/oxygen_burn_rate = 0
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//more plasma released at higher temperatures
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var/temperature_scale
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var/super_saturation
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if(temperature > PLASMA_UPPER_TEMPERATURE)
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temperature_scale = 1
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else
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temperature_scale = (temperature-PLASMA_MINIMUM_BURN_TEMPERATURE)/(PLASMA_UPPER_TEMPERATURE-PLASMA_MINIMUM_BURN_TEMPERATURE)
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if(temperature_scale > 0)
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var/o2 = cached_gases[/datum/gas/oxygen] ? cached_gases[/datum/gas/oxygen][MOLES] : 0
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oxygen_burn_rate = OXYGEN_BURN_RATE_BASE - temperature_scale
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if(o2 / cached_gases[/datum/gas/plasma][MOLES] > SUPER_SATURATION_THRESHOLD) //supersaturation. Form Tritium.
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super_saturation = TRUE
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if(o2 > cached_gases[/datum/gas/plasma][MOLES]*PLASMA_OXYGEN_FULLBURN)
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plasma_burn_rate = (cached_gases[/datum/gas/plasma][MOLES]*temperature_scale)/PLASMA_BURN_RATE_DELTA
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else
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plasma_burn_rate = (temperature_scale*(o2/PLASMA_OXYGEN_FULLBURN))/PLASMA_BURN_RATE_DELTA
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if(plasma_burn_rate > MINIMUM_HEAT_CAPACITY)
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ASSERT_GAS(/datum/gas/carbon_dioxide, air) //don't need to assert o2, since if it isn't present we'll never reach this point anyway
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plasma_burn_rate = min(plasma_burn_rate,cached_gases[/datum/gas/plasma][MOLES],cached_gases[/datum/gas/oxygen][MOLES]/oxygen_burn_rate) //Ensures matter is conserved properly
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cached_gases[/datum/gas/plasma][MOLES] = QUANTIZE(cached_gases[/datum/gas/plasma][MOLES] - plasma_burn_rate)
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cached_gases[/datum/gas/oxygen][MOLES] = QUANTIZE(cached_gases[/datum/gas/oxygen][MOLES] - (plasma_burn_rate * oxygen_burn_rate))
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if (super_saturation)
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ASSERT_GAS(/datum/gas/tritium,air)
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cached_gases[/datum/gas/tritium][MOLES] += plasma_burn_rate
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else
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ASSERT_GAS(/datum/gas/carbon_dioxide,air)
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cached_gases[/datum/gas/carbon_dioxide][MOLES] += plasma_burn_rate
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energy_released += FIRE_PLASMA_ENERGY_RELEASED * (plasma_burn_rate)
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cached_results[id] += (plasma_burn_rate)*(1+oxygen_burn_rate)
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if(energy_released > 0)
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var/new_heat_capacity = air.heat_capacity()
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if(new_heat_capacity > MINIMUM_HEAT_CAPACITY)
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air.temperature = (temperature*old_heat_capacity + energy_released)/new_heat_capacity
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//let the floor know a fire is happening
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if(istype(location))
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temperature = air.temperature
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if(temperature > FIRE_MINIMUM_TEMPERATURE_TO_EXIST)
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location.hotspot_expose(temperature, CELL_VOLUME)
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for(var/I in location)
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var/atom/movable/item = I
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item.temperature_expose(air, temperature, CELL_VOLUME)
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location.temperature_expose(air, temperature, CELL_VOLUME)
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return cached_results[id] ? REACTING : NO_REACTION
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//fusion: a terrible idea that was fun but broken. Now reworked to be less broken and more interesting.
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/datum/gas_reaction/fusion
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exclude = TRUE
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priority = 2
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name = "Plasmic Fusion"
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id = "fusion"
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/datum/gas_reaction/fusion/init_reqs()
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min_requirements = list(
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"ENER" = PLASMA_BINDING_ENERGY * 10,
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/datum/gas/plasma = MINIMUM_HEAT_CAPACITY,
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/datum/gas/tritium = MINIMUM_HEAT_CAPACITY
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)
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/datum/gas_reaction/fusion/react(datum/gas_mixture/air, turf/open/location)
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var/list/cached_gases = air.gases
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var/temperature = air.temperature
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if(((cached_gases[/datum/gas/plasma][MOLES]+cached_gases[/datum/gas/tritium][MOLES])/air.total_moles() < FUSION_PURITY_THRESHOLD) || air.return_pressure() < 10*ONE_ATMOSPHERE)
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//Fusion wont occur if the level of impurities is too high or if there is too little pressure.
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return NO_REACTION
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var/old_heat_capacity = air.heat_capacity()
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var/catalyst_efficency = max(min(cached_gases[/datum/gas/plasma][MOLES]/cached_gases[/datum/gas/tritium][MOLES],MAX_CATALYST_EFFICENCY)-(temperature/FUSION_HEAT_DROPOFF),1)
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var/reaction_energy = THERMAL_ENERGY(air)
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var/moles_impurities = max(air.total_moles()-(cached_gases[/datum/gas/plasma][MOLES]+cached_gases[/datum/gas/tritium][MOLES]),1) //This makes it assume a minimum of 1 mol impurities so the reaction energy doesn't divide by 0
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var/plasma_fused = min((PLASMA_FUSED_COEFFICENT*catalyst_efficency)*(temperature/PLASMA_BINDING_ENERGY)/10,cached_gases[/datum/gas/plasma][MOLES]) //Preserve matter
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var/tritium_catalyzed = min((CATALYST_COEFFICENT*catalyst_efficency)*(temperature/PLASMA_BINDING_ENERGY)/40,cached_gases[/datum/gas/tritium][MOLES]) //Ditto
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var/oxygen_added = tritium_catalyzed
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var/waste_added = max((plasma_fused-oxygen_added)-((air.total_moles()*air.heat_capacity())/PLASMA_BINDING_ENERGY),0)
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reaction_energy = max(reaction_energy+((catalyst_efficency*cached_gases[/datum/gas/plasma][MOLES])/((moles_impurities/catalyst_efficency)+2)*10)+((plasma_fused/(moles_impurities/catalyst_efficency))*PLASMA_BINDING_ENERGY),0)
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air.assert_gases(/datum/gas/oxygen, /datum/gas/carbon_dioxide, /datum/gas/water_vapor, /datum/gas/nitrous_oxide, /datum/gas/nitryl)
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//Fusion produces an absurd amount of waste products now, requiring active filtration.
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cached_gases[/datum/gas/plasma][MOLES] = max(cached_gases[/datum/gas/plasma][MOLES] - plasma_fused,0)
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cached_gases[/datum/gas/tritium][MOLES] = max(cached_gases[/datum/gas/tritium][MOLES] - tritium_catalyzed,0)
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cached_gases[/datum/gas/oxygen][MOLES] += oxygen_added
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cached_gases[/datum/gas/water_vapor][MOLES] += waste_added
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cached_gases[/datum/gas/nitrous_oxide][MOLES] += waste_added
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cached_gases[/datum/gas/nitryl][MOLES] += waste_added
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cached_gases[/datum/gas/carbon_dioxide][MOLES] += waste_added
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if (location)
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radiation_pulse(location, reaction_energy/(PLASMA_BINDING_ENERGY*MAX_CATALYST_EFFICENCY))
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if(reaction_energy > 0)
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var/new_heat_capacity = air.heat_capacity()
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if(new_heat_capacity > MINIMUM_HEAT_CAPACITY)
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air.temperature = max(((temperature*old_heat_capacity + reaction_energy)/new_heat_capacity),TCMB)
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//Prevents whatever mechanism is causing it to hit negative temperatures.
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return REACTING
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/datum/gas_reaction/nitrylformation //The formation of nitryl. Endothermic. Requires N2O as a catalyst.
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priority = 3
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name = "Nitryl formation"
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id = "nitrylformation"
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/datum/gas_reaction/nitrylformation/init_reqs()
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min_requirements = list(
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/datum/gas/oxygen = 20,
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/datum/gas/nitrogen = 20,
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/datum/gas/nitrous_oxide = 5,
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"TEMP" = FIRE_MINIMUM_TEMPERATURE_TO_EXIST*400
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)
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/datum/gas_reaction/nitrylformation/react(datum/gas_mixture/air)
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var/list/cached_gases = air.gases
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var/temperature = air.temperature
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var/old_heat_capacity = air.heat_capacity()
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var/heat_efficency = min(temperature/(FIRE_MINIMUM_TEMPERATURE_TO_EXIST*100),cached_gases[/datum/gas/oxygen][MOLES],cached_gases[/datum/gas/nitrogen][MOLES])
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var/energy_used = heat_efficency*NITRYL_FORMATION_ENERGY
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ASSERT_GAS(/datum/gas/nitryl,air)
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cached_gases[/datum/gas/oxygen][MOLES] -= heat_efficency
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cached_gases[/datum/gas/nitrogen][MOLES] -= heat_efficency
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cached_gases[/datum/gas/nitryl][MOLES] += heat_efficency*2
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if(energy_used > 0)
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var/new_heat_capacity = air.heat_capacity()
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if(new_heat_capacity > MINIMUM_HEAT_CAPACITY)
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air.temperature = max(((temperature*old_heat_capacity - energy_used)/new_heat_capacity),TCMB)
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return REACTING
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/datum/gas_reaction/bzformation //Formation of BZ by combining plasma and tritium at low pressures. Exothermic.
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priority = 4
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name = "BZ Gas formation"
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id = "bzformation"
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/datum/gas_reaction/bzformation/init_reqs()
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min_requirements = list(
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/datum/gas/tritium = 10,
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/datum/gas/plasma = 10
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)
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/datum/gas_reaction/bzformation/react(datum/gas_mixture/air)
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var/list/cached_gases = air.gases
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var/temperature = air.temperature
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var/pressure = air.return_pressure()
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var/old_heat_capacity = air.heat_capacity()
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var/reaction_efficency = min(1/((pressure/(0.1*ONE_ATMOSPHERE))*(max(cached_gases[/datum/gas/plasma][MOLES]/cached_gases[/datum/gas/tritium][MOLES],1))),cached_gases[/datum/gas/tritium][MOLES],cached_gases[/datum/gas/plasma][MOLES]/2)
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var/energy_released = 2*reaction_efficency*FIRE_CARBON_ENERGY_RELEASED
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ASSERT_GAS(/datum/gas/bz,air)
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cached_gases[/datum/gas/bz][MOLES]+= reaction_efficency
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cached_gases[/datum/gas/tritium][MOLES] = max(cached_gases[/datum/gas/tritium][MOLES]- reaction_efficency,0)
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cached_gases[/datum/gas/plasma][MOLES] = max(cached_gases[/datum/gas/plasma][MOLES] - (2*reaction_efficency),0)
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if(energy_released > 0)
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var/new_heat_capacity = air.heat_capacity()
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if(new_heat_capacity > MINIMUM_HEAT_CAPACITY)
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air.temperature = max(((temperature*old_heat_capacity + energy_released)/new_heat_capacity),TCMB)
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return REACTING
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/datum/gas_reaction/stimformation //Stimulum formation follows a strange pattern of how effective it will be at a given temperature, having some multiple peaks and some large dropoffs. Exo and endo thermic.
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priority = 5
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name = "Stimulum formation"
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id = "stimformation"
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/datum/gas_reaction/stimformation/init_reqs()
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min_requirements = list(
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/datum/gas/tritium = 30,
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/datum/gas/plasma = 10,
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/datum/gas/bz = 20,
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/datum/gas/nitryl = 30,
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"TEMP" = STIMULUM_HEAT_SCALE/2)
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/datum/gas_reaction/stimformation/react(datum/gas_mixture/air)
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var/list/cached_gases = air.gases
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var/old_heat_capacity = air.heat_capacity()
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var/heat_scale = min(air.temperature/STIMULUM_HEAT_SCALE,cached_gases[/datum/gas/tritium][MOLES],cached_gases[/datum/gas/plasma][MOLES],cached_gases[/datum/gas/nitryl][MOLES])
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var/stim_energy_change = heat_scale + STIMULUM_FIRST_RISE*(heat_scale**2) - STIMULUM_FIRST_DROP*(heat_scale**3) + STIMULUM_SECOND_RISE*(heat_scale**4) - STIMULUM_ABSOLUTE_DROP*(heat_scale**5)
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ASSERT_GAS(/datum/gas/stimulum,air)
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cached_gases[/datum/gas/stimulum][MOLES]+= heat_scale/10
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cached_gases[/datum/gas/tritium][MOLES] = max(cached_gases[/datum/gas/tritium][MOLES]- heat_scale,0)
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cached_gases[/datum/gas/plasma][MOLES] = max(cached_gases[/datum/gas/plasma][MOLES]- heat_scale,0)
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cached_gases[/datum/gas/nitryl][MOLES] = max(cached_gases[/datum/gas/nitryl][MOLES]- heat_scale,0)
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if(stim_energy_change)
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var/new_heat_capacity = air.heat_capacity()
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if(new_heat_capacity > MINIMUM_HEAT_CAPACITY)
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air.temperature = max(((air.temperature*old_heat_capacity + stim_energy_change)/new_heat_capacity),TCMB)
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return REACTING
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/datum/gas_reaction/nobliumformation //Hyper-Nobelium formation is extrememly endothermic, but requires high temperatures to start. Due to its high mass, hyper-nobelium uses large amounts of nitrogen and tritium. BZ can be used as a catalyst to make it less endothermic.
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priority = 6
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name = "Hyper-Noblium condensation"
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id = "nobformation"
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/datum/gas_reaction/nobliumformation/init_reqs()
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min_requirements = list(
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/datum/gas/nitrogen = 10,
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/datum/gas/tritium = 5,
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"TEMP" = 5000000)
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/datum/gas_reaction/nobliumformation/react(datum/gas_mixture/air)
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var/list/cached_gases = air.gases
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air.assert_gases(/datum/gas/hypernoblium,/datum/gas/bz)
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var/old_heat_capacity = air.heat_capacity()
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var/nob_formed = min((cached_gases[/datum/gas/nitrogen][MOLES]+cached_gases[/datum/gas/tritium][MOLES])/100,cached_gases[/datum/gas/tritium][MOLES]/10,cached_gases[/datum/gas/nitrogen][MOLES]/20)
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var/energy_taken = nob_formed*(NOBLIUM_FORMATION_ENERGY/(max(cached_gases[/datum/gas/bz][MOLES],1)))
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cached_gases[/datum/gas/tritium][MOLES] = max(cached_gases[/datum/gas/tritium][MOLES]- 10*nob_formed,0)
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cached_gases[/datum/gas/nitrogen][MOLES] = max(cached_gases[/datum/gas/nitrogen][MOLES]- 20*nob_formed,0)
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cached_gases[/datum/gas/hypernoblium][MOLES]+= nob_formed
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if (nob_formed)
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var/new_heat_capacity = air.heat_capacity()
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if(new_heat_capacity > MINIMUM_HEAT_CAPACITY)
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air.temperature = max(((air.temperature*old_heat_capacity - energy_taken)/new_heat_capacity),TCMB)
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#undef OXYGEN_BURN_RATE_BASE
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#undef PLASMA_BURN_RATE_DELTA
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#undef PLASMA_UPPER_TEMPERATURE
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#undef PLASMA_MINIMUM_OXYGEN_NEEDED
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#undef PLASMA_MINIMUM_OXYGEN_PLASMA_RATIO
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#undef PLASMA_OXYGEN_FULLBURN
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#undef FIRE_CARBON_ENERGY_RELEASED
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#undef FIRE_PLASMA_ENERGY_RELEASED
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#undef WATER_VAPOR_FREEZE
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#undef NITRYL_FORMATION_ENERGY
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#undef TRITIUM_BURN_OXY_FACTOR
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#undef SUPER_SATURATION_THRESHOLD
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#undef STIMULUM_HEAT_SCALE
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#undef STIMULUM_FIRST_RISE
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#undef STIMULUM_FIRST_DROP
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#undef STIMULUM_SECOND_RISE
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#undef STIMULUM_ABSOLUTE_DROP
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#undef REACTION_OPPRESSION_THRESHOLD
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#undef PLASMA_BINDING_ENERGY
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#undef MAX_CATALYST_EFFICENCY
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#undef PLASMA_FUSED_COEFFICENT
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#undef CATALYST_COEFFICENT
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#undef FUSION_PURITY_THRESHOLD
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#undef FUSION_HEAT_DROPOFF
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#undef NOBLIUM_FORMATION_ENERGY
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