starlit  Artifact [20212b373d]

Artifact 20212b373d03113a968adc4c9f566a31119609278273ed8660de8c009c9893f6:


local lib = starsoul.mod.lib
local world = starsoul.world

function world.date()
	local days = minetest.get_day_count()
	local year = math.floor(days / world.planet.orbit);
	local day = days % world.planet.orbit;
	return {
		year = year, day = day;
		season = day / world.planet.orbit;
	}
end
local lerp = lib.math.lerp

local function gradient(grad, pos)
	local n = #grad
	if n == 1 then return grad[1] end
	local op = pos*(n-1)
	local idx = math.floor(op)
	local t = op-idx
	return lerp(t, grad[1 + idx], grad[2 + idx])
end

local altitudeCooling = 10 / 100

-- this function provides the basis for temperature calculation,
-- which is performed by adding this value to the ambient temperature,
-- determined by querying nearby group:heatSource items in accordance
-- with the inverse-square law
function world.climate.eval(pos, tod, season)
	local data = minetest.get_biome_data(pos)
	local biome = world.ecology.biomes.db[minetest.get_biome_name(data.biome)]
	local heat, humid = data.heat, data.humidity
	tod = tod or minetest.get_timeofday()
	heat = lerp(math.abs(tod - 0.5)*2, heat, heat + biome.nightTempDelta)

	local td = world.date()
	heat = heat + gradient(biome.seasonalTemp, season or td.season)
	if pos.y > 0 then
		heat = heat - pos.y*altitudeCooling 
	end

	return {
		surfaceTemp = heat;
		waterTemp = heat + biome.waterTempDelta;
		surfaceHumid = humid;
	}
end

local vdsq = lib.math.vdsq
function world.climate.temp(pos) --> irradiance at pos in W
	local cl = world.climate.eval(pos)
	local radCenters = starsoul.region.radiator.store:get_areas_for_pos(pos, false, true)
	local irradiance = 0
	for _,e in pairs(radCenters) do
		local rpos = minetest.string_to_pos(e.data)
		local rdef = assert(minetest.registered_nodes[assert(minetest.get_node(rpos)).name])
		local rc = rdef._starsoul.radiator
		local r_max = rc.radius(rpos)

		local dist_sq = vdsq(rpos,pos)
		if dist_sq <= r_max^2 then
			-- cheap bad way
			-- if minetest.line_of_sight(rpos,pos) then
			--
			-- expensive way
			local obstruct = 0
			local ray = Raycast(rpos, pos, true, true)
			for p in ray do
				if p.type == 'node' then obstruct = obstruct + 1 end
			end

			if obstruct < 4 then
				local power, customFalloff = rc.radiate(rpos, pos)
				-- okay this isn't the real inverse square law but i 
				-- couldn't figure out a better way to simplify the
				-- model without checking an ENORMOUS number of nodes
				-- maybe someone else who isn't completely
				-- mathtarded can do better.
				if not customFalloff then
					power = power * (1 - (dist_sq / ((r_max+1)^2)))
				end
				power = power * (1 - (obstruct/5))
				irradiance = irradiance + power
			end
		end
	end
	return irradiance + cl.surfaceTemp
end

world.ecology.biomes.foreach('starsoul:biome-gen', {}, function(id, b)
	b.def.name = id
	minetest.register_biome(b.def)
end)

world.ecology.biomes.link('starsoul:steppe', {
	nightTempDelta = -30;
	waterTempDelta = 0;
	--               W    Sp   Su    Au   W
	seasonalTemp = {-50, -10, 5, 5, -20, -50};
	def = {
		node_top      = 'starsoul:greengraze', depth_top = 1;
		node_filler   = 'starsoul:soil',    depth_filler = 4;
		node_riverbed = 'starsoul:sand',  depth_riverbed = 4;
		y_min = 0;
		y_max = 512;
		heat_point = 10;
		humidity_point = 30;
	};
})
	
world.ecology.biomes.link('starsoul:ocean', {
	nightTempDelta = -35;
	waterTempDelta = 5;
	seasonalTemp = {0}; -- no seasonal variance
	def = {
		y_max = 3;
		y_min = -512;
		heat_point = 15;
		humidity_point = 50;
		node_top    = 'starsoul:sand', depth_top    = 1;
		node_filler = 'starsoul:sand', depth_filler = 3;
	};
})

local toward = lib.math.toward
local hfinterval = 1.5
starsoul.startJob('starsoul:heatflow', hfinterval, function(delta)

	-- our base thermal conductivity (κ) is measured in °C/°C/s. say the
	-- player is in -30°C weather, and has an internal temperature of
	-- 10°C. then:
	--   κ  = .1°C/C/s (which is apparently 100mHz)
	--   Tₚ =  10°C
	--   Tₑ = -30°C
	--   d  = Tₑ − Tₚ = -40°C
	--   ΔT = κ×d = -.4°C/s
	-- our final change in temperature is computed as tΔC where t is time
	local kappa = .05
	for name,user in pairs(starsoul.activeUsers) do
		local tr = user:species().tempRange
		local t = starsoul.world.climate.temp(user.entity:get_pos())
		local insul = 0
		local naked = user:naked()
		local suitDef
		if not naked then
			suitDef = user:suitStack():get_definition()
			insul = suitDef._starsoul.suit.temp.insulation
		end

		local warm = user:effectiveStat 'warmth'
		local tSafeMin, tSafeMax = tr.survivable[1], tr.survivable[2]
		local tComfMin, tComfMax = tr.comfort[1], tr.comfort[2]

		local tDelta = (kappa * (1-insul)) * (t - warm) * hfinterval
		local tgt = warm + tDelta

		-- old logic: we move the user towards the exterior temperature, modulated
		-- by her suit insulation.
		--local tgt = toward(warm, t, hfinterval * thermalConductivity * (1 - insul))

		if not naked then
			local suit = user:getSuit()
			local suitPower = suit:powerState()
			local suitPowerLeft = suit:powerLeft()
			if suitPower ~= 'off' then
				local coilPower = 1.0
				local st = suitDef._starsoul.suit.temp
				if suitPower == 'powerSave' and (tgt >= tSafeMin and tgt <= tSafeMax) then coilPower = 0.5 end
				if tgt < tComfMin and st.maxHeat > 0 then
					local availPower = user:suitDrawCurrent(st.heatPower*coilPower, hfinterval)
					tgt = tgt + (availPower / st.heatPower) * st.maxHeat * coilPower * hfinterval
				end
				if tgt > tComfMax and st.maxCool > 0 then
					local availPower = user:suitDrawCurrent(st.coolPower*coilPower, hfinterval)
					tgt = tgt - (availPower / st.coolPower) * st.maxCool * coilPower * hfinterval
				end
			end
		end

		user:statDelta('warmth', tgt - warm) -- dopey but w/e

		warm = tgt -- for the sake of readable code

		if warm < tSafeMin or warm > tSafeMax then
			local dv
			if warm < tSafeMin then
				dv = math.abs(warm - tSafeMin)
			else
				dv = math.abs(warm - tSafeMax)
			end
			-- for every degree of difference you suffer 2 points of damage/s
			local dmg = math.ceil(dv * 2)
			user:statDelta('health', -dmg)
		end
	end
end)