Energy Sources and Crystal Smelting (Tech): Difference between pages

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{{cleanup|Broaden the scope - add all energy sources here, and have Fuels as a subsection.}}
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{{:{{PAGENAME}}/TechInfo}}
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==Summary==


Dyson Sphere Program has several ways of generating power. From the [[Wind Turbine|wind turbine]] you start with, to [[Mini Fusion Power Station|fusion generators]], [[Artificial Star|artificial stars]] and of course the Dyson Sphere itself. Some of these generators and your mech, Icarus, run on one or more different fuels. This page lists all fuels in the game and explains the stats they use.
==Prerequisite Technologies==


==Fuel stats==
[[Category:Technology]]
All fuels have two stats that tell you how good they are: '''Energy''', and '''Fuel chamber gen.'''
 
'''Energy''' is the total energy each item contains. When used in your mech, the [[Mini Fusion Power Station]] and the [[Artificial Star]], this is the total energy it generates. [[Thermal Power Station|Thermal Power Stations]] incur a 20% energy loss for all fuels they use.
 
'''Fuel chamber gen.''' marks how efficient your mech's Fuel Chamber is at converting the fuel. This only changes how fast energy is recharged, not how much total energy is produced. Note that [[Coal]] with 0% is the only fuel that matches your [[Energy Circuit (Upgrade)|Energy Circuit]] upgrade level. Both positive and negative percentages are relative to this. For instance, both a [[Hydrogen Fuel Rod]] and the 5 [[Hydrogen]] it requires to produce contain a total of 40MJ (before patch '''0.6.17.5972, [[Hydrogen Fuel Rod]]''' now contains 50MJ), but the fuel rod has a Fuel chamber gen. of +200% instead of the +100% of regular hydrogen, meaning you will use the fuel rod 50% faster (300% total charge rate compared to 200%) than the regular hydrogen and therefore recharge energy 50% faster. The time a fuel item lasts and your recovery speed both depend on your [[Energy Circuit (Upgrade)|Energy Circuit]] upgrade level. As this stat only affects your mech, processing hydrogen into fuel rods for use in the [[Thermal Power Station]] is a waste of resources.
 
===Burn Time===
Burn Time is calculated with the following formula:
<pre>(Energy * Efficiency) / Rate == burn time (in seconds)</pre>
Energy is the amount of energy stored in the fuel, in Joules.<br>
Efficiency is the conversion efficiency of the generator burning the fuel. For a [[Thermal Power Station]], this is 0.8 (80%).<br>
Rate is the rate at which the generator is supplying power (in Watts) to the grid.
 
Example: To calculate the burn time of 1 Energetic Graphite in 1 thermal power generator at 100% load:
<pre>Energy * Efficiency / Rate == burn time (in seconds)
(6.3 MJ * 0.8) / 2.16MW  == 2.333 seconds
</pre>
 
The table below has been calculated at 100% load for all fuels/generators. Fuel <em>typically</em> takes longer than this to burn in practice, because it is abnormal to keep a power grid at 100% load at all times.
 
==List of Fuels==
{| class="wikitable sortable" style="text-align:center"
|-
! Fuel !! Stack Size !!Type !! Energy !! Fuel chamber gen. !! Generator !! Generator Burn Time !! Units per minute in generator
|-
| [[File:Icon_Plant_Fuel.png|link=Plant_Fuel]] || 500 || Natural Resource, Chemical || data-sort-value="500" | 500 kJ || -30% || [[File:Icon_Thermal_Power_Station.png|link=Thermal_Power_Station]] || 0.185 s || 324.32
|-
| [[File:Icon_Log.png|link=Log]] || 100 || Natural Resource, Chemical || data-sort-value="1500" | 1.50 MJ || -10% || [[File:Icon_Thermal_Power_Station.png|link=Thermal_Power_Station]] || 0.556 s || 107.91
|-
| [[File:Icon_Organic_Crystal.png|link=Organic_Crystal]] || 100 || Rare Resource, Material, Chemical || data-sort-value="1800" | 1.80 MJ || -20% || [[File:Icon_Thermal_Power_Station.png|link=Thermal_Power_Station]] || 0.667 s || 89.96
|-
| [[File:Icon_Coal.png|link=Coal]] || 100 || Natural Resource, Chemical || data-sort-value="2700" | 2.70 MJ || 0% || [[File:Icon_Thermal_Power_Station.png|link=Thermal_Power_Station]] || 1 s || 60
|-
| [[File:Icon_Energetic_Graphite.png|link=Energetic_Graphite]] || 100 || Material, Chemical || data-sort-value="6300" | 6.75 MJ || +50% || [[File:Icon_Thermal_Power_Station.png|link=Thermal_Power_Station]] || 2.5 s || 24
|-
| [[File:Icon_Crude_Oil.png|link=Crude_Oil]] || 20 || Natural Resource, Chemical || data-sort-value="4000" | 4.05 MJ || +20% || [[File:Icon_Thermal_Power_Station.png|link=Thermal_Power_Station]] || 1.5 s || 40
|-
| [[File:Icon_Refined_Oil.png|link=Refined_Oil]] || 20 || Material, Chemical || data-sort-value="4400" | 4.50 MJ || +30% || [[File:Icon_Thermal_Power_Station.png|link=Thermal_Power_Station]] || 1.67 s || 36
|-
| [[File:Icon_Hydrogen.png|link=Hydrogen]] || 20 || Rare Resource, Material, Chemical || data-sort-value="8000" | 9.00 MJ || +100% || [[File:Icon_Thermal_Power_Station.png|link=Thermal_Power_Station]] || 3.33 s || 18
|-
| [[File:Icon_Deuterium.png|link=Deuterium]] || 20 || Rare Resource, Material, Chemical || data-sort-value="8000" | 9.00 MJ || +100% || [[File:Icon_Thermal_Power_Station.png|link=Thermal_Power_Station]] || 3.33 s || 18
|-
| [[File:Icon_Diamond.png|link=Diamond]] || 100 || Material, Chemical || data-sort-value="900" | 900 kJ || -50% || [[File:Icon_Thermal_Power_Station.png|link=Thermal_Power_Station]] || 0.333 s || 180.18
|-
| [[File:Icon_Graphene.png|link=Graphene]] || 100 || Material, Chemical || data-sort-value="96" | 96.0 kJ || -70% || [[File:Icon_Thermal_Power_Station.png|link=Thermal_Power_Station]] || 0.036 s || 1666.67
|-
| [[File:Icon_Carbon_Nanotube.png|link=Carbon_Nanotube]] || 100 || Material, Chemical || data-sort-value="86" | 84.0 kJ || -80% || [[File:Icon_Thermal_Power_Station.png|link=Thermal_Power_Station]] || 0.031 s || 1935.48
|-
| [[File:Icon_Fire_Ice.png|link=Fire_Ice]] || 50 || Rare Resource, Chemical || data-sort-value="4800" | 4.80 MJ || +40% || [[File:Icon_Thermal_Power_Station.png|link=Thermal_Power_Station]] || 1.778 s || 33.75
|-
| [[File:Icon_Hydrogen_Fuel_Rod.png|link=Hydrogen_Fuel_Rod]] || 30 || End Product, Chemical || data-sort-value="40000" | 54.0 MJ || +200% || [[File:Icon_Thermal_Power_Station.png|link=Thermal_Power_Station]] || 20 s || 3
|-
| [[File:Icon_Deuteron_Fuel_Rod.png|link=Deuteron_Fuel_Rod]] || 20 || End Product, Nuclear Energy || data-sort-value="600000" | 600 MJ || +300% || [[File:Icon_Mini_Fusion_Power_Station.png|link=Mini_Fusion_Power_Station]] || 66.667 s || 0.9
|-
| [[File:Icon_Antimatter_Fuel_Rod.png|link=Antimatter_Fuel_Rod]] || 20 || End Product, Mass Energy || data-sort-value="7500000" | 7.20 GJ || +500% || [[File:Icon_Artificial_Star.png|link=Artificial_Star]] || 100 s || 0.6
|-
| [[File:Icon_Full_Accumulator.png|link=Full_Accumulator]] || 20 || Power storage <ref name="accumulator">Will return an empty [[Accumulator|accumulator]] when used in the [[Energy Exchanger]]. If used to power Icarus, the accumulator will be destroyed.</ref> || data-sort-value="90000" | 90.0 MJ || +100% || [[File:Icon_Energy_Exchanger.png|link=Energy_Exchanger]] || 2 s || 30
|}
 
<references/>
 
==Efficient Power Production==
The following chapters describe by example the best ways to utilize the different basic fuel resources [[Coal]], [[Crude Oil]], and [[Fire Ice]], taking the power consumption of required buildings like smelters, refineries, sorters etc. into account.
 
===Coal vs. Energetic Graphite===
Maybe surprisingly, burning [[Coal]] directly in the [[Thermal Power Station]] is more efficient than crafting and burning [[Energetic Graphite]].
 
==== Energy change from conversion ====
Considering that 1 Energetic Graphite has 6.3MJ of energy for 2 coals used up with 2.7MJ each and that to do so you need a [[Smelter]] running for 2 seconds at 360kW to do so, and the fact that the Power Station has an efficiency of 80%, you can quickly see that to get 1 Energetic Graphite that will produce 5.04MJ of energy, you need to spend 2 Coals and 2 seconds of a Smelter for a total energy loss of 5.04MJ. So without even counting for energy loss from Sorters, you're already not even gaining energy from converting to Graphite. (6.3 MJ * 0.8 - 2 * 2.7MJ * 0.8 - 2s * 360KW = 0J)
 
To make it worse, because Graphite has a higher energy capacity than Coal, you will need 16.67% (6.3 / (2 * 2.7) = 1.166...) more Thermal Power Stations than if you burnt the Coal directly which also mean extra Sorters on top of the 2 needed per Smelter.
 
In the end this means you will loss at least 29kW of power for every Smelter running at full load to convert Coal to Energetic Graphite (accounting for perfect balance with sorters being idle at times, this goes up to 39kW if you assume the sorter is never idle).
 
====Assumptions====
* Four [[Mining Machine|Mining Machines]], each covering 6 Coal Veins.
* No [[Veins Utilization_(Upgrade)|Veins Utilization]] upgrade.
 
====Burning Coal====
* Coal production: 24 Veins * 0.5 Coal/s = 12 Coal/s.
* Power Stations needed to burn 12 Coal/s: 12 * 2.7 MJ * 0.8 / 2.16 MW = 12 Stations.
* Power production: 12 Stations * 2.16 MW = 25.92 MW.
* Power consumption:
# Mining Machines: 4 * 420 kW = 1.68 MW.
# Sorters (1 per Station): 12 * 18 kW = 0.216 MW.
* Net power production: 25.92 MW - 1.68 MW - 0.216 MW = '''24.024 MW'''.
 
====Burning Energetic Graphite====
* Smelting 12 Coal/s needs 12 Smelters, and results in 6 Graphite/s.
* Power Stations needed to burn 6 Graphite/s: 6 * 6.75 MJ * 0.8 / 2.16 MW = 15 Stations.
* Power production: 14 Stations * 2.16 MW = 32.4 MW.
* Power consumption:
# Mining Machines: 4 * 420 kW = 1.68 MW.
# Smelters: 12 * 360 kW = 4.32 MW.
# Sorters (2 per Smelter, 1 per Station): 39 * 18 kW = 0.702 MW.
* Net power production: 32.4 MW - 1.68 MW - 4.32 MW - 0.702 MW = '''25.698 MW'''.
 
====Conclusion====
The increased effort of smelting Energetic Graphite from Coal results in ~1.7 MW more net power production.
* Coal: 24.024 MW
* Energetic Graphite: 25.698 MW.
 
===Crude Oil vs. Refined Oil vs. X-Ray Cracking vs. Hydrogen Fuel Rods===
[[Crude Oil]] can be converted to [[Refined Oil]] and [[Hydrogen]]. Using the [[X-Ray Cracking]] recipe, this can be converted to [[Energetic Graphite]] and Hydrogen. Finally, Hydrogen and [[Titanium Ingot|Titanium Ingots]] can be crafted to [[Hydrogen Fuel Rod|Hydrogen Fuel Rods]].
 
==== Energy change from conversion ====
As for Coal-to-Energetic-Graphite above, we can do a quick math of the energy difference from converting the different stages of fuel to their next possible outcome. Note that for each case, if your system is not perfectly balance to maximize factory usage, each second spent idle is extra energy loss and the results given are only an upper bound of the best you could get but you most likely will get less.
 
* '''Crude Oil to Refined Oil''' and Hydrogen for 1 [[Oil Refinery]] and extra sorters over 4 seconds: (8MJ + 2 * 4.4MJ) * 0.8 - (2 * 4MJ) * 0.8 - (960kW + 4.1 * 18kW) * 4s = +2.9048MJ or +726.2kW.
* '''Refined Oil to Hydrogen and Graphite''' for 1 Oil Refinery and extra sorters over 4 seconds: (8MJ + 6.3MJ) * 0.8 - (4.4MJ) * 0.8 - (960kW + 6.25 * 18 kW) * 4s = +3.63MJ or +907.5kW.
* '''Hydrogen and Titanium Ore to Hydrogen Fuel Rods''' for 1 Smelter and 2 [[Assembling Machines MkI]] and extra sorters over 4 seconds: (50MJ) * 0.8 - (5 * 8MJ) * 0.8 - (2 * 270kW + 360kW + 6.25 * 18kW) * 4s = +3.95MJ or +987.5kW.
 
====Assumptions====
* One Crude Oil Seep producing 1.5 Oil/s.
* No [[Veins Utilization_(Upgrade)|Veins Utilization]] upgrade.
 
====Burning Crude Oil====
* Power Stations needed to burn 1.5 Oil/s: 1.5 * 4 MJ * 0.8 / 2.16 MW = 2 Stations.
* Power production: 2 Stations * 2.16 MW = 4.32 MW.
* Power consumption:
# [[Oil Extractor]]: 1 * 840 kW = 0.84 MW.
# Sorters (1 per Station): 2 * 18 kW = 0.036 MW.
* Net power production: 4.32 MW - 0.84 MW - 0.036 MW = '''3.444 MW'''.
 
====Burning Refined Oil And Hydrogen====
* Refining 1.5 Crude Oil/s needs 3 Oil Refineries, and results in 1.5 Refined Oil/s and 0.75 Hydrogen/s.
* Power Stations needed to burn 1.5 Refined Oil/s: 1.5 * 4.4 MJ * 0.8 / 2.16 MW = 2 Stations.
* Power Stations needed to burn 0.75 Hydrogen/s: 0.75 * 8 MJ * 0.8 / 2.16 MW = 2 Stations.
* Power production: 4 Stations * 2.16 MW = 8.64 MW.
* Power consumption:
# Oil Extractor: 1 * 840 kW = 0.84 MW.
# Oil Refineries: 3 * 960 kW = 2.88 MW.
# Sorters (3 per Refinery, 1 per Station): 13 * 18 kW = 0.234 MW.
* Net power production: 8.64 MW - 0.84 MW - 2.88 MW - 0.234 MW = '''4.686 MW'''.
 
====Burning Energetic Graphite And Hydrogen (X-Ray Cracking)====
* Cracking 1.5 Refined Oil/s needs 6 Oil Refineries, and results in 1.5 Graphite/s and 1.5 extra Hydrogen/s (2.25 Hydrogen/s in total).
* Power Stations needed to burn 1.5 Graphite/s: 1.5 * 6.3 MJ * 0.8 / 2.16 MW = 3 Stations.
* Power Stations needed to burn 2.25 Hydrogen/s: 2.25 * 8 MJ * 0.8 / 2.16 MW = 6 Stations.
* Power production: 9 Stations * 2.16 MW = 19.44 MW.
* Power consumption:
# Oil Extractor: 1 * 840 kW = 0.84 MW.
# Oil Refineries: 9 * 960 kW = 8.64 MW.
# Sorters (3 per Refined Oil, 4 per X-Ray, 1 per Station): 42 * 18 kW = 0.756 MW.
* Net power production: 19.44 MW - 0.84 MW - 8.64 MW - 0.756 MW = '''9.204 MW'''.
 
====Burning Energetic Graphite And Hydrogen Fuel Rods (With X-Ray Cracking)====
* Crafting [[Hydrogen Fuel Rod|Hydrogen Fuel Rods]] from 2.25 Hydrogen/s needs 2 [[Assembling Machine Mk.I|Assemblers]], and results in 0.45 Fuel Rods/s (5 Hydrogen per Fuel Rod).
* Smelting the required 0.45 [[Titanium Ingot|Titanium Ingots]]/s for the Fuel Rods needs 1 Smelter (max. output 0.5 ingots/s). It consumes 0.9 [[Titanium Ore]]/s which ban be mined by 1 Mining Machine covering 2 Titanium Ore Veins.
* Power Stations needed to burn 1.5 Graphite/s: 1.5 * 6.3 MJ * 0.8 / 2.16 MW = 3 Stations.
* Power Stations needed to burn 0.45 Fuel Rods/s: 0.45 * 50 MJ * 0.8 / 2.16 MW = 8 Stations.
* Power production: 11 Stations * 2.16 MW = 23.76 MW.
* Power consumption:
# Oil Extractor: 1 * 840 kW = 0.84 MW.
# Oil Refineries: 9 * 960 kW = 8.64 MW.
# Mining Machines: 1 * 420 kW = 0.42 MW.
# Smelters: 1 * 360 kW = 0.36 MW.
# Assemblers: 2 * 270 kW = 0.54 MW.
# Sorters (3 per Refined Oil, 4 per X-Ray, 2 per Smelter, 3 per Assembler, 1 per Station): 52 * 18 kW = 0.936 MW.
* Net power production: 23.76 MW - 0.84 MW - 8.64 MW - 0.42 MW - 0.36 MW - 0.54 MW - 0.936 MW = '''12.024 MW'''.
 
====Conclusion====
Each step in the production chain increases the net power production.
* Crude Oil: 3.444 MW.
* Refined Oil: 4.686 MW.
* X-Ray Cracking: 9.204 MW.
* Hydrogen Fuel Rods: 12.024 MW.
 
===Fire Ice vs. Hydrogen vs. Hydrogen Fuel Rods===
[[Fire Ice]] could be converted to [[Hydrogen]] or [[Hydrogen Fuel Rod|Hydrogen Fuel Rods]].
 
==== Energy change from conversion ====
 
* '''Fire Ice to Hydrogen and Graphene''' for 1 [[Chemical Plant]] and extra sorters '''without burning the graphene''' over 2 seconds: (8MJ) * 0.8 - (2 * 4.8MJ) * 0.8 - (720kW + 2.42 * 18kW) * 2s = -2.807MJ or -1.404MW.
 
* '''Fire Ice to Hydrogen and Graphene''' for 1 Chemical Plant and extra sorters '''when burning the graphene''' over 2 seconds: (8MJ + 2 * 96kW) * 0.8 - (2 * 4.8MJ) * 0.8 - (720kW + 2.42 * 18kW) * 2s = -2.730MJ or -1.365MW.
* '''Hydrogen and Titanium Ore to Hydrogen Fuel Rods''': check the line above made for the crude oil section.
 
====Assumptions====
* Four [[Mining Machine|Mining Machines]], each covering 6 Fire Ice Veins.
* No [[Veins Utilization_(Upgrade)|Veins Utilization]] upgrade.
 
====Burning Fire Ice====
* Fire Ice production: 24 Veins * 0.5 Fire Ice/s = 12 Fire Ice/s.
* Power Stations needed to burn 12 Fire Ice/s: 12 * 4.8 MJ * 0.8 / 2.16 MW = 21 Stations.
* Power production: 21 Stations * 2.16 MW = 45.36 MW.
* Power consumption:
# Mining Machines: 4 * 420 kW = 1.68 MW.
# Sorters (1 per Station): 21 * 18 kW = 0.378 MW.
* Net power production: 45.36 MW - 1.68 MW - 0.378 MW = '''43.302 MW'''.
 
====Burning Hydrogen====
2 Fire Ice (9.6 MJ) can be converted to 1 [[Hydrogen]] (8 MJ) and 2 [[Graphene]] (0.192 MJ) which is already a loss of energy without taking any buildings into account.
 
====Burning Hydrogen Fuel Rods====
* Crafting Hydrogen from 12 Fire Ice/s needs 12 [[Chemical Plant|Chemical Plants]], and results in 6 Hydrogen/s and 12 Graphene/s.
* Crafting Hydrogen Fuel Rods from 6 Hydrogen/s results in 1.2 Fuel Rods/s and 12 Graphene/s.
* Power Stations needed to burn 1.2 Fuel Rods/s: 1.2 * 50 MJ * 0.8 / 2.16 MW = 22 Stations (one more than needed for burning Fire Ice).
* The produced Graphene cannot satisfy a single Power Station: 12 * 0.096 MJ * 0.8 / 2.16 MW = (exactly) 0.43 Stations.
* The 1.43 extra Power Stations produce 3.08 MW more power, compared to burning Fire Ice directly.
* The 12 Chemical Plants needed to produce Hydrogen already consume 12 * 720 kW = 8.64 MW.
 
====Conclusion====
Burning Fire Ice directly in the Thermal Power Station is more efficient than converting it to Hydrogen or Hydrogen Fuel Rods. So unless you need extra graphene from Fire Ice, this is highly discouraged.
 
== Production overview ==
{| class="wikitable"
|+
!Source
!Explanation
!Build cost
!Upkeep cost
|-
|[[File:Icon_Coal.png|link=Coal]]
|Mining Coal on deceint sized Coal Vein may give you around 18 coal/second, requiring 18 Power Stations to burn and producing 36MW net power.
 
Since low power in grid will slow down the miners, it may be better to use seperate power network for miners
|3000 ores / 100 MW
|Uses 50 Coal from Coal Vein per 100MW
 
Each 500k Coal Vein will last for 8 hours at 18 coal/s
|-
|[[File:Icon_Solar_Panel.png|link=Solar Panel]]
|
Solar is decent early/mid-game power source, easily scaleable to ~500MW on a planet.
 
Most obvious layouts are building circles on both poles or 4-wide stip en equator.
 
By standing on the pole and with using god-build-mode(Settings/Gameplay) you may place Solar Panels at 5/second (~3sec per 15-long row).
 
To build Solar Panels on poles without overlaying errors while building a long row, place first panel 2 tiles from pole.
|
Producing Silicon from Stone: 55000 ores / 100MW
 
A big 600k Stone vein will give you a full 1 GW, which is more then enough for a single planet
 
Producing from Silicon: 7500 ores / 100MW
|Free
|-
|[[File:Icon_Deuteron_Fuel_Rod.png|link=Deuteron_Fuel_Rod]]
|A way to send fuel to other stars.
|
Production, Oil Hydrogen/Fractionator: 1500 ores / 100MW
 
Production, Gas Giant Hydrogen, Particle Collider: 12000 ores / 100MW
 
Production, Gas Giant Deuterium : 80000 ores / 100MW (10 Orbital collectors)
 
Consumption (MF Power Plants): 7000 ores / 100MW
|
Production, Oil Hydrogen/Fractionator: 1.5 oil, 6 ores, 20MJ / 100MW
 
Production, Gas Giant Hydrogen, Particle Collider: 6 ores, 27MJ / 100MJ
 
Production, Gas Giant Deuterium : 6 ores, 9MJ / 100MW
|-
|[[File:Icon_Solar_Sail.png|link=Solar_Sail]]
|Dyson Swarm
 
One Sail costs 4.5 ores, 1 oil, 12MJ
 
With no research one Sail gives total of 52MJ (32kw*5400s*(100%-70%)) Dyson Swarm power.
 
With only Yellow Cube researches, each Sail produces a total of 127MJ (32kw*(5400s+3*900s)*(100%-70%*0.9^3))
|
| ~ one Sail / 100MJ
|-
|[[File:Icon_Small_Carrier_Rocket.png|link=Small_Carrier_Rocket]]
|
|Shell structure, using rare ores: 350000 ores and 5000MJ per additional 100MW (on 1L sun)
 
Shell panel, using rare ores: 8500 ores and 170MW per additional 100MW (in 1L sun)
|-
|[[File:Icon_Full_Accumulator.png|link=Full_Accumulator]]
|
|18400 ores and 24400MJ per 100MW transfered
|Used only for energy transfer, so 100MJ / 100MJ
|-
|[[File:Icon_Antimatter_Fuel_Rod.png|link=Antimatter_Fuel_Rod]]
|
|
|0.6 ores and 2MW / 100MW
|-
|}

Revision as of 21:33, 26 January 2021

Crystal Smelting
Tech Crystal Smelting.png
Unlocks:
Diamond
Diamond_Adv_Recipe
Crystal_Silicon
Research Consumption
Icon Electromagnetic Matrix.png
500
Icon Energy Matrix.png
500
Data Volume
90.0k Hashes

With a better understanding of lattice structure and

improved refining technology, we can now use a more

advanced method to smelt high-strength crystals.

Summary

Prerequisite Technologies

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