Difference between revisions of "Fuel tank"
(*first update to incorporate all fuel types;) |
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− | + | A '''fuel tank''' is a dedicated part to contain [[fuel]]s and provide it to the appropriate [[reaction engine]]s or consumers. In the stock game there are tanks for four different fuel mixtures: | |
− | A '''fuel tank''' is a dedicated part to contain | + | * [[Liquid fuel]] and [[oxidizer]] in the usual ratio of 9 parts liquid fuel to 11 parts oxidizer. Used by Liquid Fuel Engines |
− | * [[Liquid fuel]] and [[oxidizer]] in the usual ratio of 9 parts liquid fuel | + | * [[Liquid fuel]] alone, for use by jet engines in oxygenated atmospheres, or by the "Nerv" Atomic Rocket Motor |
− | * [[Liquid fuel]] alone | + | * [[Monopropellant]] (without any oxidizer) usually used for [[RCS]] |
* [[Xenon gas]] for [[ion engine]]s | * [[Xenon gas]] for [[ion engine]]s | ||
− | * [[ | + | * [[Ore]]; while not a fuel mixture, it can be processed into [[liquid fuel]], [[liquid fuel]] and [[oxidizer]], or [[monopropellant]] with a [[converter]] |
The distribution through the rocket depends on the type of fuel. While xenon gas and monopropellant are available everywhere in the craft without additional plumbing, engines using liquid fuel and oxidizer needs to be attached to the tank with only fuel crossing parts between them. | The distribution through the rocket depends on the type of fuel. While xenon gas and monopropellant are available everywhere in the craft without additional plumbing, engines using liquid fuel and oxidizer needs to be attached to the tank with only fuel crossing parts between them. | ||
Line 10: | Line 10: | ||
== Overview == | == Overview == | ||
− | A liquid fuel tank can provide fuel to any engine | + | A liquid fuel tank can provide fuel to any engine with a valid fuel delivery path; in most rockets, a fuel tank will provide fuel to any engine in its stage. |
+ | |||
+ | Monopropellant tanks and xenon tanks will provide fuel to any engine attached to the rocket, regardless of fuel delivery path. | ||
=== Real world application === | === Real world application === | ||
− | In [[w:Spacecraft|real spacecraft]], the liquid fuel is usually [[w:RP-1|highly refined kerosene]] for the first stage and/or [[w:Liquid | + | In [[w:Spacecraft|real spacecraft]], the liquid fuel is usually [[w:RP-1|highly refined kerosene]] for the first stage and/or [[w:Liquid hydrogen|liquid hydrogen (LH2)]] for subsequent stages, and the oxidizer is usually [[w:Liquid Oxygen|liquid oxygen (LOX)]]. Both the fuel and oxidizer are stored under slight pressure in [[w:Cryogenic fuel|special fuel tanks]] to keep them from vaporizing; this is because LH2 and LOX require temperatures below 20.28 K (−252.87 °C, −423.17 °F) and 90.19 K (−182.96 °C, −297.33 °F) respectively to remain in a liquid state. In comparison, jet aircraft carry only liquid fuel, as [[w:Jet engine|jet engines]] can rely solely on [[w:Atmosphere of Earth#Composition|atmospheric oxygen]] as oxidizer. Most jet engines operate using a [[w:Jet fuel|refined kerosene hydro-carbon]], similar to diesel, which can actually be used in some diesel engines. However, it is not recommended, or legal in some places, to use jet fuel as a replacement for diesel due to its high lead content and lesser lubricating ability. |
+ | Ore is a simplification for some kind of chemical which could be mined from the ground on other planets, and converted to a rocket fuel. | ||
+ | |||
+ | == Advanced usage == | ||
+ | |||
+ | === Asparagus staging === | ||
+ | {{Main|Tutorial: Asparagus Staging}} | ||
+ | It is possible to mount additional fuel tanks radially with or without [[decoupler]]s, and to transfer their contents to a central tank using [[fuel line]]s. This can be used to construct an [[Tutorial:Asparagus Staging|asparagus staging]] system where outer tanks are drained first and dropped once empty, while still keeping the central tank full. This can be tricky to construct when dealing with very large rockets as the rocket engines of the outer layers have to be kept running long enough to ensure the rest of the rocket can get into orbit once they have stopped providing thrust. | ||
+ | |||
+ | === Flow priority === | ||
+ | If [[Advanced Tweakables]] are enabled, then fuel tanks will have a "Flow Priority" option. If an engine can draw fuel from multiple fuel tanks, then tanks with a higher flow priority will be emptied first, followed by tanks with a lower flow priority. | ||
+ | |||
+ | For example, if three rocket fuel tanks with flow priority 30, 0, and -10 are all attached to one [[LV-909 "Terrier" Liquid Fuel Engine]], then the Terrier engine will use fuel from the tank with flow priority 30. Once this tank is depleted, then it will draw fuel from the tank with priority 0, followed by the tank with priority -10. | ||
+ | |||
+ | Adjusting flow priority can allow players to control how a rocket's mass distribution changes as it uses fuel. In addition, it can allow for rockets to use methods such as [[Tutorial:Asparagus Staging|asparagus staging]] without the use of fuel lines. | ||
== List of tanks == | == List of tanks == | ||
− | === | + | === Rocket fuel tanks === |
− | These tanks contain both liquid fuel and oxidizer and are designed for use with | + | These tanks contain both liquid fuel and oxidizer and are designed for use with [[liquid fuel engine]]s. They can also be used for jet engines, however [[#Liquid fuel tanks|liquid fuel tanks]] are preferable because they don't contain oxidizer, which is not used by jet engines. |
− | Their mass fully fuelled with liquid fuel and oxidizer is between | + | Their mass fully fuelled with liquid fuel and oxidizer is between 8 and 9 times higher than the dry mass. The lower ratio of 8 applies to all fuel-containing Mk2 and Mk3 fuselages and adapters, along with the C7 brand adapters (2.5 m to 1.25 m). All other tanks have the higher ratio of 9. The combined fuel and oxidizer mass compared to the dry mass is this ratio reduced by one. Thus the mass of the contents in a Mk3 tank is 7 times greater than the dry mass. |
− | {{Stats | + | {{Stats table rocket fuel tanks}} |
=== Liquid fuel tanks === | === Liquid fuel tanks === | ||
− | + | Liquid fuel tanks can only be used with [[jet engine]]s and the [[LV-N "Nerv" Atomic Rocket Motor]], as they don't contain the oxidizer required to operate rocket engines. | |
+ | |||
+ | {{Stats table liquid fuel tanks}} | ||
+ | |||
+ | === Monopropellant fuel tanks === | ||
+ | {{Main|Monopropellant}} | ||
+ | Monopropellant tanks store [[monopropellant]], which is consumed by [[RCS]] maneuvering thrusters. | ||
− | {{Stats Table | + | In real life, the term "monopropellant" is used to refer to fuels that do not require additional reactants to effect energy: although liquid fuel requires oxidizer to burn to produce thrust, monopropellants require no additional chemicals to work. A well-known real life monopropellant is [https://en.wikipedia.org/wiki/Hydrazine#Rocket_fuel hydrazine]. |
+ | {{Stats Table RCS Fuel}} | ||
+ | |||
+ | === Xenon gas tanks === | ||
+ | {{Main|Xenon gas}} | ||
+ | Xenon gas tanks store [[xenon gas]], which can be used by the [[IX-6315 "Dawn" Electric Propulsion System]]. | ||
+ | |||
+ | {{Stats Table Xenon Tanks}} | ||
+ | |||
+ | === Ore tanks === | ||
+ | {{Main|Ore}} | ||
+ | Ore tanks can be used to hold [[ore]] mined by the [['Drill-O-Matic' Mining Excavator]] or the [['Drill-O-Matic Junior' Mining Excavator]], to be processed in a [[converter]]. By default, any ore tanks on a craft will start empty. | ||
+ | |||
+ | {{Stats table ore tanks}} | ||
== Dry mass and wet mass == | == Dry mass and wet mass == | ||
− | The fuel/dry/ | + | In the part configuration the dry mass is given and the resources are given in a volumetric unit. To calculate the mass of the fuel and the mass fully fueled, wet mass, the density is also required. In general the mass of one type of fuel is: |
+ | {{Formula|math=m_\text{fuel} = V_\text{fuel} \cdot \rho_\text{fuel}|where=*<math>m_\text{fuel}</math> is the mass of the fuel | ||
+ | * <math>V_\text{fuel}</math> is the volume of the fuel | ||
+ | * <math>\rho_\text{fuel}</math> is the density of the fuel}} | ||
+ | The total mass of the fuel is then simply the sum of all the fuels in the tank. And the wet mass is then the fuel masses added the dry mass. | ||
+ | {{Formula|math=\begin{align} | ||
+ | m_\text{fuel} &= \sum\limits_i (V_i \cdot \rho_i) \\ | ||
+ | m_\text{wet} &= m_\text{dry} + m_\text{fuel} = m_\text{dry} + \sum\limits_i (V_i \cdot \rho_i) | ||
+ | \end{align}|where=*<math>m_\text{fuel}</math> is the fuel mass | ||
+ | * <math>m_\text{wet}</math> and <math>m_\text{dry}</math> are the wet and dry mass | ||
+ | * <math>V_i</math> and <math>\rho_i</math> are the volume and density of each fuel}} | ||
+ | Because all stock tanks, except the liquid fuel and oxidizer tanks, use only one type of fuel the sum of the different fuels in the tank is not required. And because the liquid fuel and oxidizer have the same density, the volumes can be added before converted into mass. | ||
+ | {{Formula|math=\begin{align} | ||
+ | m_\text{fuel lf/ox} &= (V_\text{lf} + V_\text{ox}) \cdot \rho_\text{lf/ox} = (V_\text{lf} + V_\text{ox}) \cdot 0.005 \frac{\text{t} }{\text{unit} } \\ | ||
+ | m_\text{wet lf/ox} &= m_\text{dry} + m_\text{fuel lf/ox} = m_\text{dry} + (V_\text{lf} + V_\text{ox}) \cdot 0.005 \frac{\text{t} }{\text{unit} } | ||
+ | \end{align}|where=*<math>m_\text{fuel lf/ox}</math> is the fuel mass of the liquid fuel/oxidizer mixture | ||
+ | * <math>m_\text{wet lf/ox}</math> is the wet mass of a tank with liquid fuel/oxidizer mixture | ||
+ | * <math>m_\text{dry}</math> is the dry mass | ||
+ | * <math>V_\text{lf}</math> and <math>V_\text{ox}</math> are the volume of liquid fuel and oxidizer | ||
+ | * <math>\rho_\text{lf/ox}</math> is the density of liquid fuel and oxidizer (they are the same)}} | ||
+ | |||
+ | == Volume and density == | ||
+ | Note: in Kerbal Space Program all fuels have different densities in different tanks, which can be attributed to balancing and the need for nice-looking fuel capacity numbers. | ||
+ | |||
+ | === Volume examples === | ||
+ | The volume of a cylindrical fuel tank can be calculated from this formula: | ||
+ | {{Formula|math=V_l = h \cdot \pi \cdot r^2 \cdot 1000|where= | ||
+ | *<math>V_l</math> is the volume in litres | ||
+ | *<math>h</math> is the height in meters | ||
+ | *<math>r</math> is the radius in meters | ||
+ | }} | ||
+ | The '''[[Rockomax X200-16 Fuel Tank]]''' has a height of 1.84 meters tall with a radius of 1.25 meters according to its config file. This translates to a total cylindrical volume (not accounting for the casing and empty space) of '''9032.1 litres''' (9.0321 m³). | ||
+ | The '''[[FL-T200 Fuel Tank]]''', being 1.1105 meters tall and having a radius of 0.625 meters, has a cylindrical volume of '''1362.8 litres''' (1.3628 m³), | ||
− | + | Dividing the in-game fuel capacity by the volume results in 177.15 units/m³ for the Rockomax X200-16 and 146.78 units/m³ for the FL-T200. | |
− | + | === Estimating actual density === | |
+ | As for fuel density, we should assume a volumetric usage efficiency. The reason the entire volume is not used is because the actual fuel tank is a pressure vessel with rounded ends inside a cylindrical stage with thick walls. The tanks themselves can also be insulated to keep the cryogenic fuels from boiling away too quickly. | ||
− | + | A real life example is 80% volumetric usage in [[w:Saturn V|Saturn V's]] stages. | |
+ | We use this formula: | ||
+ | {{Formula|math=\rho_\text{est} = U_\text{vol} \cdot \frac{V_l}{C}|where= | ||
+ | *<math>\rho_\text{est}</math> is the estimated fuel density in litres per unit | ||
+ | *<math>U_\text{vol}</math> is the volumetric usage (80% in our case) | ||
+ | *<math>V_l</math> is the fuel tank volume in litres | ||
+ | *<math>C</math> is the total in-game fuel capacity in units | ||
+ | }} | ||
+ | For the Rockomax X200-16 this is '''4.516 litres/unit''', while for the FL-T200 it is '''5.451 litres/unit'''. While this is similar with other fuel tanks, a notable exception is the 'Doughnut' toroidal tank having ''less-dense'' fuel: '''3.75 l/u''' at 100% volumetric usage or '''3.41 l/u''' at 80%. | ||
== Comparison == | == Comparison == | ||
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|} | |} | ||
− | == | + | == Trivia == |
− | * Before v0.18 | + | * Before [[v0.18]], both rocket engines and jet engines only used liquid fuel; this meant that all fuel tanks could provide fuel for both types of engines. Since v0.18, rocket engines use oxidizer, so liquid fuel tanks lacking the necessary oxidizer cannot be used to power rocket engines anymore. |
− | |||
− | |||
− | |||
− | |||
== See also == | == See also == | ||
Line 81: | Line 153: | ||
* [[Liquid fuel]] | * [[Liquid fuel]] | ||
* [[Oxidizer]] | * [[Oxidizer]] | ||
+ | * [[ore]] | ||
+ | * [[Converter]] | ||
+ | * {{Wikipedia|In-situ resource utilization}} | ||
* {{Wikipedia|Liquid hydrogen}} | * {{Wikipedia|Liquid hydrogen}} | ||
* {{Wikipedia|Liquid oxygen}} | * {{Wikipedia|Liquid oxygen}} | ||
* {{Wikipedia|RP-1}} | * {{Wikipedia|RP-1}} | ||
+ | |||
+ | {{Parts}} |
Latest revision as of 09:12, 17 March 2023
A fuel tank is a dedicated part to contain fuels and provide it to the appropriate reaction engines or consumers. In the stock game there are tanks for four different fuel mixtures:
- Liquid fuel and oxidizer in the usual ratio of 9 parts liquid fuel to 11 parts oxidizer. Used by Liquid Fuel Engines
- Liquid fuel alone, for use by jet engines in oxygenated atmospheres, or by the "Nerv" Atomic Rocket Motor
- Monopropellant (without any oxidizer) usually used for RCS
- Xenon gas for ion engines
- Ore; while not a fuel mixture, it can be processed into liquid fuel, liquid fuel and oxidizer, or monopropellant with a converter
The distribution through the rocket depends on the type of fuel. While xenon gas and monopropellant are available everywhere in the craft without additional plumbing, engines using liquid fuel and oxidizer needs to be attached to the tank with only fuel crossing parts between them.
Contents
Overview
A liquid fuel tank can provide fuel to any engine with a valid fuel delivery path; in most rockets, a fuel tank will provide fuel to any engine in its stage.
Monopropellant tanks and xenon tanks will provide fuel to any engine attached to the rocket, regardless of fuel delivery path.
Real world application
In real spacecraft, the liquid fuel is usually highly refined kerosene for the first stage and/or liquid hydrogen (LH2) for subsequent stages, and the oxidizer is usually liquid oxygen (LOX). Both the fuel and oxidizer are stored under slight pressure in special fuel tanks to keep them from vaporizing; this is because LH2 and LOX require temperatures below 20.28 K (−252.87 °C, −423.17 °F) and 90.19 K (−182.96 °C, −297.33 °F) respectively to remain in a liquid state. In comparison, jet aircraft carry only liquid fuel, as jet engines can rely solely on atmospheric oxygen as oxidizer. Most jet engines operate using a refined kerosene hydro-carbon, similar to diesel, which can actually be used in some diesel engines. However, it is not recommended, or legal in some places, to use jet fuel as a replacement for diesel due to its high lead content and lesser lubricating ability. Ore is a simplification for some kind of chemical which could be mined from the ground on other planets, and converted to a rocket fuel.
Advanced usage
Asparagus staging
- → Main article: Tutorial: Asparagus Staging
It is possible to mount additional fuel tanks radially with or without decouplers, and to transfer their contents to a central tank using fuel lines. This can be used to construct an asparagus staging system where outer tanks are drained first and dropped once empty, while still keeping the central tank full. This can be tricky to construct when dealing with very large rockets as the rocket engines of the outer layers have to be kept running long enough to ensure the rest of the rocket can get into orbit once they have stopped providing thrust.
Flow priority
If Advanced Tweakables are enabled, then fuel tanks will have a "Flow Priority" option. If an engine can draw fuel from multiple fuel tanks, then tanks with a higher flow priority will be emptied first, followed by tanks with a lower flow priority.
For example, if three rocket fuel tanks with flow priority 30, 0, and -10 are all attached to one LV-909 "Terrier" Liquid Fuel Engine, then the Terrier engine will use fuel from the tank with flow priority 30. Once this tank is depleted, then it will draw fuel from the tank with priority 0, followed by the tank with priority -10.
Adjusting flow priority can allow players to control how a rocket's mass distribution changes as it uses fuel. In addition, it can allow for rockets to use methods such as asparagus staging without the use of fuel lines.
List of tanks
Rocket fuel tanks
These tanks contain both liquid fuel and oxidizer and are designed for use with liquid fuel engines. They can also be used for jet engines, however liquid fuel tanks are preferable because they don't contain oxidizer, which is not used by jet engines.
Their mass fully fuelled with liquid fuel and oxidizer is between 8 and 9 times higher than the dry mass. The lower ratio of 8 applies to all fuel-containing Mk2 and Mk3 fuselages and adapters, along with the C7 brand adapters (2.5 m to 1.25 m). All other tanks have the higher ratio of 9. The combined fuel and oxidizer mass compared to the dry mass is this ratio reduced by one. Thus the mass of the contents in a Mk3 tank is 7 times greater than the dry mass.
Liquid fuel and oxidizer density are both 5 kg/unit | Mass (t) |
Liquid Fuel () |
Oxidizer () | |||||||
---|---|---|---|---|---|---|---|---|---|---|
Image | Part | Radial size | Cost () |
Full | Empty | Max. Temp. (K) |
Tolerance (m/s) |
Tolerance (g) | ||
R-4 'Dumpling' External Tank | X | 50 (39.90) |
0.1238 | 0.0138 | 2 000 | 5 | 50 | 9.9 | 12.1 | |
R-11 'Baguette' External Tank | X | 50 (25.21) |
0.3038 | 0.0338 | 2 000 | 5 | 50 | 24.3 | 29.7 | |
R-12 'Doughnut' External Tank | Small | 147 (119.46) |
0.3375 | 0.0375 | 2 000 | 6 | 50 | 27 | 33 | |
Oscar-B Fuel Tank | Tiny | 70 (51.64) |
0.225 | 0.025 | 2 000 | 6 | 50 | 18 | 22 | |
FL-T100 Fuel Tank | Small | 150 (104.1) |
0.5625 | 0.0625 | 2 000 | 6 | 50 | 45 | 55 | |
FL-T200 Fuel Tank | Small | 275 (183.2) |
1.125 | 0.125 | 2 000 | 6 | 50 | 90 | 110 | |
FL-T400 Fuel Tank | Small | 500 (316.4) |
2.25 | 0.25 | 2 000 | 6 | 50 | 180 | 220 | |
FL-T800 Fuel Tank | Small | 800 (432.8) |
4.5 | 0.5 | 2 000 | 6 | 50 | 360 | 440 | |
Rockomax X200-8 Fuel Tank | Large | 800 (432.8) |
4.5 | 0.5 | 2 000 | 6 | 50 | 360 | 440 | |
Rockomax X200-16 Fuel Tank | Large | 1 550 (815.6) |
9 | 1 | 2 000 | 6 | 50 | 720 | 880 | |
Rockomax X200-32 Fuel Tank | Large | 3 000 (1 531.2) |
18 | 2 | 2 000 | 6 | 50 | 1 440 | 1 760 | |
Rockomax Jumbo-64 Fuel Tank | Large | 5 750 (2 812.4) |
36 | 4 | 2 000 | 6 | 50 | 2 880 | 3 520 | |
Kerbodyne S3-3600 Tank | Extra large | 3 250 (1 597.6) |
20.25 | 2.25 | 2 000 | 6 | 50 | 1 620 | 1 980 | |
Kerbodyne S3-7200 Tank | Extra large | 6 500 (3 195.2) |
40.5 | 4.5 | 2 000 | 6 | 50 | 3 240 | 3 960 | |
Kerbodyne S3-14400 Tank | Extra large | 13 000 (6 390.4) |
81 | 9 | 2 000 | 6 | 50 | 6 480 | 7 920 | |
Mk2 Rocket Fuel Fuselage Short | Mk2 | 750 (566.4) |
2.29 | 0.29 | 2 500 | 50 | 50 | 180 | 220 | |
Mk2 Rocket Fuel Fuselage | Mk2 | 1 450 (1 082.8) |
4.57 | 0.57 | 2 500 | 50 | 50 | 360 | 440 | |
Mk3 Rocket Fuel Fuselage Short | Mk3 | 2 500 (1 352.5) |
14.29 | 1.79 | 2 700 | 50 | 50 | 1 125 | 1 375 | |
Mk3 Rocket Fuel Fuselage | Mk3 | 5 000 (2 705) |
28.57 | 3.57 | 2 700 | 50 | 50 | 2 250 | 2 750 | |
Mk3 Rocket Fuel Fuselage Long | Mk3 | 10 000 (5 410) |
57.14 | 7.14 | 2 700 | 50 | 50 | 4 500 | 5 500 | |
C7 Brand Adapter - 2.5m to 1.25m | Small, Large | 800 (433.0) |
4.57 | 0.57 | 2 300 | 20 | 50 | 360 | 440 | |
C7 Brand Adapter Slanted - 2.5m to 1.25m | Small, Large | 800 (433.0) |
4.57 | 0.57 | 2 300 | 20 | 50 | 360 | 440 | |
Mk2 to 1.25m Adapter | Small, Mk2 | 550 (366.4) |
2.29 | 0.29 | 2 500 | 50 | 50 | 180 | 220 | |
Mk2 to 1.25m Adapter Long | Small, Mk2 | 1 050 (682.8) |
4.57 | 0.57 | 2 500 | 50 | 50 | 360 | 440 | |
Mk2 Bicoupler | Small, Mk2 x 2 | 860 (676.4) |
2.29 | 0.29 | 2 500 | 50 | 50 | 180 | 220 | |
2.5m to Mk2 Adapter | Large, Mk2 | 800 (432.8) |
4.57 | 0.57 | 2 500 | 50 | 50 | 360 | 440 | |
Mk3 to Mk2 Adapter | Mk2, Mk3 | 2 200 (1 282.0) |
11.43 | 1.43 | 2 600 | 50 | 50 | 900 | 1 100 | |
Mk3 to 2.5m Adapter | Large, Mk3 | 2 500 (1 353.0) |
14.29 | 1.79 | 2 600 | 50 | 50 | 1 125 | 1 375 | |
Mk3 to 2.5m Adapter Slanted | Large, Mk3 | 2 500 (1 353.0) |
14.29 | 1.79 | 2 600 | 50 | 50 | 1 125 | 1 375 | |
Mk3 to 3.75m Adapter | Extra large, Mk3 | 2 500 (1 353.0) |
14.29 | 1.79 | 2 600 | 50 | 50 | 1 125 | 1 375 | |
Kerbodyne ADTP-2-3 | Large, Extra large | 1 623 (246.0) |
16.88 | 1.88 | 2 000 | 6 | 50 | 1 350 | 1 650 |
Liquid fuel tanks
Liquid fuel tanks can only be used with jet engines and the LV-N "Nerv" Atomic Rocket Motor, as they don't contain the oxidizer required to operate rocket engines.
Liquid Fuel Density is 5 kg/unit | Mass (t) |
Liquid Fuel () | |||||||
---|---|---|---|---|---|---|---|---|---|
Image | Part | Radial size | Cost () |
Full | Empty | Max. Temp. (K) |
Tolerance (m/s) |
Tolerance (g) | |
Engine Nacelle[Note 1] | Small | 600 (480) |
0.925 | 0.15 | 2 000 | 10 | 50 | 150 | |
Engine Pre-cooler[Note 1] | Small | 1 650 (1 618) |
0.375 | 0.15 | 2 000 | 10 | 50 | 40 | |
Mk1 Diverterless Supersonic Intake[Note 1] | Small | 720 (560) |
1.18 | 0.17 | 2 000 | 10 | 50 | 200 | |
Mk0 Liquid Fuel Fuselage | Tiny | 200 (160) |
0.275 | 0.025 | 2 000 | 10 | 50 | 50 | |
Mk1 Liquid Fuel Fuselage | Small | 550 (230) |
2.25 | 0.25 | 2 000 | 10 | 50 | 400 | |
Mk2 Liquid Fuel Fuselage Short | Mk2 | 750 (430) |
2.29 | 0.29 | 2 500 | 50 | 50 | 400 | |
Mk2 Liquid Fuel Fuselage | Mk2 | 1 450 (810) |
4.57 | 0.57 | 2 500 | 50 | 50 | 800 | |
Mk3 Liquid Fuel Fuselage Short | Mk3 | 4 300 (2 300) |
14.29 | 1.79 | 2 700 | 50 | 50 | 2 500 | |
Mk3 Liquid Fuel Fuselage | Mk3 | 8 600 (4 600) |
28.57 | 3.57 | 2 700 | 50 | 50 | 5 000 | |
Mk3 Liquid Fuel Fuselage Long | Mk3 | 17 200 (9 200) |
57.14 | 7.14 | 2 700 | 50 | 50 | 10 000 | |
NCS Adapter | Small, Tiny | 320 (256) |
0.5 | 0.1 | 2 400 | 10 | 50 | 80 | |
FAT-455 Aeroplane Main Wing[Note 2] | X | 2 800 (2 320) |
3.78 | 0.78 | 1 200 | 15 | 50 | 600 | |
Big-S Wing Strake[Note 2] | X | 1 000 (920) |
0.6 | 0.1 | 2 400 | 15 | 50 | 100 | |
Big-S Delta Wing[Note 2] | X | 3 000 (2 760) |
2.0 | 0.5 | 2 400 | 15 | 50 | 300 |
- ↑ 1.0 1.1 1.2 The Engine Nacelle, Engine Pre-cooler, and Mk1 Diverterless Supersonic Intake are a combination of air intake and liquid fuel tank. Only the tank properties are shown. They are located in the "Aerodynamic" category in the game.
- ↑ 2.0 2.1 2.2 The FAT-455 Aeroplane Main Wing, Big-S Wing Strake, and Big-S Delta Wing are a combination of lifting surface and liquid fuel tank. Only the tank properties are shown. They are located in the "Aerodynamic" category in the game.
Monopropellant fuel tanks
- → Main article: Monopropellant
Monopropellant tanks store monopropellant, which is consumed by RCS maneuvering thrusters.
In real life, the term "monopropellant" is used to refer to fuels that do not require additional reactants to effect energy: although liquid fuel requires oxidizer to burn to produce thrust, monopropellants require no additional chemicals to work. A well-known real life monopropellant is hydrazine.
RCS Fuel Density is 4 kg/unit | Mass (t) |
Monopropellant () | |||||||
---|---|---|---|---|---|---|---|---|---|
Image | Part | Radial size | Cost () |
Full | Empty | Max. Temp. (K) |
Tolerance (m/s) |
Tolerance (g) | |
FL-R20 RCS Fuel Tank | Tiny | 200 (176) |
0.10 | 0.02 | 2 000 | 12 | 50 | 20 | |
FL-R120 RCS Fuel Tank | Small | 330 (186) |
0.56 | 0.08 | 2 000 | 12 | 50 | 120 | |
FL-R750 RCS Fuel Tank | Large | 1 800 (900) |
3.4 | 0.4 | 2 000 | 12 | 50 | 750 | |
Mk2 Monopropellant Tank | Mk2 | 750 (270) |
1.89 | 0.29 | 2 500 | 50 | 50 | 400 | |
Mk3 Monopropellant Tank | Mk3 | 5 040 (2 520) |
9.8 | 1.4 | 2 700 | 50 | 50 | 2 100 | |
Stratus-V Roundified Monopropellant Tank | X | 200 (176) |
0.10 | 0.02 | 2 000 | 12 | 50 | 20 | |
Stratus-V Cylindrified Monopropellant Tank | X | 250 (190) |
0.23 | 0.03 | 2 000 | 12 | 50 | 50 |
Xenon gas tanks
- → Main article: Xenon gas
Xenon gas tanks store xenon gas, which can be used by the IX-6315 "Dawn" Electric Propulsion System.
Xenon density is 0.1 kg/unit | Mass (t) |
Xenon () | |||||||
---|---|---|---|---|---|---|---|---|---|
Image | Part | Radial size | Cost () |
Full | Empty | Max. Temp. (K) |
Tolerance (m/s) |
Tolerance (g) | |
PB-X50R Xenon Container | Radial mounted | 2 220 (600) |
0.054 | 0.014 | 2 000 | 12 | 50 | 405 | |
PB-X150 Xenon Container | Tiny | 3 680 (800) |
0.100 | 0.024 | 2 000 | 6 | 50 | 720 | |
PB-X750 Xenon Container | Small | 24 300 (1 500) |
0.76 | 0.19 | 2 000 | 6 | 50 | 5 700 |
Ore tanks
- → Main article: Ore
Ore tanks can be used to hold ore mined by the 'Drill-O-Matic' Mining Excavator or the 'Drill-O-Matic Junior' Mining Excavator, to be processed in a converter. By default, any ore tanks on a craft will start empty.
Ore density is 10 kg/unit | Mass (t) |
Ore () | |||||||
---|---|---|---|---|---|---|---|---|---|
Image | Part | Radial size | Cost () |
Full | Empty | Max. Temp. (K) |
Tolerance (m/s) |
Tolerance (g) | |
Radial Holding Tank | Radial mounted | 299 (300)[Note 1] |
0.875 | 0.125 | 2 000 | 7 | 50 | 75 | |
Small Holding Tank | Small | 994 (1000)[Note 1] |
3.5 | 0.5 | 2 000 | 7 | 50 | 300 | |
Large Holding Tank | Large | 2 970 (3 000)[Note 1] |
17.0 | 2.0 | 2 000 | 7 | 50 | 1 500 |
- ↑ 1.0 1.1 1.2 Unlike the fuel tanks, these tanks are empty by default, and can be manually filled during vehicle assembly.
Dry mass and wet mass
In the part configuration the dry mass is given and the resources are given in a volumetric unit. To calculate the mass of the fuel and the mass fully fueled, wet mass, the density is also required. In general the mass of one type of fuel is:
- is the mass of the fuel
- is the volume of the fuel
- is the density of the fuel
The total mass of the fuel is then simply the sum of all the fuels in the tank. And the wet mass is then the fuel masses added the dry mass.
- is the fuel mass
- and are the wet and dry mass
- and are the volume and density of each fuel
Because all stock tanks, except the liquid fuel and oxidizer tanks, use only one type of fuel the sum of the different fuels in the tank is not required. And because the liquid fuel and oxidizer have the same density, the volumes can be added before converted into mass.
- is the fuel mass of the liquid fuel/oxidizer mixture
- is the wet mass of a tank with liquid fuel/oxidizer mixture
- is the dry mass
- and are the volume of liquid fuel and oxidizer
- is the density of liquid fuel and oxidizer (they are the same)
Volume and density
Note: in Kerbal Space Program all fuels have different densities in different tanks, which can be attributed to balancing and the need for nice-looking fuel capacity numbers.
Volume examples
The volume of a cylindrical fuel tank can be calculated from this formula:
- is the volume in litres
- is the height in meters
- is the radius in meters
The Rockomax X200-16 Fuel Tank has a height of 1.84 meters tall with a radius of 1.25 meters according to its config file. This translates to a total cylindrical volume (not accounting for the casing and empty space) of 9032.1 litres (9.0321 m³). The FL-T200 Fuel Tank, being 1.1105 meters tall and having a radius of 0.625 meters, has a cylindrical volume of 1362.8 litres (1.3628 m³),
Dividing the in-game fuel capacity by the volume results in 177.15 units/m³ for the Rockomax X200-16 and 146.78 units/m³ for the FL-T200.
Estimating actual density
As for fuel density, we should assume a volumetric usage efficiency. The reason the entire volume is not used is because the actual fuel tank is a pressure vessel with rounded ends inside a cylindrical stage with thick walls. The tanks themselves can also be insulated to keep the cryogenic fuels from boiling away too quickly.
A real life example is 80% volumetric usage in Saturn V's stages. We use this formula:
- is the estimated fuel density in litres per unit
- is the volumetric usage (80% in our case)
- is the fuel tank volume in litres
- is the total in-game fuel capacity in units
For the Rockomax X200-16 this is 4.516 litres/unit, while for the FL-T200 it is 5.451 litres/unit. While this is similar with other fuel tanks, a notable exception is the 'Doughnut' toroidal tank having less-dense fuel: 3.75 l/u at 100% volumetric usage or 3.41 l/u at 80%.
Comparison
The table does only contain tanks, which contain both liquid fuel and oxidizer. The height is units, where one unit is the height of the FL-T100 Fuel Tank.
Height (units) | 1 | 2 | 4 | 8 | 16 |
---|---|---|---|---|---|
Small | FL-T100 Fuel Tank | FL-T200 Fuel Tank | FL-T400 Fuel Tank | FL-T800 Fuel Tank | — |
Large | — | Rockomax X200-8 Fuel Tank | Rockomax X200-16 Fuel Tank | Rockomax X200-32 Fuel Tank | Rockomax Jumbo-64 Fuel Tank |
Extra large | — | — | Kerbodyne S3-3600 Tank | Kerbodyne S3-7200 Tank | Kerbodyne S3-14400 Tank |
Trivia
- Before v0.18, both rocket engines and jet engines only used liquid fuel; this meant that all fuel tanks could provide fuel for both types of engines. Since v0.18, rocket engines use oxidizer, so liquid fuel tanks lacking the necessary oxidizer cannot be used to power rocket engines anymore.
See also
- Reaction engine
- Jet engine
- Liquid fuel
- Oxidizer
- ore
- Converter
- In-situ resource utilization on Wikipedia
- Liquid hydrogen on Wikipedia
- Liquid oxygen on Wikipedia
- RP-1 on Wikipedia