Embedded Electrospray Thruster
20230211897 · 2023-07-06
Inventors
Cpc classification
B64G1/402
PERFORMING OPERATIONS; TRANSPORTING
International classification
Abstract
An electrospray thruster with integrated propellant storage directly embedded into small satellite structural elements integrates the volume of the thruster into the volume of the rail.
Claims
1. An apparatus for propulsion of a satellite, comprising: an electrospray thruster embedded in a structure of the satellite.
2. The apparatus of claim 1, wherein the satellite is a CubeSat and the structure is a CubeSat rail.
3. The apparatus of claim 1, wherein the electrospray thruster is embedded in a propellant reservoir formed in the structure of the satellite.
4. The apparatus of claim 1, wherein the electrospray thruster further comprises: an insulated casing; an emitter array seated within the insulated casing; an extractor grid spaced from the emitter array within the insulated casing; and a ground plate surrounding the extractor grid.
5. The apparatus of claim 4, wherein the insulated casing comprises a stepped shape configured to provide spacing between the emitter array and the extractor grid.
6. The apparatus of claim 4, wherein the extractor grid and the ground plate are flush with the surface of the structure of the satellite.
7. The apparatus of claim 4, wherein the insulated casing is embedded within a propellant reservoir formed in the structure of the satellite and the extractor grid and the ground plate are flush with the surface of the structure of the satellite.
8. The apparatus of claim 1, wherein multiple electrospray thrusters are embedded in multiple faces of the structure at orthogonal placement for 3-axis attitude control.
9. The apparatus of claim 1, wherein multiple electrospray thrusters are embedded in a single face of the structure for linear thrust.
10. The apparatus of claim 1, wherein the volume of the structure does not increase with the addition of the embedded electrospray thruster.
11. A method of propelling a satellite, comprising: embedding an electrospray thruster in a structure of the satellite; and operating the electrospray thruster.
12. The method of claim 11, wherein the electrospray thruster is embedded in a propellant reservoir formed in the structure of the satellite.
13. The method of claim 11, wherein the electrospray thruster further comprises: an insulated casing; an emitter array seated within the insulated casing; an extractor grid spaced from the emitter array within the insulated casing; and a ground plate surrounding the extractor grid.
14. The method of claim 13, further comprising spacing the emitter array from the extractor grid with a stepped shape of the insulated casing.
15. The method of claim 13, wherein the extractor grid and the ground plate are flush with the surface of the structure of the satellite.
16. The method of claim 13, wherein the insulated casing is embedded within a propellant reservoir formed in the structure of the satellite and the extractor grid and the ground plate are flush with the surface of the structure of the satellite.
17. The method of claim 11, further comprising arranging multiple electrospray thrusters embedded in multiple faces of the structure to provide 3-axis attitude control.
18. The method of claim 11, further comprising arranging multiple electrospray thrusters embedded in a single face of the structure to provide linear thrust.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0011] The novel features believed characteristic of the illustrative embodiments are set forth in the appended claims. The illustrative embodiments, however, as well as a preferred mode of use, further objectives and features thereof, will best be understood by reference to the following detailed description of an illustrative embodiment of the present disclosure when read in conjunction with the accompanying drawings, wherein:
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DETAILED DESCRIPTION
[0021] The illustrative embodiments disclose an electrospray thruster embedded in the structure of a satellite, for example a CubeSat. The embedded electrospray thruster is fully contained within the structure of the satellite. The embedded electrospray thruster is meant to occupy previously unused volume inside the structural components of a satellite and therefore provide a propulsion and attitude control system with zero volume penalty and provide no obstructions to payload volume or interference with the mechanical operation of the satellite dispenser. The structural components of the satellite, for example being the rails that define the satellite shape and define the cargo volume of the satellite.
[0022] The electrospray thruster embedded within a rail of the satellite structure sits flush with the surface of the rail its embedded within to ensure nothing protrudes from the structure.
[0023] The design of the embedded electrospray thruster is based around the requirements of CubeSat Design Specifications which specify an 8.5 mm wide rail with one mm chamfers on each corner, leaving a 6.5 mm flat face on each side. Consequently, the embedded electrospray thruster is mounted within a propellant reservoir within a satellite rail, the propellant reservoir having approximate dimensions, for example, of 5 mm wide and 5 mm deep. A length of the propellant reservoir is chosen, for example 10 mm, in order to increase the size of the emitter array so as to maximize the total number of emitters for higher thrust density. The embedded electrospray thruster is designed to operate on the common ionic liquid propellant EMI-BF4.
[0024] With reference now to the figures, in particular, with reference to
[0025] In the illustrative example, satellite 100 includes structure 102 and electrospray thruster 104. Electrospray thruster is embedded within 112 structure 102.
[0026] In this illustrative example, structure 102 of satellite 100 may be rail 106. A plurality of rails make up the general shape of the satellite. Structure 102, made up of a plurality of rails 106, has volume 108. Volume 108 is the space taken up by structure 102 of satellite 100. It is an object of the illustrated examples of an electrospray thruster to not increase volume 108 of structure 102.
[0027] As the name implies, for example, a CubeSat has a cubic shape. Each rail 106 is typically metallic and acts as a ground for the electricity used to operate an electrospray thruster. CubeSat rails, for example, have size requirements dictated by a specific CubeSat Design Specification (Revision 13). For example, the CubeSat Design Specifications specify an 8.5 mm wide rail with 1 mm chamfers on each corner. These dimensions leave a 6.5 mm flat face for the embedding of an electrospray thruster according to the illustrative examples. Each rail 106 that includes an embedded electrospray thruster 104 will include propellant reservoir 110 for embedding therein. Propellant reservoir 110 is inside rail 106. Should a rail include a plurality of electrospray thrusters, each electrospray thruster will be embedded in a corresponding propellant reservoir. Electrospray thruster 104 will be embedded within propellant reservoir 110 such that electrospray thruster 104 is flush with the flat face of rail 106 in which it is embedded. As a result, embedding electrospray thruster 104 within rail 106 will not increase volume 108 of structure 102 of satellite 100. It is understood that the embedded electrospray thruster of these illustrated examples is not limited to application to only CubeSats. Any satellite, utilizing construction of rails, struts, solid beams or rods where the addition of electrospray thrusters is desired without affecting the volume of the structure of the satellite, is envisioned.
[0028] In the illustrated example, electrospray thruster 104 includes insulated casing 120, emitter array 122, extractor grid 124, and ground plate 126.
[0029] Insulated casing 120 sits in propellant reservoir 110 embedded in rail 106 and seals in the high voltage propellant stored in propellant reservoir 110. As illustrated in detail in
[0030] Insulated casing 120 is electrically insulating. For example, insulated casing may be comprised of a glass ceramic such as Macor®. Insulated casing 120 provides electrical isolation for emitter array 122.
[0031] Emitter array 122 may be comprised of conical porous borosilicate glass tips with pore sizes in the 1-10 micron range to enable wetted emitter operation and eliminate the need for micromachining propellant channels directly. Capillary action draws propellant from propellant reservoir 110 into emitter array 122 eliminating the need for back pressure or a pump. Due to stepped shape 128 of insulated casing 120, emitter array 122 is spaced on a first side from propellant stored in propellant reservoir 110 and spaced on a second side from extractor grid 124.
[0032] Extractor grid 124 is generally planar and may be comprised of a material that is electrically neutral with structure 102. For example, extractor grid 124 may be comprised of stainless steel 316 due to its structural, electrical, and machinability properties. Extractor grid 124 includes holes aligned with the glass tips of emitter array 122.
[0033] Ground plate 126 is generally planar and may be comprised of a material that is electrically neutral with structure 102. For example, ground plate 126 may be comprised of stainless steel 316 to match the thermal and electric properties of extractor grid 124. Ground plate 126 surrounds extractor grid 124. Ground plate 126 and extractor grid 124 are positioned in insulated casing 120 by stepped shape 128 of insulated casing 120 such that extractor grid 124 and ground plate 126 are flush with the surface of rail 106 of structure 102.
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[0037] Electrospray thruster 400 includes insulated casing 410, emitter array 412, extractor grid 414, and ground plate 416. Stepped shape 418 of insulated casing 410 positions each component of electrospray thruster 400 such that, when assembled and embedded in rail 402, extractor grid 414 and ground plate 416 sit flush with face 404. As a result, embedded electrospray thruster 400 adds no volume to the structure, in this example, rail 402.
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[0039] Shoulder 506 provides a surface for supporting an extractor grid and ground plate, for example, extractor grid 124 and ground plate 126 in
[0040] Referring to
[0041] Referring to
[0042] When an electrospray thruster is embedded in a structure of a satellite, such as a rail, the electrical properties of each component are important.
[0043] To minimize the risk of arcing, extractor grid and ground plate 1002 is maintained at satellite ground 1004 to enable it to float to the same potential as the main satellite structure as dictated by the local ambient plasma conditions. High voltage is applied by power supply 1010 to the conductive propellant and emitter array 1006 using a distal electrode inserted into the propellant chamber, which is then electrically isolated from the surrounding elements by insulated casing 1008.
[0044] Extractor grid and ground plate combination 1002 is electrically neutral with the satellite structure. Emitter array and propellant 1006 are biased relative to extractor grid and ground plate 1002. The insulated casing provides electrical isolation for emitter array and propellant 1006.
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[0046] The operations described above are not relegated to the order the operations were presented. Some operations can be performed prior to previously described operations and some can be performed simultaneously. The order the operations were presented does not imply an order for the operations to be performed in.
[0047] Embedding electrospray thrusters with integrated propellant storage directly into small satellite structural elements combines the volume of the thruster with the volume of the rail. This enables larger volumes to be left for other mission critical elements such as payloads while retaining maneuverability. Enabling higher maneuverability on small satellites across a full six degree-of-freedom enables wide area coverage constellations, drag compensation for extended mission durations in low earth orbit (LEO), and precision attitude control.
[0048] The description of the different illustrative embodiments has been presented for purposes of illustration and description, and is not intended to be exhaustive or limited to the embodiments in the form disclosed. Many modifications and variations will be apparent to those of ordinary skill in the art. Further, different illustrative embodiments may provide different features as compared to other illustrative embodiments. The embodiment or embodiments selected are chosen and described in order to best explain the principles of the embodiments, the practical application, and to enable others of ordinary skill in the art to understand the disclosure for various embodiments with various modifications as are suited to the particular use contemplated.