IP Library Granted Patent US 12,623,794
Granted Patent B2
US 12,623,794 · App. 18/588,784 · Granted May 12, 2026

Attachment systems for augmenting satellites

Inventors: Erik Olaf Harang (Flagstaff, AZ); Ghonhee Lee (Flagstaff, AZ); Nicholas Peter Liapis (Scottsdale, AZ); Jason Herman (Flagstaff, AZ); Dawson Pursell (Flagstaff, AZ); Hunter Robertson (Flagstaff, AZ); Andrew Sabovik (Flagstaff, AZ)
Assignee: Katalyst Space Technologies, LLC
B64G1/223B64G1/10B64G1/1007B64G1/1078B64G1/242H04B7/18513H04B7/19H04W64/003B64G1/503H04W84/18
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Quick Facts
Patent No.
US 12,623,794
App. No.
18/588,784
Granted
May 12, 2026
Kind
B2
Abstract

Retrofittable satellite systems for an in-orbit host satellite comprising an enhancement module for adding a capability to the in-orbit host satellite, modifying the function of the in-orbit host satellite, and/or extending the function of the in-orbit host satellite. The in-orbit, retrofittable satellite system comprises a transfer vehicle for transferring the enhancement module from a first to a second location and a service vehicle for receiving the enhancement module from the transfer vehicle and installing the enhancement module on the in-orbit host satellite. In-orbit space situational awareness systems, comprising one or more in-orbit host satellites having one or more enhancement modules attached thereto, the enhancement modules comprising sensors such as satellite spatial location/position sensors, range sensors, navigation sensors, and/or proximity sensors for detecting other objects in-orbit, their location, speed, acceleration, orbital trajectory or the like, wherein the enhancement modules communicate to create a mesh network between the satellites. Clamps may be provided for attaching the enhancement module to an existing structural component of the in-orbit host satellite.

Claims (35)

1 . A system for upgrading an in-orbit host satellite with an enhancement module, wherein the in-orbit host satellite is without an independent attachment interface for receiving the enhancement module, the system comprising:

the in-orbit host satellite;

the enhancement module;

the enhancement module having a payload for adding a new capability to the in-orbit host satellite, the enhancement module further comprising:

at least one of an independent power subsystem and an independent communications subsystem such that the enhancement module does not require power or data connection to the in-orbit host satellite; and

a clamp to attach the enhancement module to an existing structural component of the in-orbit host satellite, wherein after the enhancement module is attached to the in-orbit host satellite, running a calibration routine using state data from both the in-orbit host satellite and the enhancement module to determine a relative orientation of the enhancement module to the in-orbit host satellite; and

an enhancement module transmitter, the enhancement module transmitter providing communication of enhancement module data with a communications device remote from the in-orbit host satellite, the enhancement module data comprising at least one of an enhancement module state information and an enhancement module payload data.

2 . The system for upgrading an in-orbit host satellite of claim 1 , wherein the existing structural component comprises at least one of a launch adaptor ring, a radiator panel, a solar array boom, and an antennae boom.

3 . The system for upgrading an in-orbit host satellite of claim 1 , wherein the payload comprises at least one of an electro-optical sensor, an infrared sensor, a hyperspectral sensor, a communications system, a satellite spatial position sensor, a range sensor, a navigation sensor, a proximity sensor for detecting other objects in-orbit, and a science instrument.

4 . The system for upgrading an in-orbit host satellite of claim 1 , further comprising:

a transfer vehicle for transferring the enhancement module from a first location to a second location; and

a service vehicle for receiving the enhancement module from the transfer vehicle and installing the enhancement module on the in-orbit host satellite.

5 . The system for upgrading an in-orbit host satellite of claim 4 , wherein the service vehicle removes at least one existing enhancement module from the in-orbit host satellite.

6 . The system for upgrading an in-orbit host satellite of claim 1 , further comprising a service vehicle for transferring the enhancement module from a first location to a second location and for installing the enhancement module on the in-orbit host satellite or for removing at least one existing enhancement module from the in-orbit host satellite.

7 . The system for upgrading an in-orbit host satellite of claim 1 , further comprising additional enhancement modules attached to the in-orbit host satellite to form an in-space mesh network.

8 . The system for upgrading an in-orbit host satellite of claim 1 , wherein the enhancement module uses at least one of electro-optical, Radio Detection and Ranging, Light Detection and Ranging, infrared, hyper-spectral, and radio frequency to determine space object information related to characteristics of other space objects in-orbit comprising at least one a relative size, a geometry, and identification.

9 . The system for upgrading an in-orbit host satellite of claim 8 , wherein the enhancement module transmits the space object information to a ground-based space situational awareness system.

10 . The system for upgrading an in-orbit host satellite of claim 1 , wherein the enhancement module is configured to communicate with other space assets.

11 . The system for upgrading an in-orbit host satellite of claim 7 , further comprising at least one more additional in-orbit host satellite, wherein the additional enhancement modules are attached to at least one of the additional in-orbit host satellites to form a space situational awareness mesh network that transmits additional object information to a ground-based space situational awareness system.

12 . The system for upgrading an in-orbit host satellite of claim 7 , further comprising at least one more additional in-orbit host satellite, wherein the additional enhancement modules are attached to at least one of the additional in-orbit host satellites to form a hub and spoke space situational awareness network that transmits additional object information to a ground-based space situational awareness system.

13 . The system for upgrading an in-orbit host satellite of claim 7 , further comprising at least one more additional in-orbit host satellite, wherein the additional enhancement modules are attached to at least one of the additional in-orbit host satellites to form a space situational awareness hub and spoke hybrid mesh network that transmits additional object information to a ground-based space situational awareness system.

14 . A system for upgrading multiple in-orbit host satellites with enhancement modules, wherein the in-orbit host satellites are without independent attachment interfaces for receiving the enhancement modules, the system comprising;

multiple in-orbit host satellites;

at least two enhancement modules;

the enhancement modules each having a payload configured to add at least one new capability to the multiple in-orbit host satellites, each enhancement module further comprising:

at least one of an independent power subsystem and an independent communications subsystem such that the enhancement module does not require power or data connection to any of the multiple in-orbit host satellite; and

a clamp to attach the enhancement module to an existing structural component of one of the multiple in-orbit host satellites, wherein after each enhancement module is attached to that in-orbit host satellite, running a calibration routine using state data from both that in-orbit host satellite and the enhancement module to determine a relative orientation of the enhancement module to that in-orbit host satellite; and

an enhancement module transmitter, the enhancement module transmitter providing communication of enhancement module data with a communications device remote from the multiple in-orbit host satellites, the enhancement module data comprising at least one of an enhancement module state information and an enhancement module payload data.

15 . The system for upgrading multiple in-orbit host satellites of claim 14 , wherein the existing structural component comprises at least one of a launch adaptor ring, a radiator panel, a solar array boom, and an antennae boom.

16 . The system for upgrading multiple in-orbit host satellites of claim 14 , wherein each payload comprises at least one of an electro-optical sensor, an infrared sensor, a hyperspectral sensor, a communications system, a satellite spatial position sensor, a range sensor, a navigation sensor, a proximity sensor for detecting other objects in-orbit, and a science instrument.

17 . The system for upgrading multiple in-orbit host satellites of claim 14 , wherein at least one of location, speed, acceleration, and orbital trajectory of other objects is determined and wherein the enhancement modules communicate to create an in-orbit mesh network between the in-orbit host satellites.

18 . The system for upgrading multiple in-orbit host satellites of claim 14 , wherein at least one of the enhancement modules uses at least one of electro-optical, Radio Detection and Ranging, Light Detection and Ranging, infrared, hyper-spectral, and radio frequency to determine space object information related to characteristics of other space objects in-orbit comprising at least one a relative size, a geometry, and identification.

19 . The system for upgrading multiple in-orbit host satellites of claim 18 , wherein a first enhancement module on a first in-orbit host satellite transmits the space object information to a ground-based space situational awareness system.

20 . The system for upgrading multiple in-orbit host satellites of claim 14 , wherein at least one enhancement module communicates with other space assets.

21 . The system for upgrading multiple in-orbit host satellites of claim 14 , wherein the enhancement modules communicate with one another to create an in-orbit mesh network between the in-orbit host satellites.

Assignments (2)
SECURITY INTEREST Recorded Jun 19, 2025
From: KATALYST SPACE TECHNOLOGIES, LLC
To: LCIF PORTFOLIO HOLDINGS, LLC
Reel/Frame 071455/0510 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 3, 2024
From: HARANG, ERIK OLAF; LEE, GHONHEE; LIAPIS, NICHOLAS PETER; HERMAN, JASON; PURSELL, DAWSON; ROBERTSON, HUNTER; SABOVIK, ANDREW
To: KATALYST SPACE TECHNOLOGIES, LLC
Reel/Frame 067601/0306 →
Continuity (6)
Continuation In Part 18143744 · May 5, 2023
Continuation In Part 18143780 · May 5, 2023
Continuation In Part 18035570 · May 5, 2023
Continuation PCTIB2021060284 · Nov 5, 2021
Provisional Application 63198692 · Nov 5, 2020
Related Publication 20240308694A1 · Sep 19, 2024
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