BOMwiki the bill-of-materials encyclopedia
30,441,948 parts mapped · 192,925 items

You are viewing r193277 of this page, not the current version. Go to current · history

Earth Observation Satellite

Product

Overview

An Earth observation satellite is a camera in orbit. It flies a few hundred kilometers up in a low, near-polar orbit, and as it circles the planet the Earth rotates beneath it, so over a few weeks the whole surface passes under its field of view. Its task is to capture sharp, well-calibrated imagery, store it onboard, and dump that data to the ground whenever it passes over a receiving station. Almost everything in the design exists either to make the picture sharp or to keep the picture flowing to the ground.

The satellite is built as a Bus Structure hosting an Imaging Payload. The supporting subsystems are an Attitude Control that aims and steadies the camera, an Power Subsystem subsystem, an Onboard Data Handling that runs the spacecraft and stores images, an Communications subsystem with two links, an Propulsion Subsystem subsystem to fight atmospheric drag, and an Thermal Control subsystem that keeps the optics stable.

Bus structure

The Bus Structure does more than hold parts together; it preserves alignment. The camera and the star trackers that measure where it is pointed must stay locked relative to each other, because any flex between them shows up as a geolocation error in the imagery. A stiff Baseplate carries launch loads, Side Panel honeycomb faces close out the bus and mount electronics, and a low-expansion Optical Bench holds the instrument and the attitude sensors on one rigid reference. A set of machined Bracket Set fittings mount the smaller units.

Imaging payload

The Imaging Payload is the instrument that makes the pictures. Light enters the Telescope, a reflective two-mirror system: a large lightweighted Primary Mirror gathers the scene and a smaller Secondary Mirror folds the long focal length into a short Telescope Tube. The mirrors sit in flexured Mirror Mount fittings that hold them without distorting their figure, and a Focus Mechanism trims focus against thermal drift in orbit.

At the focus is the Focal-Plane Assembly, where light becomes data. Several Detector Array sensors, each behind its own Spectral Filter, capture the panchromatic and color bands. An Focal-Plane Cooler holds the detectors cold to keep noise down, and a Focal-Plane Board reads them out. The Payload Electronics digitize, correct, and format the signal through an Image Processor into image data. An onboard Calibration Unit gives the instrument a known reference so the imagery stays consistent over years, and an Stray-Light Baffle keeps stray light off the focal plane.

Attitude control

The Attitude Control is what lets a satellite moving at 7 km/s take a sharp picture. To image a target it must slew quickly, then hold dead still while the shutter is open. Reaction Wheel units provide that slew and steadiness without spending propellant. To know where it is pointed, the satellite uses Star Tracker cameras backed by an Fiber-Optic Gyro between updates, with Sun Sensor units for coarse reference and a GPS Receiver supplying the position and time that geolocate each frame. Because the wheels gradually saturate, Magnetorquer coils push against the surrounding magnetic field to bleed momentum back out. An ADCS Computer ties the loop together.

Power and data handling

The Power Subsystem subsystem runs the imaging in daylight and survives the night side of each orbit. Deployable Solar Array wings on Array Drive mechanisms track the sun and charge a lithium Lithium Battery through an Power Distribution Unit that distributes the bus. Because the satellite passes in and out of sunlight roughly fifteen times a day, the battery cycles far more often than a geostationary one, which drives its sizing.

The Onboard Data Handling subsystem runs the spacecraft and, just as important, stores the imagery. An Onboard Computer built on a radiation-hardened CPU commands the bus, while an Mass Memory Unit unit of solid-state Memory Module banks buffers captured images until a ground station comes into view, since the satellite spends most of each orbit out of contact. An Data Bus and a set of Remote Terminal units connect the computer to every subsystem.

Communications, propulsion, and thermal

The Communications subsystem carries two very different loads. A modest S-Band Transponder handles commands and health telemetry, the link operators always need. A much faster X-Band Transmitter, fed by a high-rate High-Rate Modulator through a directional X-Band Antenna, dumps the stored imagery during the few minutes the satellite is over a station. The Propulsion Subsystem subsystem matters because air drag at low altitude slowly lowers the orbit; small Thruster units fed from a Propellant Tank periodically reboost and trim the orbit so the imaging swath keeps repeating on schedule.

The Thermal Control subsystem protects image quality. The telescope's alignment depends on temperature, so an MLI Blanket, Radiator panels, Heat Pipe runs, and closed-loop Heater units driven by Thermistor sensors hold the optics and detectors at a stable set point. Variants range from small high-resolution commercial imagers to large multispectral and radar platforms, but the chain of gather light, steady the camera, store the data, and downlink it stays the same.

Bill of materials for Earth Observation Satellite

8 top-level lines as of r193277
# Item / sub-assembly Part no. Qty/assy Ext. qty Parts Type
1 Bus Structure 5 parts eos-bus-structure 1× 1 0 assembly
2 Imaging Payload 5 parts eos-optical-payload 1× 1 0 assembly
3 Attitude Control 7 parts eos-adcs 1× 1 0 assembly
4 Power Subsystem 5 parts eos-power 1× 1 0 assembly
5 Onboard Data Handling 4 parts eos-obdh 1× 1 0 assembly
6 Communications 5 parts eos-comms 1× 1 0 assembly
7 Propulsion Subsystem 4 parts eos-propulsion 1× 1 0 assembly
8 Thermal Control 5 parts eos-thermal 1× 1 0 assembly

882-word article