Define the new internet.
Look up the words people use online, add the ones we missed, and help make the internet easier to understand.
Look up the words people use online, add the ones we missed, and help make the internet easier to understand.
2,337 definitions
機械支援の翻訳下書き (Japanese) for "Ground Station Trajectory Correction": Ground Station Trajectory Correction is a space maneuver process that adjusts a planned flight path after navigation updates or mission changes for antenna, scheduling, and downlink operations. It uses delta-v estimates, burn timing, and post-maneuver validation so teams can reduce path error before it grows while keeping evidence, reliability, and public-safe operational boundaries clear.
“例文の下書き: The mission team used Ground Station Trajectory Correction when the antenna handoff began, so the team could reduce path error before it grows before the next mission decision point.”
機械支援の翻訳下書き (Japanese) for "Ground Station Attitude Control": Ground Station Attitude Control is a space subsystem that keeps a spacecraft pointed correctly for power, thermal safety, communication, or science for antenna, scheduling, and downlink operations. It uses sensors, reaction wheels, thrusters, and control laws so teams can maintain pointing without exceeding constraints while keeping evidence, reliability, and public-safe operational boundaries clear.
“例文の下書き: The mission team used Ground Station Attitude Control when the antenna handoff began, so the team could maintain pointing without exceeding constraints before the next mission decision point.”
機械支援の翻訳下書き (Japanese) for "Ground Station Ephemeris Service": Ground Station Ephemeris Service is a space data service that publishes precise position and velocity data for mission planning for antenna, scheduling, and downlink operations. It uses orbit determination, time standards, and versioned trajectory products so teams can align navigation, communications, and safety analysis while keeping evidence, reliability, and public-safe operational boundaries clear.
“例文の下書き: The mission team used Ground Station Ephemeris Service when the antenna handoff began, so the team could align navigation, communications, and safety analysis before the next mission decision point.”
機械支援の翻訳下書き (Japanese) for "Ground Station Autonomy Stack": Ground Station Autonomy Stack is a space software layer that lets spacecraft or ground tools make bounded decisions when direct human control is delayed for antenna, scheduling, and downlink operations. It uses rules, state machines, onboard checks, and fail-safe limits so teams can handle latency without losing accountability while keeping evidence, reliability, and public-safe operational boundaries clear.
“例文の下書き: The mission team used Ground Station Autonomy Stack when the antenna handoff began, so the team could handle latency without losing accountability before the next mission decision point.”
機械支援の翻訳下書き (Japanese) for "Ground Station Link Budget": Ground Station Link Budget is a space planning model that estimates whether a signal path has enough margin for reliable communication for antenna, scheduling, and downlink operations. It uses antenna gain, path loss, modulation, and noise estimates so teams can schedule contacts with realistic margins while keeping evidence, reliability, and public-safe operational boundaries clear.
“例文の下書き: The mission team used Ground Station Link Budget when the antenna handoff began, so the team could schedule contacts with realistic margins before the next mission decision point.”
機械支援の翻訳下書き (Japanese) for "Ground Station Fault Detection": Ground Station Fault Detection is a space control that finds off-nominal behavior before it becomes a mission-impacting failure for antenna, scheduling, and downlink operations. It uses telemetry thresholds, trend checks, and operator review so teams can choose a safe response while keeping evidence, reliability, and public-safe operational boundaries clear.
“例文の下書き: The mission team used Ground Station Fault Detection when the antenna handoff began, so the team could choose a safe response before the next mission decision point.”
機械支援の翻訳下書き (Japanese) for "Payload Recovery Mode": Payload Recovery Mode is a space resilience pattern that moves a spacecraft or mission system into a known safe operating state for instrument, sensor, and hosted payload operations. It uses health checks, fallback commands, and restart procedures so teams can restore control after anomalies while keeping evidence, reliability, and public-safe operational boundaries clear.
“例文の下書き: The mission team used Payload Recovery Mode when the instrument entered a calibration cycle, so the team could restore control after anomalies before the next mission decision point.”
機械支援の翻訳下書き (Japanese) for "Payload Science Window": Payload Science Window is a space planning interval that marks when conditions are suitable for data collection for instrument, sensor, and hosted payload operations. It uses target visibility, power budgets, thermal state, and downlink availability so teams can capture useful observations without breaking constraints while keeping evidence, reliability, and public-safe operational boundaries clear.
“例文の下書き: The mission team used Payload Science Window when the instrument entered a calibration cycle, so the team could capture useful observations without breaking constraints before the next mission decision point.”
機械支援の翻訳下書き (Japanese) for "Payload Command Sequence": Payload Command Sequence is a space operations artifact that orders spacecraft actions into a validated timeline for instrument, sensor, and hosted payload operations. It uses syntax checks, dependency rules, and simulation so teams can send instructions without hidden conflicts while keeping evidence, reliability, and public-safe operational boundaries clear.
“例文の下書き: The mission team used Payload Command Sequence when the instrument entered a calibration cycle, so the team could send instructions without hidden conflicts before the next mission decision point.”
機械支援の翻訳下書き (Japanese) for "Payload Debris Avoidance": Payload Debris Avoidance is a space safety workflow that reduces collision risk with tracked objects and mission-generated debris for instrument, sensor, and hosted payload operations. It uses conjunction screening, maneuver planning, and operator signoff so teams can avoid unsafe passes without overusing fuel while keeping evidence, reliability, and public-safe operational boundaries clear.
“例文の下書き: The mission team used Payload Debris Avoidance when the instrument entered a calibration cycle, so the team could avoid unsafe passes without overusing fuel before the next mission decision point.”