Fleet & Hangar
Your persistent aircraft, configurations, positions and operational capabilities — ready to support the next flight.
Black Square Baron 58TC Professional
Every plottable sector recorded for this airframe. Flight Logger records use the actual stored breadcrumb where one exists; historical and other records use the known departure-to-destination sector only.

Manage declared aircraft0 declared · console / CoxBox / manual pilots
Complete route footprint
All history is shown by default. Filter the career, or click a route to inspect one sector closely.
Mapped sectors
| Date | Route | Source | Registration | Distance | Map | |
|---|---|---|---|---|---|---|
| September 23, 2026 | LGNX → LGKP | Flight Logger Recorded track | N7733K | 195.1 NM | Open → | |
| September 17, 2026 | LIUN → LIWL | Flight Logger Recorded track | N7733K | 206.1 NM | Open → | |
| August 27, 2026 | O24 → KBIH | Flight Logger Recorded track | BOP-356 | 98.7 NM | Open → | |
| August 27, 2026 | EGTT → EGCN | Historical Log | BOP-356 | — | Open → | |
| July 25, 2026 | LIPE → LIPV | Historical Log | BOP-356 | — | Open → | |
| June 10, 2026 | LIRQ → LIPE | Historical Log | BOP-356 | — | Open → | |
| May 31, 2026 | EGNE → EGNY | Historical Log | BOP-356 | — | Open → | |
| May 31, 2026 | KBFI → EGTT | Historical Log | BOP-356 | — | Open → | |
| April 20, 2026 | KSAN → KOAR | Historical Log | BOP-356 | — | Open → | |
| April 14, 2026 | LIBP → LIRF | Historical Log | N1957P | — | Open → | |
| April 14, 2026 | LIBP → LIBP | Historical Log | N1957P | — | Open → | |
| April 12, 2026 | LIBA → LIBF | Historical Log | N1957P | — | Open → | |
| April 12, 2026 | LIBA → LIBP | Historical Log | N1957P | 86.0 NM | Open → | |
| April 11, 2026 | LIBN → LIBN | Historical Log | N1957P | — | Open → | |
| April 11, 2026 | LIBN → LIBA | Historical Log | N1957P | 134.0 NM | Open → | |
| April 6, 2026 | LICC → LICC | Historical Log | N1957P | — | Open → | |
| April 6, 2026 | LICC → LIBN | Historical Log | N1957P | 219.0 NM | Open → | |
| April 6, 2026 | LICR → LICC | Historical Log | N1957P | — | Open → | |
| April 2, 2026 | LICC → LICR | Historical Log | N1957P | — | Open → | |
| April 2, 2026 | LMML → LICC | Historical Log | N1957P | — | Open → | |
| April 1, 2026 | LICG → LMML | Historical Log | N1957P | 134.0 NM | Open → | |
| March 30, 2026 | LICS → LICG | Historical Log | N1957P | 64.0 NM | Open → | |
| March 30, 2026 | LIYM → LICS | Historical Log | N1957P | 13.0 NM | Open → | |
| March 29, 2026 | LICT → LIYM | Historical Log | N1957P | 33.0 NM | Open → | |
| March 29, 2026 | LICJ → LICT | Historical Log | N1957P | — | Open → | |
| March 26, 2026 | EGTT → EGPA | Historical Log | 356 | — | Open → | |
| March 25, 2026 | 5813N00619W → 5812N00611W | Historical Log | 356 | 2.0 NM | Open → | |
| March 25, 2026 | 5813N00620W → EGPO | Historical Log | 356 | 11.6 NM | Open → | |
| March 24, 2026 | EGPL → EGPO | Historical Log | 356 | 60.8 NM | Open → | |
| March 22, 2026 | EGGD → 5121N00258W | Historical Log | 356 | 12.0 NM | Open → | |
| March 21, 2026 | EGXY → EGTT | Historical Log | 356 | — | Open → |
Developer aircraft data
Black Square Baron 58TC Professional N7733K
Black Square Baron Professional B58TC — Structured Procedures & Developer Characteristics · Structured · Exact aircraft match
Reference view of the developer-sourced Knowledge Pack. It shows the whole library without contextual filtering. Check marks are local to this browser and do not change the live Flight Companion state.
Preparation · 1
Use the Black Square tablet or the simulator payload interface to configure the flight, then confirm the displayed loading remains within the simulated aircraft envelope.
- Set the planned fuel quantity and passenger/cargo stations.
- Check the displayed gross-weight indication for an exceedance warning.
- Confirm the centre-of-gravity marker remains inside the shown limits.
- Remove or configure exterior ground items as appropriate before departure.
Startup · 3
Prepare the common twin-engine airframe, controls, fuel and electrical system before selecting the appropriate start branch.
- Confirm the preflight is complete, control locks are stowed, occupants are secured and cabin doors are latched.
- Set the parking brake; verify emergency gear handle stowed, gear down, flaps up, avionics off and primary engine controls in the normal pre-start positions.
- Centre aileron/rudder trim, set alternate static to normal, verify required breakers in and test the CO detector.
- Select both fuel systems ON, open cowl flaps, switch the beacon on and energise the battery.
- Verify adequate bus voltage, test annunciators, switch both alternators on and check fuel quantity.
- Momentarily exercise each low boost-pump setting and confirm an audible response before returning the pumps off.
Choose the cold, hot/vapour-lock or flooded branch that matches the simulated engine condition; complete the right engine first, then the left.
- Cold branch: prime briefly with mixture rich and throttle fully open, then return the boost pump off and set a small throttle opening before engaging the starter.
- Hot/vapour-lock branch: circulate cool fuel with mixture at cut-off before priming normally; repeat the clearing cycle only if necessary.
- Flooded branch: begin with mixture leaned/cut off and a modest throttle opening, crank while increasing throttle until the engine catches, then stabilise at idle and restore mixture.
- For each engine, stabilise near 1,000–1,200 RPM and confirm oil pressure and expected starter/alternator/low-voltage indications clear.
- Verify bus voltage and keep alternator charging load within the developer checklist expectation before proceeding to the other engine.
Bring avionics, cabin systems and taxi configuration online after successful engine starts.
- Set exterior/cockpit lights as required and leave weather radar off or in standby.
- Switch avionics on and set cabin ventilation/heat/air conditioning as desired.
- Lean mixture for ground operation to reduce plug fouling.
- Release the parking brake when ready and verify braking response as taxi begins.
Taxi / Run-up · 3
Exercise propellers, ignition, instrument-air and alternator systems at the developer run-up setting before departure.
- Set the parking brake, verify annunciators, align the remote compass and return mixture to full-rich for the run-up.
- Bring power to the run-up RPM, exercise each propeller and check the permitted RPM response.
- Check each magneto side for an acceptable RPM drop and confirm instrument-air indications remain normal.
- Switch each alternator off and back on in turn, confirming the expected annunciator and load response.
Briefly test the installed heat/deice systems and confirm their electrical or pressure indications respond before returning them off.
- Test propeller heat and confirm its current draw/cycling response.
- Test windshield, pitot, fuel-vent and stall-warning heat indications as fitted, then switch the heating tests off.
- Exercise surface deice in manual and automatic modes and confirm boot-pressure response before returning deice off.
Complete trim, autopilot, flap and flight-control checks, then set the departure references.
- Exercise electric trim and perform the heading-mode autopilot response test in both directions.
- Disconnect the autopilot/flight director after the test and set elevator trim for takeoff.
- Check flap travel and set the takeoff position; close windows and verify door annunciation is normal.
- Confirm flight controls move freely and correctly.
- Set altimeter, departure altitude and takeoff heading; adjust panel lighting for departure.
Takeoff · 3
Configure the common systems immediately before runway entry and power application.
- Set mixture for maximum-power operation and verify oil temperature is suitable for takeoff.
- Confirm boost pumps are off unless the developer procedure for the situation requires otherwise.
- Switch air conditioning off, landing lights on, transponder to altitude-reporting mode and weather radar on as required.
The automatic wastegate removes most manual workload, but Black Square warns that cold oil can slow wastegate response near full throttle.
- Keep mixture full rich for takeoff.
- Advance throttles smoothly, especially through the final part of travel.
- Monitor manifold pressure closely and avoid exceeding the turbocharged redline.
Use the selected variant power limits, monitor both engines, then retract gear/flaps as the aircraft accelerates.
- Advance both throttles smoothly to the applicable takeoff setting and release the brakes.
- Monitor engine instruments during the takeoff roll.
- Retract landing gear after a confirmed positive climb.
- Retract takeoff flaps after accelerating through the developer checklist speed.
- Engage the autopilot only when desired after the initial climb is established.
Climb · 2
Transition from maximum-continuous power into the enroute climb while monitoring temperatures and performance.
- Keep mixture at the developer maximum-power setting for the initial climb.
- Set propellers to the published climb RPM and use the applicable throttle/manifold-pressure setting for the selected variant.
- Position cowl flaps as required for engine cooling.
- Set cabin climate systems as desired without losing sight of engine indications.
- Monitor both engines continuously during the climb.
Below critical altitude, the turbocharged Baron does not need continuous mixture reduction simply because altitude is increasing.
- Leave throttles and mixture at the developer climb settings during the initial climb.
- Do not lean merely to compensate for altitude while the turbocharger maintains the required manifold pressure.
- When manifold pressure can no longer be maintained through critical altitude, begin manual mixture management as required.
Cruise · 2
Close cooling drag where appropriate, set cruise power and manage mixture, fuel balance and ice systems for the simulated conditions.
- Close cowl flaps when engine temperatures permit and switch landing lights off.
- Use pitot, windshield, propeller and surface ice protection as conditions require.
- Keep fuel imbalance within the developer checklist limit.
- Lean each engine using the desired rich- or lean-of-peak technique and the EDM-760 as an aid.
- Set propellers and throttle to the applicable cruise schedule for the variant.
- Continue monitoring engine performance and cabin comfort systems.
Reduced throttle or operation above critical altitude can reduce turbocharger output enough to require manual mixture adjustment.
- After any significant high-altitude power change, re-check manifold pressure and engine performance.
- If turbocharger output no longer maintains the desired pressure, adjust mixture manually.
- Use the EDM-760 as an aid for precise rich- or lean-of-peak mixture setting.
Descent · 1
Reduce power progressively while protecting engine temperature and enriching mixture as required.
- Keep cowl flaps closed unless cooling needs dictate otherwise.
- Reduce throttle gradually for the descent.
- Enrich mixture as power/altitude changes require.
- Monitor engine performance and avoid excessive cylinder-head cooling.
Approach · 1
Secure occupants, verify fuel and weather/ice equipment, and establish the approach flap and engine configuration.
- Confirm seats and seatbelts secure and both fuel selectors on.
- Check fuel imbalance remains within the developer limit.
- Switch landing lights on and apply pitot heat when the checklist temperature criterion is met.
- Return windshield/propeller heat and air conditioning to the developer approach configuration as appropriate.
- Position cowl flaps as required, set mixture for maximum-power availability and select approach flaps.
Landing · 1
Establish the final propeller, mixture, flap and landing-gear configuration and disconnect the autopilot before touchdown.
- Set propellers to high RPM and mixture for maximum-power availability.
- Select landing flaps as required for the approach.
- Confirm landing gear down and locked.
- Disconnect the autopilot before landing.
After Landing · 1
Reduce drag and electrical loads after clearing the runway and configure the aircraft for taxi-in.
- Open cowl flaps and retract the flaps.
- Return weather radar to off/standby and adjust lights as required.
- Switch ice-protection systems off.
- Restore air conditioning and cabin heat/ventilation as desired.
Parking · 1
After taxi-in, give both turbochargers time at idle before stopping the engines.
- Stabilise both engines at turbine idle after leaving the runway.
- Allow a short cooling period before beginning the normal shutdown sequence, with extra care after cold-ambient operation.
Shutdown · 1
Use the developer securing sequence after parking and any variant-specific cooldown requirement.
- Set the parking brake and switch avionics off.
- Switch subpanel equipment off, close throttles and keep propeller controls at high RPM for shutdown.
- Move mixtures to cut-off and wait for both engines to stop.
- Switch magnetos, alternators and battery master off.
- Release the parking brake when appropriate and install the control locks.
Manual procedure library
Fire & Smoke · 4
Developer shutdown response for an engine fire while still on the ground.
- Shut off fuel to both engines.
- Move mixtures to cut-off.
- Switch alternators and battery master off.
- Switch magnetos off.
Secure the affected engine and do not attempt a restart.
- Shut off the affected engine fuel supply.
- Move its mixture to cut-off.
- Switch its alternator and magneto system off.
- Do not attempt to restart the affected engine.
Isolate aircraft electrical power, then restore only what is necessary if the fire indication stops.
- Switch alternators and battery master off; switch avionics, air conditioning, heater and other electrical equipment off.
- Open windows and shut cabin airflow/heat as appropriate to the simulated condition.
- If the fire/smoke indication has stopped, restore the battery and essential circuits one at a time.
- Restore avionics power only as needed, circuit by circuit, watching for recurrence.
Developer response to a simulated CO warning from the cabin-heater system.
- Switch the cabin heater off and close the cabin heat/air supply.
- Reset the CO detector and observe whether the alarm returns.
- If the warning persists, isolate pressurisation air where applicable and shut down the affected heat/engine source as directed by the checklist.
- Open windows, maximise fresh cabin air and shed nonessential electrical equipment.
Engine & Power · 5
Abort response to an engine failure during the takeoff roll.
- Close both throttles.
- Apply maximum braking appropriate to the simulator situation.
- Shut fuel off.
- Switch alternators and battery master off.
Single-engine cleanup and securing sequence after an engine failure once airborne.
- Retract landing gear and retract flaps once above the developer minimum speed.
- Identify the failed engine before moving its controls.
- Close the failed-engine throttle and feather its propeller.
- Maintain the developer single-engine target speed.
- Move the failed-engine mixture to cut-off, fuel selector off, boost pump off, magnetos off and alternator off.
- Close cowl flaps as appropriate and keep the remaining alternator within the developer load limit.
Developer in-flight failure/restart attempt followed by securing if restart is unsuccessful.
- Establish the developer best single-engine handling speed and identify the failed engine.
- Close its throttle and feather the propeller.
- Configure crossfeed/ignition/boost/mixture for the developer restart attempt and engage the starter.
- If the restart does not succeed, repeat only the checklist-directed second attempt.
- Select a suitable nearby airport, then secure the failed engine fuel, boost pump, magnetos and alternator.
- Close cowl flaps as appropriate and monitor remaining alternator load.
Initial developer troubleshooting flow for a rough engine.
- Select low boost-pump assistance.
- Move mixture richer, then adjust leaner while watching engine response.
- Check operation on both magnetos.
Developer response to a turbocharger that no longer supplies expected manifold pressure.
- First confirm there is no fire indication.
- Advance the throttle and observe whether manifold pressure recovers.
- If power remains low, restart the engine if the situation requires and the simulator permits.
- Set mixture for maximum available power and isolate pressurisation air if applicable.
- Plan to land at the nearest suitable airport in the simulator.
Electrical · 2
Developer response when a starter remains engaged after start.
- Switch alternators off.
- Switch battery master off.
- Move mixtures to cut-off.
- Switch magnetos off.
Verify the failed alternator, attempt the developer reset, then manage remaining electrical load.
- Confirm the indicated alternator is carrying no load.
- Attempt the checklist reset for the affected alternator.
- If it still carries no load, switch it off.
- Keep the remaining alternator within its developer load limit; if both fail, shed nonessential equipment.
- Plan to land as soon as practical in the simulator.
Other · 2
Rapid-descent configuration from the developer abnormal checklist.
- Close throttles and set propellers to high RPM.
- Extend landing gear and select approach flaps.
- Use the developer emergency-descent airspeed while remaining within simulator limitations.
Developer response to loss of both instrument-air sources.
- Treat the dual instrument-air loss as a reason to end the flight and land as soon as practical in the simulator.
Landing · 3
Configure the aircraft for the developer maximum-glide condition.
- Keep landing gear and flaps retracted.
- Close cowl flaps and feather both propellers.
- Target the developer glide speed.
- Switch air conditioning, cabin heater and nonessential equipment off.
Developer go-around configuration from a landing attempt.
- Set mixture for maximum power, propellers to takeoff RPM and advance throttles smoothly to full power.
- Open cowl flaps and verify engine indications.
- Retract landing gear after positive climb.
- Retract flaps after accelerating through the developer checklist speed.
Final securing actions for a simulated landing without engine power.
- Shut fuel off and move mixtures to cut-off.
- Switch magnetos off.
- Use flaps as required and confirm landing gear down and locked.
- Switch alternators and battery master off when appropriate in the sequence.
Icing & Air · 1
Configure all installed ice-protection systems and maximise heat/visibility support.
- Switch all available ice-protection systems on and use the wing/ice light to monitor accumulation.
- Set propellers to high RPM and close cowl flaps as directed.
- Set cabin heater and cabin airflow to maximum and use maximum defrost.
Navigation & Autopilot · 2
Recover from a simulated remote-compass slaving error.
- Pull/reset the gyro slave circuit breaker.
- If the compass remains misaligned, select free mode.
- Manually slew the remote compass to the magnetic heading.
Disconnect automation and remove electrical power from the autopilot system.
- Disconnect the autopilot immediately.
- Pull the autopilot circuit breakers to remove power from the system.
Airframe & Gear · 6
Developer response to the air-conditioning door opening or remaining deployed in flight.
- Stop using the air-conditioning system.
- Anticipate increased drag.
Reduce speed and account for drag if the nose baggage door is not secure.
- Reduce airspeed.
- Switch cabin heater off.
- Anticipate increased drag and land as soon as practical in the simulator.
Developer response to a cabin-door warning after departure.
- Check the cabin-door handle.
- Reduce airspeed and anticipate additional drag.
- Plan to land as soon as practical in the simulator.
Manual landing-gear extension sequence.
- Reduce below the developer manual-extension speed.
- Pull the landing-gear motor breaker and move the gear selector down.
- Engage the emergency gear mechanism and crank it through the specified full extension sequence.
- Confirm the gear warning/test indication and three-green gear indication, then stow the emergency handle.
Restore the normal gear motor circuit before commanding gear up.
- Verify the emergency gear handle is stowed.
- Restore the landing-gear motor breaker.
- Move the landing-gear selector up.
Developer checks when flap position does not respond normally.
- Check flap circuit breakers and adequate bus voltage.
- Command the required flap position and compare the flap indicators with the visible flap position.
