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Voo 2621

Iris Flight 3

Mercury V1 Rev 1 · firmware 2.40
Apogeu
190.33m
6.37 s after launch
Máx. subida
57.67m/s
peak ascent
Máx. durante combustão
11.01G
during the burn
Aterragem
48.23s
touchdown 4.77 m/s
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Resumo do voo

The flight, moment by moment

Liftoff
0 s
Inclinação rampa11.27°
Thrust calc pad tilt2.9°
Launch detected
0.835 s
Altitude35.03 m
Velocidade54.98 m/s
Fim combustão (primeiro)
1.93 s
Altitude92.9 m
Velocidade48.050 m/s
Apogeu
6.37 s
Altitude190.33 Metros
Incl. máx. até fim comb.35.63°
Possível ejeção
7.066 s
Altitude187.88 m
Velocidade-5.99 m/s
Aterragem
48.23 s
Altitude-20.62 m
Máx. descida-19.6 m/s

Estabilidade68.8%Moderado

Inclinação no fim da queima (20%)92.5
20% · Launch tilt 2.9°
Taxa arfagem/guinada (30%)52.1
25% · Coning 95.8/107.4°/s
Coning · boost (25%)46.3
25% · Spin 71.9°/s
Retidão de empuxo (15%)85.8
30% · Thrust 97%

Rocket information

Calculated from the flight data alone
Boost acceleration24.9 m/s²
average over the burn · 2.5 g
Coast deceleration10.8 m/s²
average · gravity plus drag
Ballistic coefficient231 kg/m²
fitted to the 4.44 s coast
Apogee lost to tilt0.24 m
flown vertical ≈ 190.5 m · from the thrust-calculated tilt
Chute opening peak22.19 G
largest deceleration after ejection
Average descent rate5.06 m/s
ejection to landing · 41.16 s
Bateria & temperatura 0% → 0% · Temperatura início 24.95 → 25.09 °C · Lançamento após arranque 3m 56s

About the stability score

Worked out from the flight log between liftoff and 80% of apogee. It is independent of the angle the altimeter was mounted at, so it measures the flight rather than the fitting.

Inclinação no fim da queima (20%)20%How close to vertical it left the rod.
Taxa arfagem/guinada (30%)25%How much the nose swung off the rocket's own axis across the whole ascent.
Coning · boost (25%)25%The same swing during the burn, when it matters most.
Retidão de empuxo (15%)30%How cleanly the motor pushed along the body.

Spin about the rocket's own axis is not counted against it — a fast, straight spin is stable. The figures beside the score are the raw measurements behind these four.

Altitude
Apogeu190.33 Metros
Tempo até apogeu6.37 s
Altitude fim combustão92.9 m
Altitude vel. máx.48.42 m
Altitude ejeção187.88 m
Altitude aterragem-20.62 m
Altitude gravação232.46 m
Velocidade
Máx. subida57.67 m/s
Máx. descida-19.6 m/s
No fim combustão48.050 m/s
Vel. descida-4.898 m/s
Vel. ejeção-5.99 m/s
Vel. aterragem-4.772 m/s
Aceleração
Máx. durante combustão11.01 G
Máx. subida11.01 G
Máx. descida22.19 G
Média subida0.36 G
Média combustão3.07 G
Tempos
Fim combustão (primeiro)1.93 s
Apogeu6.37 s
Possível ejeção7.066 s
Aterragem48.23 s
Saída #1 ON0 s
Saída #1 OFF0 s
Ângulos
Inclinação rampa11.27°
Thrust calc pad tilt2.9°
Incl. máx. até fim comb.35.63°
Rolagem no lançamento4.85°
Arfagem no lançamento-10.18°
Rotação máx. (comb.)614.98 dps
Rotação média (comb.)97.76 dps
Recovery
Single deploy
No dual deploy detected on this flight.
Geral
Data envio21-Jul at 13:14
Amostras de dados8355
Tempo total gravação64.400 s
Média amostras/s129.7
Número de bloqueios1
Lançamento após arranque3m 56s
Eixo de referênciaX
Bateria & temperatura
Bateria início0%
Bateria fim0%
Temperatura início24.95°C
Temperatura fim25.09°C
Temp. MT1 lançamento0°C
Regras de saída
Sem regras configuradas
Notas do utilizador
Sem notas
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Vídeo Youtube
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Imagens do voo 0
Sem imagens
Motores do voo
1st stage · 7s delay
E26W-7AeroTechDetails
Burn time
1.18 s
Diameter
24.00 mm
Average thrust
23.5 N
Max thrust
27.89 N
Total weight
44.00 g
Propellant weight
18.30 g
Propellant type
White Lightning
Impulse27.85Ns
Max thrust27.8N
Burn time1.18s
Impulse classE
1st stage thrustloading curve…
Motor data by ThrustCurve.org
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Foguete associado
🚀
Active
Iris
LOC Precision — Park Flyer IRIS 1.6"
1 flight linked
Type
Kit build
Diameter
41.5mm
Length
838mm
Dry weight
300g
Loaded wt.
350g
Mod
Modified
Stages
1
Fins
4
Recovery
Parachute
Body
Kraft paper
💬 No comments yet
Rule events
No output rules fired during this flight.
Correspondência motor (BETA)
Ainda em modo de teste! Estamos a descobrir qual motor foi usado no voo.
Marca
Motor
Pontuação
Forma
Comb.
Contrail
G300
30
17.5%
66.7%
Estes
1/4A3T
19
1%
83.7%

Linked flights

Connect flights that belong together: a second altimeter flown in the same rocket, or the same rocket flown again. Linked flights appear on each other’s pages.

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Local de lançamento, data e hora

Clique no mapa para marcar o local de lançamento. Alterne entre vista de mapa e satélite.

Imagery © Esri, Maxar, Earthstar Geographics

Clique no mapa · Arraste para ajustar

Site nameUnnamed siteLat55.726646Lng-4.814018Ground level238.2 m · 782 ftData lançamento2026-07-11Hora lançamento16:00
Animação dos dados

FLIGHT 2621

190.33 Meters

ALTITUDE
0.00m
VELOCITY
0.00m/s
ACCEL
0.00G
TILT
0.00°
PITCH
0.00°
ROLL
0.00°
YAW
0.00°
TIME
0.00s
AWAITING LAUNCH
ALT
altimetercloud.com
LAUNCH T+0.00s LANDING

BURNOUT

Motor burn complete

Nota: A animação de voo requer que o altímetro esteja montado numa orientação fixa. Calibre os sensores para melhores resultados.
Mercury V1
Revision 1
Mercury V1
Este voo foi realizado num Mercury V1.
The hardware
Versão hardwareRev 1
Versão software2.40
Última ligação21-Jul at 13:42
Sensor pressãoBosch BMP 390
Acelerómetro32G 3-axis
Giroscópio2000 dgps 3-axis
MagnetómetroN/A

Settings, as they were for this flight

Definições gerais do voo
Pressão prevista
i
Set this to your local forecast pressure at sea level. This will offer you slightly improved accuracty for your flight, although it's not 100% essential every little helps!

Xcweather.co.uk is a decent place to grab pressures from for your location and time.
1026 mbar
Deteção lançamento
i
This is the altitude above the launch pad altitude where the altimeter will trigger itself into recording / flight mode.

The altimeter keeps a constant average of the pressure while waiting for launch, it uses a simple algorithm and the pre-flight buffers to do this. The most recent 120 samples (~4 seconds) are ignored so your pre-trigger altitude won't effect the ground baseline.

For almost all uses we suggest keeping this on the 25 Meter (~82 feet) default settings. If you want to test your altimeter by throwing it in the air, or are planning a very low flight you may want to lower the setting.
35 meters
Sample ratio
i
The altimeter runs at 50Hz however you can record every sample or every X samples in order to extend the log time. For example if you set the ratio to 1 it will save 1:1 samples, or if you set it to 3 it will save 1 in 3 samples.
1:5 (hybrid, reduces after apogee)
Max samples
i
This is the maximum samples the altimeter will log per flight. When it reaches this amount it will stop and save the recording.
18000
Recording stop
i
This setting is how the altimeter decides to stop recording. You can choose either 450 (~9s) or 900 (~18s) samples stable or it will record until the max samples limit unless you press the BUTTON in Manual stop mode.

The samples stable method waits for the devices altitude not to change for the set number of samples. This is defined by not changing by more than +/- 1.0 meters for 98% of the samples, it's a reliable method to stop the recording after landing within 8-10 seconds (300 sample) or 16-20 seconds (600 sample).
Auto: 450 samples stable (~9s)
Oversampling
i
Oversampling is a internal setting of the BMP 390 pressure sensor. It is how many samples are taken for each reading. By taking multiple samples for each pressure reading the altimeter reduces noise and increases the resolution of the output.

The sensor can run at 50 samples per second in 4X mode, so we suggest leaving it in this mode as it will offer the highest accuracy.
8x Oversampling
IIR filter
i
The IIR filter is another internal sensor for the BMP390 pressure sensor. It is a Infinite impulse response filter used to enhance pressure measurement accuracy by reducing noise. It's primarily for smoothing out rapid pressure changes.

We suggest not setting this too high as it will cause delay to changes in altitude if set very high.
COEFF 7
Pressure filter
i
This filter is a software Kalman filter that runs on the altimeters processor.

The Kalman filter uses a prediction step based on a system model and then a correction step using new measurements to refine its estimate, it creates accurate most certain results from data with noise in it.
Kalman 2 (default)
Lockout change
i
This is how we detect a lockout. If the pressure changes by this much in a single sample downwards (pressure increase, lower altitude) then it's likely to be a false reading. Multiply the setting by 32 to get the speed in meters per second that it will trigger at.
0.5 meters
Sync sensors
i
The filters on the pressure sensor can cause it to lag very slightly behind the Accelerometer and Gyroscope data. The Sync sensors option detects how far out of sync these sensors are. It then corrects the Acceleration and Gyroscope readings to match the pressure sensor.
ATIVADO (75 samples / 300.00ms)
Orientation
i
This is the orientation you intend to install the Altimeter in your rocket. It's needed to ensure completly accurate angles and orientation charts and reports. Check out the Manual for more information on this.
Upwards (text up)
IMU filter
i
The IMU filter, or fusion filter takes the data from each axis of the Gyroscope and Accelerometer to calculate the Pitch, Roll, Yaw and tilt angle from vertical. These filters can build up some discrepency over time so it's important to calibrate your sensors to minimise this.
Madgwick 6-Axis
Launch ALP
i
This is prevention against accidental launch detection.

With this disabled the launch is based only on pressure and something that creates a low pressure can trigger the flight by accident. For example pulling your nose cone off can even trigger it.

With this enabled the rocket also needs to have seen 8 samples (0.25 seconds) of acceleration above this setting in the last 3 seconds as well as the pressure drop to trigger. There is a backup trigger of 1.05 seconds of altitude being above the launch detect setting too.

There are very few situations where this option would cause issues, so we suggest leaving it on.
1.4G
Launch lock
i
When enabled, the altimeter locks out recording for a set period after power on to prevent false triggering during setup.
DISABLED
Static temperature
i
A fixed temperature value used for altitude calculation when the external temperature sensor is disabled or not connected.
15 °C
Temp sensor
i
If an external MT1 temperature sensor is connected, this controls whether it is used for logging only or also for altitude calculations.
DISABLED
Definições de saída
Arm switch
i
When enabled, GP6 is a hardware arm switch — outputs and rules are held off until the switch is closed to ground.
DISABLED
Startup lockout
i
Outputs and rules are blocked for this many seconds after power-on while sensors settle. 0 = off.
None
Launch confirm delay
i
After launch is detected, outputs and rules won't fire until this many seconds have passed.
2 s
Altitude floor
i
Outputs and rules are blocked until the rocket is at least this height above the launch pad.
50 m
Custom dataset 1
i
User-defined expression evaluated per sample, available for charting.
Custom dataset 2
Calibração de sensores
Desvios de calibração utilizados neste voo.
Giroscópio⚠ O giroscópio não foi calibrado
X0.000°
Y0.000°
Z0.000°
Acelerómetro⚠ O acelerómetro não foi calibrado
X0.000 mG
Y0.000 mG
Z0.000 mG
Definições do dispositivo
TAG dispositivo
i
A custom name or tag assigned to this device for easy identification.
Merc9448
Idioma
i
The language setting configured on the device.
🇬🇧 English
Modo encerramento
i
Controls what happens after recording. Standard shuts down normally, Delayed keeps WiFi on for 30 seconds after landing, Stay on keeps the device powered on.
Standard
Brilho LED
i
The brightness level of the LED indicators on the Mercury. Lower values save battery.
20%
WiFi TX power
i
WiFi transmit power level. Higher gives better range but uses more battery.
2 dBm (low)
Modo suspensão
i
Controls whether the device enters low-power sleep when idle.
Normal (sleep when idle)
Monitor bateria
i
Monitors battery voltage during the flight.
DISABLED
Cloud group
i
The cloud group / category this flight is assigned to.
General use
Portas GP6 / GP7
Configuração das portas GP6 e GP7 para canais pirotécnicos, servos ou outros dispositivos.
Channel 6 mode
ON = HIGH
Ch6 min pulse (µs)
0
Ch6 max pulse (µs)
0
Ch6 frequency
0 Hz
Ch6 angle ON
Ch6 angle OFF
Ch6 on time
0s
Channel 7 mode
ON = HIGH
Ch7 min pulse (µs)
0
Ch7 max pulse (µs)
0
Ch7 frequency
0 Hz
Ch7 angle ON
Ch7 angle OFF
Ch7 on time
0s
Placa servo I2C PCA9685
Configuration for the external I2C PCA9685 servo expansion board. This board provides up to 6 additional servo channels.
No I2C servo board was connected for this flight.
Previsão e freios aéreos
The Mercury can predict apogee while coasting after burnout. These settings control the prediction calculation and optional air brake system.
Dry mass
i
The total mass of the rocket after motor burnout (dry mass). This is used for the ballistic prediction of apogee altitude. Enter the mass without the motor propellant, or the mass at burnout.
0.15 kg
Drag Cd
i
The aerodynamic drag coefficient (Cd) of the rocket. This is used with the rocket area to calculate aerodynamic drag during coast. A typical model rocket has a Cd of 0.4 to 0.8. You can find this value from OpenRocket or RockSim simulations.
0.75
Reference area
i
The cross-sectional reference area of the rocket in square meters. This is typically the area of a circle with the body tube diameter. For example a 38mm tube has an area of approximately 0.00113 m².
0.001 m²
Gas constant
i
The specific gas constant for dry air, used in the atmospheric model for altitude and density calculations. The standard value is 287.05 J/(kg·K). You shouldn't need to change this unless you know what you're doing.
287.05 J/(kg·K)
The following settings configure the air brake system.
Air brake enabled
i
Enables or disables the active air braking system. When enabled, the Mercury will deploy air brakes via the configured servo channel to try and reach the target altitude. Firmware 2.1+ required.
OFF (default)
Servo channel
i
Which servo output channel the air brake mechanism is connected to. GP6 and GP7 are the two onboard servo headers, I2C channels are for an external servo expander board.
GP6
Deploy speed
i
The speed at which the air brakes deploy. The Mercury gradually increases the servo angle until the predicted apogee matches the target rather than going full on/off. This setting controls how quickly it ramps up to full braking.
Medium (default)
Target altitude
i
The target apogee altitude in meters. The air brake system will try to slow the rocket so it reaches this altitude.
300 m
Over shoot %
i
The percentage over the target altitude to aim for until within 15% of the target. This helps prevent undershooting if the prediction is slightly off early in the coast. For example, with a 1000m target and 5% early adjustment, the Mercury will aim for 1050m until it passes 850m.
5%
Activation altitude
i
The air brake system activates after burnout, but won't engage until the rocket has reached this percentage of the target altitude. This prevents the brakes from deploying too early when predictions may be less accurate.
20% (default)

Files

Where the altimeter signs its log, the file carries that signature and a tick beside it. A tick means the data is unchanged since the device wrote it, which is what a record claim needs.
CSV
2621.csv
The log as columns of text. Opens in a spreadsheet, and in every simulator that reads flight data.
693 KB
WX
2621_weather.json.gz
The weather for 48 hours either side of the launch, within 15 km of the launch site: NOAA GFS every hour, at the surface and up to about 31 km, and the NOAA GEFS ensemble where this site holds it. JSON, gzip compressed. Weather data by Open-Meteo.com (CC BY 4.0) and NOAA. For 2026-07-11 16:00 local time at 55.7266, -4.8140.
192 KB
Adjusted CSV2904 recalculated in your browser
The log recomputed for your own sea-level pressure and temperature. Columns: time, altitude as recorded and adjusted, raw altitude as recorded and adjusted, pressure.

This file is built here from the signed log, so it carries no signature of its own. Anyone verifying a claim should be sent to the flight page and build their own from the original.

Voo
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