Aircraft & Mission Profile
Share aircraft mass, maximum payload, motor and propulsion information, take-off and maneuvering demand, mission duration, altitude, reserve policy and representative flight logs when available.
AGRICULTURAL TECHNOLOGY
Agricultural drone batteries must support the aircraft’s actual flight profile, not only a nominal voltage and capacity. Stellova helps OEM teams define the pack around take-off and maneuvering loads, payload, usable flight time, mass and balance, rapid turnaround, field conditions, telemetry and service requirements.
AGRICULTURAL DRONE REQUIREMENTS
Spraying, spreading, mapping and inspection missions create different payloads, power demand and turnaround patterns. Battery direction should be based on representative aircraft data, mission duration, reserve policy, environmental exposure and the way packs are charged, transported and exchanged in the field.
WHAT TO DEFINE
Provide logs or estimates for the most demanding representative mission. The sample should validate an agreed flight and charging profile rather than discover avoidable system constraints.
Share aircraft mass, maximum payload, motor and propulsion information, take-off and maneuvering demand, mission duration, altitude, reserve policy and representative flight logs when available.
Define nominal system voltage, continuous current, peak current and duration, usable SOC window, low-voltage behavior, auxiliary loads and the required flight-time margin.
Provide the maximum envelope, mass target, center-of-gravity constraints, mounting or locking method, connector, cable, removal direction and expected pack-change frequency.
Define charger or station interface, turnaround target, cooling time, ambient and starting temperature, dust, moisture, chemical or spray exposure, vibration, transport and storage conditions.
AIRCRAFT-LEVEL ENGINEERING
Increasing energy, discharge capability or environmental protection can affect mass, size, cooling and charge time. The correct pack architecture follows the aircraft-level trade-offs and safety boundaries.
Cell format and parallel configuration should be evaluated against sustained propulsion demand, transient peaks, voltage sag, usable energy and the required reserve at the most demanding operating temperature.
Pack layout, enclosure, mounting, connector and handling features must fit the aircraft mass budget, center-of-gravity range and vibration environment without compromising service access.
Discharge heating, landing temperature, cooling interval, charge rate, field airflow and consecutive missions determine whether the required operating rhythm is sustainable.
Protection, current measurement, SOC estimation, temperature sensing, cycle data and the agreed aircraft or charger interface should support predictable flight decisions and fault handling.
REFERENCE CONFIGURATION
This configuration is a source-supported project reference for a high-rate UAV battery. It is not a universal agricultural-drone product; aircraft compatibility and flight performance must be validated for the target mission.
VALIDATION & PRODUCTION READINESS
Bench testing establishes electrical, thermal and protection behavior under controlled loads. Representative aircraft testing confirms integration, telemetry, handling and usable mission performance within the agreed operating limits.
Reproduce agreed continuous loads, peak events, SOC window, ambient conditions and charge profiles while monitoring voltage sag, temperature and protection behavior.
Verify dimensions, mass, center of gravity, retention, connector access, telemetry, alarms and interaction with the aircraft and charger.
Test the defined payload, flight pattern, reserve policy and consecutive-mission workflow under controlled and documented field conditions.
Freeze approved cells, pack layout, BMS hardware and settings, drawings, firmware responsibility, test limits, inspection records and serial traceability.
FROM FLIGHT REQUIREMENT TO DELIVERY
Stellova coordinates battery requirements and qualified production resources around the agreed aircraft, mission and charging system. Final performance, tests, certification work and production controls depend on the confirmed configuration and operating boundary.
View the Engineering Process ↗DISCUSS YOUR DRONE PROJECT
Send the system voltage, representative flight logs or load profile, aircraft and payload mass, target mission time, battery envelope, connector, charging workflow, field environment, telemetry requirements and expected annual volume. We will help define the next engineering step.
Discuss Your Project ↗