Drone Battery Guide 2026: Selection, Specs & OEM | WES Battery
Drone Battery Ultimate Guide

The Complete Guide to Drone Batteries.
Selection, Specs, Compliance & OEM.

From LiPo vs semi-solid chemistry to LiHV voltage, C-rate, UN38.3 compliance and custom OEM — everything you need to spec, source, and scale industrial UAV power.

Chemistries LiPo · Li-ion · Semi-solid Density 350-400 Wh/kg Config 6S to 24S Cycles 1,000+ rated
WES drone battery family: semi-solid, LiHV and LiPo UAV packs from 1,500 to 80,000 mAh WES drone battery family · 1,500mAh to 80,000mAh
350-400Wh/kg
Semi-solid cell energy density
50C+
LiPo peak discharge
1,000+
Rated cycle life (solid-state)
24S
Configurations up to
Battery Chemistry

Three chemistries, one decision

The first fork in the road. LiPo, Li-ion, and semi-solid trade off power, energy, safety and cost in predictable ways.

Chemistry at a glance

The short answer: LiPo gives you the most current, Li-ion the most cycles per dollar, and semi-solid the most energy in the least weight with the safest chemistry.

Energy density below is cell-level; finished packs weigh a little more once casing, BMS and connectors are added.

Full chemistry comparison with decision tree →

ChemistryEnergy densityDischargeBest for
LiPo (pouch)180-230 Wh/kg50C+FPV, high-burst
Li-ion (cylindrical)200-260 Wh/kg2-10CSurvey, mapping
Semi-solid state350-400 Wh/kg3-10CHeavy-lift, agriculture

Semi-solid & solid-state

The production-ready frontier: a stable gel or composite electrolyte delivers 350-400 Wh/kg with the safest thermal profile — ideal for heavy-lift and agricultural platforms. WES ships 1,500mAh to 80,000mAh across this family.

Solid State Specifications Guide →

High-voltage LiHV

3.85-3.95V/cell cells add ~5-10% usable energy in the same footprint. 4.45V max charge.

LIHV Specifications Guide →

Certified & tested

UN38.3, IEC, UL 1642, CE, CB — validated for air, sea and European market entry.

Specifications

Four numbers that matter

Voltage, capacity, C-rating and energy density. Learn them once, evaluate any datasheet in minutes.

2.1 Voltage — and the LiHV question

ConfigurationLiPo nominalLiHV nominalMax chargeUplift
6S22.2V23.1V26.7V+4%
14S51.8V53.9V62.3V+4%
24S88.8V92.4V106.8V+4%

Full 1S-6S voltage tables, capacity tiers and temperature derating: LIHV Specifications Guide.

2.2 Capacity — the conversion

Wh = mAh × Voltage ÷ 1000
Example: 5000mAh × 15.4V (4S LiHV) ÷ 1000 = 77Wh

2.3 C-Rating — how much current

Max Current (A) = Capacity (Ah) × C-Rating
Example: a 3C 66Ah pack delivers 198A continuous; a 10C burst is 660A.

Under-speccing C-Rating causes voltage sag under load — the drone loses lift at the worst moment and the pack overheats. The most under-specified parameter in drone batteries.

2.4 Energy density & cycle life

ChemistryField cycle lifeWES guide reference
LiPo (pouch)200-400 cycles
Li-ion (cylindrical)500-1000 cycles
Solid-state / semi-solid500-800 typical · 1,000+ ratedSpecs Guide

Store at ~50% charge, avoid full discharges, keep below 40°C during charge.

Applications

One battery platform, many missions

The same chemistry rarely fits an FPV racer and a crop-spraying drone. Match the pack to the mission.

Industrial heavy-lift drone in flight at dusk

Heavy-lift & logistics: semi-solid delivers the endurance to move real payloads.

FPV / Racing

LiPo, max C-rating

High-burst discharge for aggressive maneuvers. 6S high-discharge LiPo packs.

Survey / Mapping

Li-ion / LiHV, endurance

Maximum air time for cameras and LiDAR to cover more area per sortie.

Agriculture

Semi-solid / Li-ion, 14S

Longer spraying cycles with fewer battery swaps in humid field conditions.

Compliance

The gate you cannot skip

If your drone crosses a border, the battery must carry the right certifications. Non-compliance blocks shipments and exposes you to liability.

Drone battery undergoing thermal and safety testing in laboratory

Every WES pack is validated to the standards your market requires.

  • UN38.3 — transport safety testing
  • IEC 61960 / 62133 — performance & safety
  • UL 1642 — North America safety
  • CE / CB / RoHS — European market access
OEM / ODM

From spec to mass production

WES is a direct cell-to-pack manufacturer — not a reseller. We control the entire chain, from cell production to final assembly.

01

Requirement

Mission profile, environment, volume forecast.

02

Design

Cell selection, pack layout, BMS, thermal strategy.

03

Prototype

Functional samples for bench and flight testing.

04

Validate

Cycle life, thermal abuse, vibration, transport testing.

05

Produce

Tooling, QC, and on-time delivery to your build plan.

WES automated battery cell-to-pack manufacturing line

Custom form factor, voltage, capacity, BMS and connectors — engineered to your airframe.

Request a Quote

Start your custom battery program

Tell us your payload, flight time, operating environment, and target volume. Our engineering team responds with a feasibility assessment and quotation.

Or write to us directly: Info@wesbattery.com

FAQ

Frequently asked questions

LiPo (pouch) offers the highest discharge rates but moderate energy density and safety. Li-ion (cylindrical) offers good energy density and excellent cycle life inside a robust steel can. Semi-solid offers the highest energy density (350-400 Wh/kg at cell level) and the safest chemistry, at a higher cost. Choose based on whether you prioritize current, endurance, or energy per kilogram.
Yes. LiHV cells at 3.85-3.95V nominal (4.45V max charge) hold roughly 5-10% more usable energy than standard 3.7V cells at the same weight. The trade-off is a modest reduction in cycle life, plus the need for an HV-capable charger. Full tables: LIHV Specifications Guide.
Your continuous C-rating should comfortably exceed the aircraft's maximum sustained current. A heavy-lift drone that spikes to 400A with a 66Ah pack needs about 6C of continuous headroom. Under-spec the C-rating, and the pack sags under load.
At minimum, UN38.3 for transport, plus IEC 61960/62133 or UL 1642 for safety. CE marking covers the European market, and RoHS covers hazardous substances. Larger fleets increasingly expect IATF 16949 process certification.
You provide a mission profile and target specs; we engineer a pack to your form factor, voltage, capacity, BMS and connector, then build prototypes, validate them, and move to mass production. First samples typically arrive in weeks. See custom drone battery OEM.
Yes, under IATA dangerous-goods rules: cells must pass UN38.3, be declared correctly, and fall within state-of-charge (SoC) limits — commonly ≤30% for air cargo. Work with a manufacturer that supplies UN38.3 test summaries and complete documentation.