High-Efficiency 66/123kW Central E-Axle for 4.5T-6.0T Logistics Vehicles | China Suppliers & Factory
Performance Advantages of Pumbaa PMEA5300Z Central E-axle
- Use of 300,000 kilometers long-lasting oil and maintenance-free bearings at the wheel ends lowers maintenance costs.
- High assembly efficiency and low power consumption lead to lower operating costs.
- System B10 service life can reach 1 million kilometers, offering a worry-free lifecycle.
- No transmission shaft required, simplifying the power system mount.
- The motor and gearbox are integrated and installed directly on the drive axle.
- Creates plenty of chassis space for flexible battery arrangement.
- Helical gears replace helical bevel gears, reaching up to 98% mechanical efficiency.
- High-efficiency oil-cooled motor and active lubrication system support system efficiency up to 93%.
- Significant weight reduction: saves over 400kg compared to double-axle central pure electric drive systems.
Pumbaa PMEA5300Z Central E-axle Technical Parameters
| Rated axle load (kg) | 3500 |
| Axle housing forming method | Stamping and welding |
| Housing cross-section (mm) | 105×105×6 |
| Top speed (km/h) | 100 |
| Reduction ratio | 16.6 |
| Nominated/peak output torque (Nm) | 135/320 |
| Rated/peak power (kw) | 66/123 |
| Maximum speed (rpm) | 12000 |
| Motor dimensions (mm) | Φ275×280 |
| Leaf spring mounting distance (mm) | 952 |
| Rim mounting distance (mm) | 1555 |
| Overall width (mm) | 1757 |
| Brake Specifications (Air Brake) | Drum pose: φ310×100 |
| Maximum braking torque (0.6MPa) | 2×5200Nm |
| Wheel bolt specifications | 12-M22×1.5 |
| Wheel bolt distribution circle diameter (mm) | Φ222.25 |
| Locate the stop (mm) | Φ160.8 |
| Assembly weight (kg) | 310 |
PMEA 5300Z e-axle Application Case
It is used in Nanlong, XCMG, Hypert, etc.
PUMBAA Electric Drive Bridge Product Development Process

Devise
Design simulation using professional CAE software to optimize the structure

18T sanitation truck
Adoption of a professional product development management system

Experimental
Adopted the strict standard after 3 rounds of 146 tests in 6 categories

Production
Adoption of advanced production line equipment to ensure quality and consistency
Working Principle of Electric Vehicle Electric Drive Axle: From Energy Transfer to Performance Optimization
In the powertrain of electric vehicles (EVs), the electric drive axle serves as the "final mile" core component connecting the motor to the wheels. By integrating components like the drive motor, reducer, differential, and half-shaft, it directly impacts vehicle range, power response, and driving smoothness. This article explains its working principle in detail, revealing how it achieves efficient "electrical → mechanical" energy transfer.

(Structure Diagram of Electric Drive Axle)
I. Core Components of the Electric Drive Axle: An Integrated "Energy Hub"
The electric drive axle comprises four key modules: drive motor, reducer (or transmission), differential, and half-shaft, with some models adopting "three-in-one" or "multi-in-one" integration (e.g., motor + reducer + controller) for further simplification.
- Drive Motor: Most use permanent magnet synchronous motors (PMSMs) to convert electrical energy into mechanical energy, outputting high-speed (10,000-20,000 rpm), low-torque (100-300 N·m) power.
- Reducer: A single or multi-stage gear set that "reduces speed and increases torque," converting the motor’s high speed to the wheel-required low speed (≈1,500-3,000 rpm) and high torque (1,000-3,000 N·m).
- Differential: Allows left and right wheels to rotate at different speeds (e.g., outer wheels spin faster when turning), preventing tire scrubbing and ensuring steering flexibility.
- Half-Shaft: A high-strength shaft connecting the differential to the wheels, transmitting torque and supporting wheel loads.

(Appearance Diagram of Electric Drive Axle)
II. Working Principle of the Electric Drive Axle: Four Steps of Energy Transfer
- 1 Electrical Energy Input: High-voltage lithium batteries (300-800V DC) supply DC power, which is converted to three-phase AC by the motor controller (including an inverter) and fed into the drive motor. The controller dynamically adjusts output power via CAN bus, using real-time data like accelerator pedal signals, vehicle speed, and battery state of charge (SOC) (e.g., invoking peak discharge during rapid acceleration).
- 2 Electromagnetic Conversion: Three-phase AC input to the motor’s stator windings generates a rotating magnetic field (RMF) with speed ns= 60f/P (f: current frequency; p: pole pairs). The rotor (embedded with permanent magnets) follows the RMF due to the "minimum reluctance principle," synchronizing rotor speed nr with ns to achieve "electrical → mechanical" conversion (efficiency: 95%-97%).
- 3 Speed Reduction and Torque Amplification: The motor’s high-speed output enters the reducer, which uses gear ratios (e.g., 8-12:1) to lower speed and boost torque. For example, 10,000 rpm input with 200 N·m torque becomes 1,000 rpm output with 2,000 N·m torque after a 10:1 ratio, matching wheel drive requirements.
- 4 Differential Regulation and Power Output: The reduced power is transferred to the differential, which distributes torque between left and right wheels via planetary gears—synchronizing speeds in straight-line driving and allowing differential speeds during turns to prevent tire dragging. Finally, the differential sends power to the wheels via half-shafts, propelling the vehicle.

(Structure Diagram of Electric Drive Axle)
III. Technical Advantages of the Electric Drive Axle: Why It’s a Standard in EVs?
Compared to traditional ICE axles (only reducers + differentials), the electric drive axle’s integrated and intelligent design offers three key benefits:
- High Efficiency: Eliminates clutches, multi-speed transmissions, and other components, shortening the transmission chain by 30% and reducing energy loss by 15%-20%—directly extending range (e.g., EVs with electric drive axles achieve over 600km range).
- Rapid Response: Motor torque peaks within 0.1 seconds, paired with the reducer’s fast gear engagement, delivering superior acceleration (e.g., Tesla Model 3 achieves 0-100km/h in 5.6 seconds).
- Low Noise: Eliminates gear-shifting shocks from multi-speed transmissions, and simplified mechanics reduce vibrations—lowering cabin noise by 5-8 dB for a more comfortable ride.

(Structure Diagram of Electric Drive Axle)
Conclusion
The electric drive axle is the "nerve ending" of EV power transmission, enabling efficient "electrical → mechanical" energy conversion through the coordinated operation of the motor, reducer, differential, and half-shaft. With advancements in integration (e.g., "multi-in-one" axles), materials (e.g., carbon fiber half-shafts), and smart control (e.g., VCU co-tuning), future electric drive axles will further optimize energy consumption and performance, becoming a critical enabler for global new energy vehicles to achieve "longer range and stronger power."


