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125/250kW Central E-axle for Electric Tractors - Quality by China Suppliers & Factory
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125/250kW Central E-axle for Electric Tractors - Quality by China Suppliers & Factory

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Introducing the PMEA40000Z Central E-axle (rear/Mid-axle), a cutting-edge solution designed for optimal electric vehicle performance. Manufactured in China by leading suppliers, this e-axle guarantees outstanding power performance, making it an essential component for modern electric drives.

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The Pumbaa PMEA40000Z Central E-axle showcases a remarkable control strategy advantage, ensuring precise handling and efficiency. Its excellent power delivery enhances vehicle dynamics, offering both speed and reliability.

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Additionally, this product comes with a significant cost advantage, allowing manufacturers to achieve high performance without compromising on affordability. Trust in our factory’s expertise to provide you with reliable and high-quality e-axle solutions. Elevate your electric vehicle’s performance with the PMEA40000Z today!

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    Advantage

    Control Strategy
    • Torque assist can realize power without interrupting gear shifting.
    • Realizes heavy-load ramp-up shifting and improves operational efficiency.
    • Optimizes control strategy and improves driving comfort.
    Power Performance
    • Total system power is up to 440KW.
    • Maximum climbing degree of the 49T tractor is more than 35%.
    • Maximum speed can reach up to 125km/h.
    Cost Advantage
    • 300,000 km long-lasting oil and maintenance-free wheel-end bearings lower maintenance costs.
    • High efficiency assembly with low power consumption reduces overall operating costs.
    • System B10 service life reaches 1 million kilometers for worry-free usage.

    Matching Vehicle Type

    Pumbaa PMEA40000Z Central E-axle (rear/Mid-axle)

    Compatible Vehicle Type: Tractor

    Technical Parameters

    Parameter Item Specification Details
    Rated axle load(kg) 13000
    Axle housing forming method Stamping and welding
    Housing cross-section(mm) 135×150×16
    Gearbox ratio 13.203/4.367
    Wheel ratio 3.947
    Nominated/peak output torque(Nm) 320/820
    Rated/peak power(kw) 125/250
    Maximum speed(rpm) 11000
    Motor dimensions(mm) Φ354×270
    Leaf spring mounting distance(mm) 1040
    Rim mounting distance(mm) 1875
    Overall width(mm) 2420
    Brake specifications Drum pose/φ410×220
    Air chamber size/connection size(mm) 30/24 M16×1.5
    Maximum braking torque(0.8MPa) 2×18000Nm
    Wheel bolt specifications 2-10×M22×1.5
    Wheel bolts are distributed in a circle diameter(mm) Φ335
    Locate the stop(mm) Φ280.8
    Assembly weight(kg) 1030

    Application Examples

    Small batches are used in Sany Heavy Truck, Baidu Commercial Vehicle (Deepway), Foton Daimler, Zero One Smart Card, etc.

    Pumbaa PMEA40000Z (1)
    Pumbaa PMEA40000Z (2)
    Pumbaa PMEA40000Z (3)

    Product R&D Process

    Central e-axle test:

    Noise test of electric bridge bench

    Noise test of electric bridge bench

    Durability test of electric drive bridge bench

    Durability test of electric drive bridge bench

    Assembly air tightness test

    Assembly air tightness test

    Vibration test of electric bridge platform

    Vibration test of electric bridge platform

    Road testing of the whole vehicle

    Road testing of the whole vehicle

    Customer loading test

    Customer loading test

    The Battle for Breakthrough in Electric Drive Axles: A "Power Revolution" from Decentralization to Integration

    Abstract

    The electric drive axle (eAxle), the "power hub" of electric vehicles (EVs), is undergoing a technological breakthrough from "decentralized components" to "highly integrated systems." This paper analyzes its technical challenges, breakthrough paths, and future trends, revealing how it drives EVs toward "greater efficiency and smarter intelligence."

    1. Introduction

    Global EV penetration exceeded 18% in 2024, with the electric drive axle (eAxle) emerging as the "power heart" whose technological advancements directly impact range, performance, and safety—key drivers of industrial upgrading.

    2. Technical Challenges: Three Bottlenecks of Decentralized Design

    Traditional eAxles use a "motor + inverter + reducer" decentralized layout, facing:

    • Large size: Accounting for 15%-20% of vehicle weight (early solutions);
    • High cost: Independent component procurement + assembly, costing over 30% of total;
    • Low efficiency: Energy loss up to 15% (copper + magnetic losses).
    Structural Diagram of Electric Drive Axle

    (Structural Diagram of Electric Drive Axle)

    3. Technological Breakthroughs: Four Leaps from Decentralization to Integration

    3.1 High Integration: Reducing Size and Cost
    Through "integrated die-casting + modular design," eAxles now integrate motors, inverters, and reducers into a single housing (e.g., Huawei DriveONE, Tesla eAxle), reducing volume by 40% and cost by 25% (e.g., XPeng G6 eAxle).

    3.2 Wide-Bandgap Devices: Efficiency Surpassing 97%
    SiC/GaN replaces silicon-based IGBTs, cutting conduction losses by 50% and increasing switching frequency 10x (e.g., Porsche Taycan eAxle), achieving 97% system efficiency and extending range by 10%.

    3.3 800V High-Voltage Adaptation: Balancing Ultra-Fast Charging and Performance
    Supporting 800V high-voltage platforms (e.g., XPeng G9, Porsche Taycan), eAxles match 250kW ultra-fast chargers, enabling 300km range top-up in 10 minutes, while reducing current ripple (<2%)

    3.4 Intelligent Synergy: Deep Integration with Autonomous Driving
    Equipped with sensors (current/temperature/position) and communication modules (CAN/Ethernet), eAxles receive autonomous driving commands (e.g., "accelerate to 80km/h in 2 seconds") and pre-adjust torque output (e.g., Tesla FSD eAxle) with <10ms latency.

    Electric Drive Axle Technology

    (Electric Drive Axle Technology)

    4. Future Trends: From "Power Unit" to "Mobile Energy Storage Node"

    By 2027, mainstream eAxles will:

    • Achieve power density exceeding 6000W/kg (current 4000W/kg);
    • Integrate V2G (vehicle-to-grid) functionality for grid balancing (e.g., Germany’s V2G pilot);
    • Adopt AI for intelligent control (e.g., predictive energy management via NPU).
    Electric Drive Axle

    ( Electric Drive Axle)

    Conclusion

    Breakthroughs in electric drive axles are driving EVs from "mechanical propulsion" to "intelligent energy nodes." With future advancements in integration, wide-bandgap devices, and AI, eAxles will emerge as the core hub for "power + energy storage + intelligence," supporting global carbon neutrality goals.

    Frequently Asked Questions

    What are the core control advantages of the Pumbaa PMEA40000Z E-axle?
    The Pumbaa PMEA40000Z features torque assist to enable seamless gear shifts without power interruption. It also supports heavy-load ramp-up shifting to optimize operational efficiency and improve overall driving comfort.
    What vehicle types and brands are compatible with this central e-axle?
    It is mainly matched with tractors. Small batches are already successfully deployed in Sany Heavy Truck, Baidu Commercial Vehicle (Deepway), Foton Daimler, and Zero One Smart Card.
    How does the Pumbaa PMEA40000Z reduce operating and maintenance costs?
    It incorporates 300,000 kilometers of long-lasting oil and maintenance-free wheel-end bearings to cut maintenance costs. Additionally, its highly efficient assembly lowers power consumption, and the system boasts a B10 service life of 1 million kilometers.
    What testing processes does the electric drive axle undergo during R&D?
    The R&D process includes comprehensive testing such as noise testing of the electric bridge bench, durability testing, assembly air tightness testing, vibration testing on the electric bridge platform, road testing of the whole vehicle, and customer loading tests.
    Why is the industry moving from decentralized designs to integrated eAxles?
    Decentralized designs suffer from large sizes, high costs, and low efficiency. Integrated eAxles combine the motor, inverter, and reducer into a single housing, reducing volume by 40% and costs by 25% while increasing efficiency up to 97% using SiC/GaN devices.