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Pumbaa Electric Shuttle Bus Chassis - Premium Quality from China Suppliers and Factory with 6-Phase Motor and Disc Brakes
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Pumbaa Electric Shuttle Bus Chassis - Premium Quality from China Suppliers and Factory with 6-Phase Motor and Disc Brakes

Our product features the advanced Pumbaa 6-phase motor, ensuring exceptional performance and efficiency. Equipped with a reliable CATL282° battery, it supports extended usage in demanding environments. The vehicle's robust front axle boasts a 10T design, providing stability and control, while the steering drive axle enhances maneuverability for smoother navigation. The rear axle, designed with a 13T configuration, contributes to the overall durability of the system. Safety is paramount, which is why our model includes both front and rear disc brakes, ensuring responsive stopping power. As a trusted factory and supplier based in China, we are dedicated to delivering high-quality products tailored to meet your specific needs

    Powertrain Parameters

    Rated/peak power 145/245KW
    Rated/peak torque 1100/3329NM
    Maximum speed 3000r/min

    Applications

    (Electric chassis for shuttle bus)

    Electric chassis for shuttle bus (2)
    Electric chassis for shuttle bus (3)

    The Role of Automotive Chassis and the Necessity of Chassis Design

    Unlike traditional vehicles, electric vehicles (EVs) primarily utilize renewable clean energy, thus significantly reducing vehicle pollutant emissions. This has positioned the industry as an emerging sector. To promote the development of the EV industry, improving chassis design during EV development is essential.

    I. The Core Significance of EV Development and Chassis Technology

    Driven by socioeconomic progress and sustainable development principles, electric vehicles (powered by clean energy) have emerged as a pivotal industry in the transportation sector. Unlike traditional internal combustion engine (ICE) vehicles that rely on engine-driven powertrains, the competitiveness of EVs stems from innovations in the "three-electric systems" (battery, motor, and electronic control). The chassis, as the critical carrier that supports, transmits, and coordinates these core components, directly determines vehicle range, safety, and space utilization.

    Traditional ICE vehicle chassis consist of four systems: transmission, running, steering, and braking, primarily serving engine power output. In contrast, NEV chassis must integrate electric drive systems, energy management, and battery layouts. Their design logic has shifted from "adapting to engines" to "serving the electric drive ecosystem," marking a key technical differentiator between EVs and conventional vehicles.

    Electric chassis for shuttle bus (4)

    II. Traditional vs. Electric Chassis: Technical Differences and Design Imperatives

    1. Structural Differences: From "Mechanically Dominated" to "Electric-Drive Integrated"

    Traditional chassis center around the engine, distributing power through mechanical transmissions. NEV chassis, however, focus on the electric drive system. Without an engine, they must integrate motors, batteries, and electronic control modules, leveraging by-wire technologies (e.g., steer-by-wire, brake-by-wire) for more efficient collaborative control.

    2. Design Imperatives: Comprehensive Optimization of Space, Performance, and Efficiency

    The proportion of chassis space within the vehicle body directly affects interior usability and cargo capacity. Lightweight design determines range, while precise battery placement influences vehicle center of gravity and crash safety. Thus, NEV chassis design must simultaneously achieve three goals: maximizing space utilization, minimizing energy consumption, and optimizing safety.

    III. Core Design Features of Electric Chassis

    • Power Reconstruction: Replacing traditional engines with motors and electronic controls boosts power transmission efficiency by over 30%.
    • Skateboard Chassis: Integrates drive, battery, and control systems. The body connects to the chassis via software interfaces, unlocking design flexibility (as demonstrated by Tesla and GM).
    • Lightweight and Precision Layout: "Sunken" battery pack designs (e.g., Nissan Leaf’s irregular battery) lower the chassis height, while high-strength materials enhance load-bearing capacity.
    • Intelligent Collaboration: Widespread adoption of by-wire technologies (e.g., GM’s AUTOnomy replacing mechanical transmissions with electronic controls) enables OTA upgrades and functional expansion.
    Electric chassis for shuttle bus (5)

    Frequently Asked Questions

    Q What are the key powertrain parameters of this electric chassis?
    The electric chassis features a rated/peak power of 145/245KW, a rated/peak torque of 1100/3329NM, and a maximum speed of 3000r/min.
    Q What is the primary application of this chassis?
    This specific chassis is designed as an electric chassis optimized for shuttle bus applications.
    Q How does an electric vehicle (EV) chassis differ from a traditional one?
    Traditional chassis are mechanically dominated and designed around the engine. EV chassis transition to an "electric-drive integrated" structure, housing the battery, motor, and control systems, often utilizing by-wire technologies for control.
    Q What is a skateboard chassis and what are its benefits?
    A skateboard chassis integrates the drive, battery, and control systems into a flat platform. By using software interfaces to connect the body, it offers high design flexibility and space optimization.
    Q Why is lightweight design crucial for electric vehicle chassis?
    Lightweight design directly affects the driving range of the vehicle. By reducing weight and optimizing battery placement, manufacturers can maximize space, minimize energy consumption, and enhance crash safety.