EV Truck Tire Challenges
The large-scale adoption of new energy trucks is facing a critical test from the "under-the-wheels"—the adaptability of tire technology has become a crucial variable determining the industry's development speed.
With the rapid expansion of the new energy heavy-duty truck market, total terminal sales reached 224,000 units in 2025, a year-on-year increase of 1.7 times, and the penetration rate jumped from 13.6% in 2024 to 28%, with the December penetration rate approaching 50%.
However, behind the continuously rising data, the problem of tires "dragging down" performance is becoming increasingly prominent, becoming a bottleneck restricting the industry's progress towards high-quality development.
Compared to traditional diesel trucks, the technological characteristics of electric trucks place drastically different demands on tires. Due to the large-capacity battery packs, the overall vehicle weight generally increases by 30% to 50%, requiring tires to withstand greater loads for extended periods. The instantaneous peak torque characteristic of the electric motor significantly increases the shear force on the tire tread during start-up and acceleration, accelerating tread wear.
At the same time, "range anxiety" is forcing energy consumption control, requiring tires to have lower rolling resistance. Technicians have stated bluntly that while traditional fuel-powered heavy-duty trucks' drive wheels can typically travel 300,000 kilometers, the lifespan of some new energy heavy-duty truck drive wheels is even difficult to exceed 100,000 kilometers. The "three highs dilemma" of electric truck tires—high wear, high failure rate, and high abnormal wear—is becoming increasingly severe.
Behind this dilemma lies the comprehensive challenge posed to tires by the unique working mechanism of electric trucks. Electric motors can output peak torque instantaneously, far exceeding that of diesel engines, causing the drive wheels to experience severe torque impacts during start-up and acceleration, easily leading to abnormal wear such as tread tearing and shoulder chipping. Simultaneously, the addition of batteries not only increases the overall vehicle weight but also alters the axle load distribution, resulting in uneven tire contact pressure and accelerating localized wear.
Furthermore, low rolling resistance has become another crucial requirement for electric truck tires—calculations show that every 8% reduction in rolling resistance can significantly reduce energy consumption per 100 kilometers, placing higher demands on the precision of the tread compound and tire skeleton structure.
It is worth noting that, with the elimination of engine noise, tire rolling noise has become the primary noise source for electric trucks. Some European cities have imposed low-noise requirements on nighttime transport vehicles, further pushing tire acoustic performance into their evaluation systems.
To address these challenges, tire companies are accelerating systematic innovation from material formulations to structural design, launching a comprehensive technological revolution centered on "adapting to electrification."
At the materials level, companies are gradually phasing out traditional formulations and shifting to high-grip silicone-based tread compounds. Through the blending of nano-functionalized carbon black and modified silica, they are improving the rubber compound's tear and cut resistance while reducing internal friction to achieve lower rolling resistance.
Zhongce Rubber's "X-Carbon Extreme" technology, by introducing a highly oriented aramid short fiber network into the rubber compound, improves tire wear resistance by 50% and reduces shoulder wear by 60%, effectively addressing the pain point of abnormal wear.
In terms of structural design, companies are strengthening the sidewall skeleton material, using high-strength steel wire or alloy skeletons, and optimizing the cord angle to improve load-bearing capacity and fatigue resistance. Guizhou Tire's "Electric Truck" series significantly improves single-tire load-bearing capacity by strengthening the tire carcass structure, making it suitable for the high-load operating conditions of electric trucks.
Meanwhile, tire companies are also focusing on addressing key pain points in actual operation. To address the common puncture risk in long-distance transportation, some companies have introduced self-healing technology, applying special sealing materials to the inner layer of the tread. This quickly seals the puncture, reducing the risk of blowout and increasing safety redundancy.
In early 2026, Sailun Tire released its new energy-specific series of products, precisely addressing the short drive wheel life caused by the high peak torque and raised center of gravity of electric commercial vehicles, building a full-series product matrix covering heavy-duty trucks and light-duty trucks. Intelligentization is also a crucial direction for this round of technological upgrades.
Bridgestone, Goodyear, and other companies have launched intelligent fleet tire management systems that can monitor tire pressure, temperature, and wear status in real time, helping fleets achieve preventative maintenance and improve uptime efficiency.
Industry experts point out that the core of new energy truck tire development lies in finding the optimal balance between low rolling resistance, high wear resistance, and strong grip. These three factors inherently present a performance trade-off, requiring systematic innovation in formulation, structure, and processes to achieve the optimal solution. As one tire company engineer put it, "Today's electric truck tires are like custom-made running shoes for athletes; they need to be lightweight, durable, and have excellent grip."
Currently, leading domestic tire companies such as Zhongce Rubber, Guizhou Tire, and Sailun have completed product deployments in the field of new energy trucks. Their new product series have completed joint calibration with mainstream automakers, covering various vehicle types including heavy trucks, light trucks, and mini-trucks.
With continuous technological iteration, the synergistic adaptation capabilities between tires and electric chassis will continue to improve, potentially clearing "roadside obstacles" for the widespread adoption of new energy trucks and injecting more robust technological momentum into the construction of a green logistics system.



