EV Motor Core Market Analysis | 2026-2031

EV Motor Core Market Analysis | 2026-2031

EV Motor Core Market Analysis | 2026-2031
Report code - SR3754
Analyst: Jagriti Lal Published On : Aug,2026 No. of Pages: 120
EV Motor Core Market Size, Share, Trend, Forecast, Competitive Landscape & Growth Opportunities: 2026-2031
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Market Size & Opportunities

Global Demand Analysis & Sales Opportunities in EV Motor Core Market

  • The annual demand for EV Motor cores was USD 5.6 billion in 2025 and is expected to reach USD 6.1 billion in 2026, up 8.2% from the value in 2025.

  • During the forecast period (2026-2031), the market is expected to grow at a CAGR of 9.4%. The annual demand will reach USD 9.5 billion in 2031, nearly 2.4 times the 2025 level.

  • Asia Pacific had a market share of >60% in 2025, generating the greatest demand across regions.

  • HEVs currently dominate the market, while BEVs are expected to become/remain the leading growth and demand opportunity during the forecast period.

  • Among the motor types, EESM (Electrically Excited Synchronous Motor) is anticipated to offer significant growth opportunities, supported by its efficiency and suitability for advanced EV powertrain applications.

  • Among the manufacturing types, punching/stamping is expected to remain a key segment, while 0.1–0.2 mm lamination thickness is expected to witness strong demand due to the increasing need for higher motor efficiency and reduced energy losses.

  • By material type, electrical steel is expected to remain the dominant segment, owing to its favorable balance of cost, magnetic performance, and manufacturability across EV motor applications.

“As per the Senior Analyst at Stratview Research, the global EV motor core market will generate a cumulative sales opportunity worth USD 47 billion during 2026-2031. During the forecast period, BEVs, EESM motor type, punching/stamping manufacturing, 0.1–0.2 mm lamination thickness, and Asia Pacific are some of the high-opportunity segments to capitalize on.”

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Market Statistics

Have a look at the sales opportunities presented by the EV motor core market in terms of growth and market forecast.

Market Statistics

Value (in USD Billion)

Market Growth (%)

Market Size in 2025

USD 5.6 billion

-

Market Size in 2026

USD 6.1 billion

YoY Growth in 2026: 8.2%

Market Size in 2031

USD 9.5 billion

CAGR 2026-2031: 9.4%

Cumulative Sales Opportunity during 2026-2031

USD 47 billion +

-           

Top 10 Countries’ Market Share in 2025

USD 4 billion +

> 80%

Top 10 Companies’ Market Share in 2025

USD 3 billion +

>60%

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Market Dynamics

The global EV motor core market is being driven by the rapid electrification of the automotive industry and the increasing demand for high-efficiency, high-performance electric drivetrains. EV motor cores are critical components of electric motors, forming the rotor and stator and directly influencing power density, energy efficiency, thermal management, and overall drivetrain performance. As automakers expand their EV portfolios and introduce higher-performance powertrains, demand is increasing for advanced motor cores manufactured with high-grade electrical steel, thinner laminations, and high-precision production technologies.

At the same time, the growing adoption of BEVs and HEVs, increasing use of multi-motor architectures, and continued development of advanced motor technologies are creating additional opportunities for motor core manufacturers. The market is also benefiting from government subsidies, tax incentives, emissions regulations, and electrification policies that are accelerating EV adoption across major markets

Market Drivers:

Rapid Global EV Adoption and Increasing Demand for High-Efficiency Electric Drivetrains

The rapid adoption of electric vehicles is significantly driving demand for EV motor cores. As BEVs and HEVs expand across passenger and commercial vehicle segments, every additional electric motor directly translates into demand for motor cores. This impact is further amplified by the growing adoption of multi-motor architectures, particularly 2-motor, 3-motor, and 4-motor configurations, which increase motor core content per vehicle.

BEVs represent the strongest high-growth opportunity because they rely entirely on electric propulsion and often incorporate one or more high-performance motors per vehicle. This is increasing requirements for motor cores with higher efficiency, power density, and thermal stability, while encouraging the adoption of advanced electrical steel, thinner laminations, and precision manufacturing technologies.

Government Regulations and Electrification Policies Accelerating EV Production

Government subsidies, tax incentives, emissions regulations, and policies promoting vehicle electrification are accelerating EV adoption worldwide. These initiatives are particularly important in emerging Asia-Pacific and Latin American economies, where policy support is encouraging EV production and consumption. At the same time, expanding EV model diversity across passenger cars, SUVs, trucks, and other vehicle categories is creating sustained demand for specialized motor cores.

Increasing Adoption of Multi-Motor Architectures and Advanced Motor Technologies

The growing adoption of multi-motor configurations is creating additional demand for EV motor cores. Two-motor configurations currently represent a dominant opportunity because they provide a balance between performance and practicality, while 3-motor and 4-motor configurations are emerging as faster-growing applications, particularly in premium and performance-oriented EVs.

At the same time, advances in motor technologies are creating opportunities for specialized motor core designs. While PMSM remains the dominant motor technology, EESM is emerging as a high-growth opportunity because it reduces dependence on permanent magnets while maintaining relatively high efficiency.

“As per an analyst at Stratview Research, the EV motor core industry is entering a phase where electrification, motor efficiency, advanced materials, and precision manufacturing are becoming the primary competitive differentiators. Future growth will be driven by accelerating EV adoption, increasing use of multi-motor architectures, advances in motor technologies, and continuous innovation in electrical steel, ultra-thin laminations, and high-precision manufacturing.

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Market Challenges:

Raw Material Constraints and Rising Costs of High-Grade Electrical Steel

EV motor core manufacturers face challenges associated with the cost and availability of advanced electrical steel. Electrical steel remains the dominant material because of its balanced magnetic performance, established supply chain, and cost-effectiveness. However, increasing demand for high-grade and thinner electrical steel is putting greater pressure on material availability and costs.

The shift toward thinner laminations, particularly the 0.1–0.2 mm range, further increases material and processing requirements. Although thinner laminations can significantly reduce core losses and improve motor efficiency, they are more difficult to process and handle, increasing manufacturing complexity and cost.

Manufacturing Complexity and Cost Pressures in High-Precision Motor Core Production

The production of EV motor cores requires sophisticated processes, including stamping, stacking, bonding or welding, and insulating coatings, to minimize energy losses and achieve optimal magnetic performance. As automakers demand higher efficiency, power density, and tighter tolerances, manufacturers must invest in increasingly precise production technologies.

At the same time, automakers are under pressure to reduce EV costs, creating intense pricing pressure throughout the motor core supply chain. Manufacturers must therefore balance high-precision production and advanced materials with cost-effective, scalable manufacturing. While punching/stamping remains the backbone of high-volume production because of its scalability and cost advantages, maintaining tight tolerances and high throughput with advanced electrical steel remains a key operational challenge.

Segments' Analysis

By EV Type

BEVs represent the strongest high-growth segment for motor cores because they rely entirely on electric propulsion. While HEV is dominant in today's market.

The EV motor core market is segmented by EV type into BEVs and HEVs. HEVs dominate the market while still growing and present a more cost-sensitive and transitional opportunity. They typically use smaller electric motors alongside internal combustion engines, which reduces motor core size and complexity. However, their broader adoption in cost-conscious markets creates steady, volume-driven demand. For suppliers, this segment rewards manufacturing efficiency and scalability rather than cutting-edge performance.

Within this segment, BEVs represent the strongest high-growth segment for motor cores because they rely entirely on electric propulsion, often using one or more high-performance motors per vehicle. This directly translates into higher volume demand and stricter performance requirements for motor cores, especially in terms of efficiency, power density, and thermal stability. As OEMs push for longer range and faster acceleration, there is increasing emphasis on advanced electrical steel, thinner laminations, and precision manufacturing, making BEVs a premium, innovation-driven market for motor core suppliers.

By Vehicle Type

LVs dominate the market and are the fastest-growing vehicle type because passenger EV adoption is accelerating globally, driven by regulations and urban mobility trends.

The market is segmented by vehicle type into LV and M&HCV. LVs dominate the market and are the fastest-growing vehicle type because Passenger EV adoption is accelerating globally, driven by regulations, urban mobility trends, and OEM electrification targets. This creates massive, repeatable demand for motor cores, with a strong push toward cost optimization, high-speed manufacturing, and incremental efficiency gains. In this segment, even small improvements in core losses or material usage can scale into a significant competitive advantage because of the sheer production volumes.

M&HCVs, on the other hand, are a high-value, performance-driven opportunity. Electrification in trucks and buses is gaining momentum, especially in logistics and public transport, where total cost of ownership and emissions regulations are critical. These vehicles require much larger and more robust motor cores capable of handling high torque, heavy loads, and long duty cycles. This drives demand for thicker stacks, superior thermal management, and materials, making each unit of motor core significantly higher in value compared to LVs.

By Motor Type

PMSM dominates the EV landscape and represents the largest and most mature opportunity. While others (EESM) are the fastest-growing, it removes dependence on permanent magnets while maintaining relatively high efficiency.

PMSM (Permanent Magnet Synchronous Motors) dominate the current EV landscape and represent the largest and most mature opportunity. Their high efficiency, power density, and compact size make them the preferred choice for most passenger EVs. For motor core manufacturers, this segment demands precision engineering, high-grade electrical steel, and tight loss control to maximize efficiency. While volumes are high, competition is intense, so differentiation comes from material innovation and manufacturing accuracy.

EESM (Electrically Excited Synchronous Motors) is the fastest-growing motor type because other emerging designs are where the strategic shift is happening. These motors remove dependence on permanent magnets while maintaining relatively high efficiency, making them increasingly attractive as automakers look to reduce rare earth reliance. Although current volumes are low, this segment is gaining traction. Motor cores here require more complex designs and precise manufacturing due to rotor excitation systems, creating a high-value, innovation-driven opportunity.

By Manufacturing Technique Type

Punching/Stamping is the backbone of the industry and dominates high-volume production. It’s the most cost-effective and scalable method as well as the fastest-growing manufacturing technique.

Punching/Stamping dominates the market as well as being the fastest-growing manufacturing technique for high-volume production. It’s the most cost-effective and scalable method, making it the default choice for mass-market EVs, especially in the light vehicle segment. The real opportunity here isn’t just volume; it’s in high-speed, high-precision stamping using advanced dies and ultra-thin electrical steel to reduce core losses. Suppliers that can push tolerances tighter while maintaining throughput will capture the largest share of demand.

Laser cutting sits at the opposite end of the spectrum: low volume but high flexibility. It’s widely used for prototyping, small production runs, and complex geometries that are difficult to achieve with conventional stamping. While it cannot match stamping in terms of cost at scale, it plays a critical role in accelerating EV development cycles and supporting customized or premium applications.

By Material Type

Electrical steel will remain dominant for the foreseeable future. While Soft magnetic composites (SMCs) have the fastest growth opportunity because it supports complex 3D geometries and reduce eddy current losses.

Electrical steel is the undisputed foundation of the market. It dominates due to its balanced properties, established supply chain, and cost-effectiveness. Most EV motor cores today rely on high-grade silicon steel, with ongoing innovation focused on thinner gauges and lower core losses. This segment offers massive volume and steady growth, but competition is tight, so advantage comes from material quality, processing precision, and partnerships with steel suppliers.

Soft magnetic composites (SMCs) represent a more specialized and design-flexible opportunity. Their ability to support complex 3D geometries and reduce eddy current losses makes them attractive for next-generation motor designs, particularly in compact or high-speed applications. However, limitations in magnetic performance compared to electrical steel have restricted widespread adoption

By Lamination Thickness Type

The 0.2–0.5 mm range is the industry’s sweet spot and accounts for the bulk of motor core demand, making it dominant. While the 0.1–0.2 mm range has high efficiency, making it the fastest-growing lamination type.

The 0.2–0.5 mm range dominates the industry and accounts for motor core demand today. It offers a strong balance between magnetic performance, mechanical strength, and cost, making it ideal for mainstream EV applications. This segment is driven by scale, and the competitive edge lies in consistent quality, tight tolerances, and high-speed production capabilities.

The 0.1–0.2 mm segment is where high-efficiency innovation is happening. Thinner laminations significantly reduce core losses, especially at high frequencies, making them highly attractive for premium EVs and high-speed motors. However, they are more difficult to process and handle, which increases manufacturing complexity. This creates a high-value, technology-driven opportunity for suppliers capable of precision manufacturing.

Regional Analysis

Asia-Pacific is the clear centre of gravity for both demand and production. Dominates EV manufacturing. While Europe represents a growing opportunity.

Asia-Pacific is dominant for both demand and production. China, in particular, dominates EV manufacturing, supported by strong government policies, a mature supply chain, and large-scale domestic consumption. This makes the region the largest and most competitive market for motor cores, where success depends on cost efficiency, localization, and the ability to operate at a massive scale.

Europe represents a regulation-driven, high-value market, making it the fastest-growing region. Strict emission targets and aggressive electrification timelines are pushing automakers toward high-efficiency EV platforms. This increases demand for advanced motor cores with superior performance characteristics. While volumes are lower than in Asia-Pacific, the focus on premium vehicles and innovation creates strong margin opportunities for technologically advanced suppliers.

“The study indicates that over 80% of the global EV motor core market is concentrated within the top 10 countries, reflecting the industry’s strong alignment with leading electric vehicle production hubs and established automotive supply chains. These countries account for a significant share of global EV production, motor manufacturing, electrical steel consumption, and advanced motor core manufacturing activities.”

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Competitive Landscape

The market is consolidated, with over 20+ players. Leading players have strong market positions, supported by broad product portfolios, extensive distribution networks, and established industry experience.

The following are the key players in the EV motor core market.

  • Tesla

  • Mitsui High-Tec, Inc.

  • EGLA- EuroGroup Laminations

  • Yutaka Giken Co., Ltd

  • Xinzhi Group Co., Ltd

  • POSCO MOBILITY Solutions.

  • TOYOTA BOSHOKU CORPORATION

  • Ningbo Zhenyu Technology

  • ElringKlinger AG

  • Jiangsu Tongda Power Technology Co., Ltd.

  • NHK SPRING Co.,Ltd (Nippatsu)

  • Nantong Tongda Silicon Steel Stamping Technology Co., Ltd. 

Note: The above list is not an exhaustive list of the key players in the market. If your company is active in this market and would like to be considered for inclusion in future editions of this study, please contact us at [email protected].  

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Recent Developments / Mergers & Acquisitions

Recent mergers & acquisitions and other developments in the EV motor core market reflect evolving market trends and impact the market. Below are a few recent developments in the market –

  • In January 2026, NHK Spring announced what it called the world’s first mass production of resin-insulated metal substrates for EV traction systems, adopted in DENSO’s new inverter. This is a strong thermal-management and power-electronics product move, positioning NHK Spring deeper into EV electronics rather than only springs and seats.

  • In April 2025, Kuroda Precision Industries Ltd. announced the sale of a motor core Ideal for flying mobility, which uses permendur (cobalt-iron alloy) materials with higher magnetic flux density, higher permeability, and lower iron loss compared to conventional electromagnetic steel materials, achieving smaller size, lighter weight, and higher power output. It is ideal for flying mobility applications that require lighter weight for long-duration flights.

  • In March 2024, Pitti Engineering Limited took over a 100% stake in Bagadia Chaitra Industries Pvt Ltd (renamed Pitti Industries Pvt Ltd), and in July 2024, acquired a 100% stake in Dakshin Foundry Pvt Ltd. It is a well-planned strategy by the company to enhance its manufacturing processes. This will allow access to international clients and thus ensure profitability.

  • In August 2024, EGLA- EuroGroup Laminations completed the acquisition of 40% of the share capital and control of Kumar Precision Stampings Private Limited, EGLA said that it would invest a total of 19.9 million euros for the stake in Kumar Precision Stampings Private Limited, which is also one of India’s leading local players in the production and distribution of stators and rotors for electric motors for various industrial and domestic applications.

  • In August 2024, EGLA signed a JV agreement with a Chinese company, Hixih Rubber Industry Group, engaged in manufacturing automotive parts. In particular, the agreement is intended to establish a joint venture controlled by EGLA. The company claimed that it wanted to stimulate growth in China and promote its presence in the country in terms of increasing commercial presence among EV producers. A new R&D centre focusing on innovations in technologies will be established at Hixih Group's factory in Shandong province. Moreover, a new factory producing motor cores for New Energy Vehicles will be constructed there.

Report Scope

Market Definition

EV motor cores are among the most important components that affect the effectiveness, efficiency, and reliability of electric drivetrains. Motor cores usually consist of high-quality laminated electrical steels and are used to construct both the rotor and the stator parts of electric motors. They are also very important for electromagnetic energy conversion and can affect many parameters, such as power density, energy efficiency, thermal management, and noise.

The production of EV motor cores entails highly sophisticated procedures that include stamping, stacking, bonding/welding, and insulating coatings to reduce energy losses and provide optimal magnetic performance. With the growing popularity of electric mobility around the world, there is an increasing demand for high-performance motor cores because of the requirements related to vehicle range, energy consumption, and durability.

Report Structure

This report provides the most comprehensive market intelligence. The report structure has been kept so that it offers maximum business value. It provides critical insights into market dynamics and will enable strategic decision-making for existing market players and those looking to enter the market.

The following are the key features of the report:

  • Market structure: Overview, industry life cycle analysis, supply chain analysis.

  • Market environment analysis: Growth drivers and constraints, Porter’s five forces analysis, SWOT analysis.

  • Market trend and forecast analysis.

  • Market segment trend and forecast.

  • Competitive landscape and dynamics: Market share, Service portfolio, New Product Launches, etc.

  • Attractive market segments and associated growth opportunities.

  • Emerging trends.

  • Strategic growth opportunities for the existing and new players.

  • Key success factors

Market Study Period

2020-2031

Base Year

2025

Forecast Period

2026-2031

Trend Period

2020-2025

Number of Tables & Figures

80+

Number of Segments Analyzed

7 (EV Type, Vehicle Type, Motor Type, Manufacturing Technique Type, Material Type, Lamination Thickness Type and Region)

Number of Regions Analyzed

4 (North America, Europe, Asia-Pacific, Rest of the World)

Countries Analysed

15 (The USA, Canada, Mexico, Germany, France, The UK, Russia, China, Japan, India, Brazil, Saudi Arabia, Rest of Europe, Rest of APAC, and Rest of the World)

Free Customization Offered

10%

After Sales Support

Unlimited

Report Presentation

Complimentary

Market Dataset

Complimentary

Further Deep Dive & Consulting Services

10% Discount

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Segmentation

The report provides detailed insights into market dynamics to enable informed business decision-making and the formulation of growth strategies based on market opportunities.

The EV motor core market is segmented into the following categories:

EV Motor Core Market, by EV Type

  • BEV

  • HEV

EV Motor Core Market, by Vehicle Type

  • LV

  • M&HCV

EV Motor Core Market, by Motor Type

  • PMSM

  • IM

  • Others (EESM)

EV Motor Core Market, by Manufacturing Technique Type

  • Punching/Stamping

  • Laser Cutting

  • Others (Rotary notching, EDM, Hybrid stamping)

EV Motor Core Market, by Material Type

  • Electrical Steel

  • Soft Magnetic Composites (SMCs)

  • Cobalt-Based Alloys

  • Others (Amorphous)

EV Motor Core Market, by Lamination Thickness Type

  • 0.1-0.2mm

  • 0.2-0.5mm composites

  • 0.5-1mm

  • >1mm

EV Motor Core Market, by Region

  • North America (Country Analysis: The USA, Canada, and Mexico)

  • Europe (Country Analysis: Germany, France, The UK, Russia, and Rest of Europe)

  • Asia-Pacific (Country Analysis: Japan, China, India, and Rest of Asia-Pacific)

  • Rest of the World (Country Analysis: Brazil, Saudi Arabia, and Others)

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Research Methodology

This strategic assessment report from Stratview Research provides a comprehensive analysis that reflects today’s EV motor core market realities and future market possibilities for the forecast period

The report segments and analyzes the market in the most detailed manner to provide a panoramic view. The vital data/information provided in the report can play a crucial role for market participants and investors in identifying low-hanging fruit in the market and formulating growth strategies to expedite their growth

This report offers high-quality insights and is the outcome of a detailed research methodology comprising extensive secondary research, rigorous primary interviews with industry stakeholders, and validation and triangulation with Stratview Research’s internal database and statistical tools

More than 1,000 authenticated secondary sources, such as company annual reports, fact books, press releases, journals, investor presentations, white papers, patents, and articles, have been leveraged to gather the data

We conducted more than 15 detailed primary interviews with market players across the value chain in all four regions, as well as with industry experts, to obtain both qualitative and quantitative insights.

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  • Detailed profiling of additional market players (up to three players)

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The global EV motor core market is projected to reach approximately US$ 9.5 billion by 2031, growing from around US$ 5.6 billion in 2025.

By 2031, the global EV motor core market is expected to increase at a compound annual growth rate (CAGR) of 9.4%.

The key market driver is the rapid global adoption of electric vehicles. As BEVs and HEVs scale across passenger and commercial segments, every additional motor directly translates into demand for motor cores. This is especially amplified by multi-motor architecture, which multiplies content per vehicle.

High-growth opportunities are seen in BEVs, the EESM (Electrically excited synchronous motor) motor type, the punching/stamping manufacturing type, as well as 0.1- 0.2 mm lamination thickness.

Asia Pacific holds the largest market share, driven by both demand and production, a mature supply chain, and large-scale domestic consumption.

Leading players in the global EV motor core market include Tesla, Mitsui High-tec, Inc., EGLA- EuroGroup Laminations, Yutaka Giken Co., Ltd, Xinzhi Group Co., Ltd, POSCO MOBILITY SOLUTION, TOYOTA BOSHOKU CORPORATION, Ningbo Zhenyu Technology, and ElringKlinger AG.