Automated 3D Printing - Market Share Analysis, Industry Trends & Statistics, Growth Forecasts (2026 - 2031)
自動化3Dプリンティング市場レポート:提供形態(ハードウェア、ソフトウェア、サービス)、プロセス(自動生産、マテリアルハンドリング、部品ハンドリングなど)、エンドユーザー業界(産業用製造、自動車、航空宇宙・防衛、消費財など)、用途(プロトタイピング、最終製品部品の製造など)、および地域別。
The Automated 3D Printing Market Report is Segmented by Offering (Hardware, Software, and Services), Process (Automated Production, Material Handling, Part Handling, and More), End-User Vertical (Industrial Manufacturing, Automotive, Aerospace and Defense, Consumer Products, and More), Application (Prototyping, Manufacturing of End-Use Parts, and More), and Geography. The Market Forecasts are Provided in Terms of Value (USD).
| 出版 | Mordor Intelligence |
| 出版年月 | 2026年07月 |
| ページ数 | 170 |
| 価格 | 記載以外のライセンスについてはお問合せください |
| シングルユーザ | USD 4,750 |
| 種別 | 英文調査報告書 |
| 商品番号 | SMR-23877 |
自動3Dプリンティング市場の規模は、2025年の29億1,000万米ドルから2026年には39億9,000万米ドルへと拡大し、2026年から2031年にかけて年平均成長率(CAGR)36.11%で推移して、2031年には186億4,000万米ドルに達するとMordor Intelligenceでは予測しています。
工場が試作中心のワークセルから、ロボットによる材料搬送、AI主導のプロセス監視、クローズドループ品質管理を融合させた完全自動化生産ラインへと移行するにつれ、需要は加速しています。企業は、積層造形(アディティブ・マニュファクチャリング)、除去加工(サブトラクティブ・マニュファクチャリング)、検査の各工程を単一の筐体に統合したハイブリッドマシンへの投資を強める一方、ソフトウェアプラットフォームによって機械のテレメトリ(稼働データ)とコンプライアンス記録を一元管理し、航空宇宙・医療分野の監査要件に対応しようとしています。オンデマンド製造サービスを利用することで企業は設備減価償却のリスクを回避でき、また国内回帰(リショアリング)政策によって重要部品の認証取得にかかるリードタイムが短縮されるため、サービス関連の収益も急速に拡大しています。ハードウェアベンダーが上流のソフトウェアや下流のサービス契約へと事業領域を拡大する動きを見せる中、単体機械の販売における利益率は圧迫されており、競争は激化しています。
レポートの主なポイント
- 製品タイプ別では、ハードウェアの提供により2025年時点で53.11%のシェアを維持しました。一方、サービス分野は、変動費型のアウトソーシングが好まれる傾向にあることから、2031年まで年平均成長率(CAGR)37.21%で推移すると予測されています。
- プロセス別では、2025年の自動3Dプリンティング市場において自動生産が38.49%のシェアを占め首位となりましたが、マルチプロセッシングも2031年までCAGR 37.35%で拡大すると予測されています。
- エンドユーザーの産業分野別では、2025年の収益の32.53%を産業用製造が占めました。しかし、ヘルスケア分野は2026年から2031年にかけてCAGR 36.99%と最も高い成長率を記録する見込みです。
- 用途別では、2025年の支出の41.21%をプロトタイピングが占めました。また、最終製品用部品の製造も2031年までCAGR 36.91%で成長が進んでいます。
- 地域別では、2025年の収益の34.83%を北米が占めましたが、アジア太平洋地域も2031年までCAGR 36.78%で拡大すると予測されています。
用途別:最終製品向け部品の量産化が進展
2025年時点では、依然として試作が支出全体の41.21%を占めていますが、認定プロセスの整備によって量産化への道が開かれたことで、最終製品向け部品の製造は年平均成長率(CAGR)36.91%で拡大しています。例えば、ある航空機の機体には6万個ものアディティブ・マニュファクチャリング(AM)部品が組み込まれており、その中には年間300万ドルのコスト削減を実現するダクト継手も含まれています。さらに、ツインアイル(通路が2本ある大型)ジェット機ではすでに800個以上のプリント部品が実用化されているほか、2035年までに構成材料の50%を持続可能な素材に置き換える計画もあり、環境の持続可能性に対する業界の取り組みが反映されています。
金型・治具(ツーリング)用途においても大きな進歩が見られ、コンフォーマル・クーリング(等角冷却)技術の導入によりサイクルタイムが30%短縮され、生産効率が向上しています。一方、現場での修理用プリンターは、関連コストを90%削減することで軍のロジスティクスに革命をもたらしています。NASA MSFC-STD-3716やFDA 510(k)といった規格の採用は、AMプロセスの構造的完全性や生体適合性に対する信頼性をさらに高めました。部品あたりのコストが低下し続ける中、こうした技術的・規制的な進歩を背景に、最終製品製造における自動化3Dプリンティングの市場シェアは着実に拡大しています。
Automated 3D Printing Market Analysis by Mordor Intelligence
The Automated 3D Printing market size is expected to grow from USD 2.91 billion in 2025 to USD 3.99 billion in 2026 and is forecast to reach USD 18.64 billion by 2031 at a 36.11% CAGR over 2026-2031. Demand is accelerating as factories transition from prototype-oriented workcells to fully automated production lines that blend robotic material handling, AI-driven process monitoring, and closed-loop quality control. Enterprises are shifting capital toward hybrid machines that consolidate additive, subtractive, and inspection steps into a single enclosure, while software platforms unify machine telemetry with compliance records to satisfy aerospace and medical audits. Services revenue is expanding rapidly because on-demand bureaus let firms avoid depreciation risk, and national reshoring programs shorten certification lead-times for mission-critical parts. Competitive intensity is rising as hardware vendors integrate upstream into software and downstream into service contracts, compressing margins for standalone machine sales.
Key Report Takeaways
- By offering hardware, it retained a 53.11% share in 2025, whereas services are projected to register a 37.21% CAGR through 2031 as buyers favor variable-cost outsourcing.
- By process, automated production led with 38.49% of the Automated 3D Printing market share in 2025, while multiprocessing is forecast to expand at a 37.35% CAGR through 2031.
- By end-user vertical, industrial manufacturing accounted for 32.53% of revenue in 2025, yet healthcare is set to grow fastest at a 36.99% CAGR over 2026-2031.
- By application, prototyping accounted for 41.21% of spend in 2025, and manufacturing of end-use parts is advancing at a 36.91% CAGR through 2031.
- By geography, North America accounted for 34.83% revenue in 2025, although Asia-Pacific is projected to rise at a 36.78% CAGR through 2031.
Note: Market size and forecast figures in this report are generated using Mordor Intelligence’s proprietary estimation framework, updated with the latest available data and insights as of January 2026.
Global Automated 3D Printing Market Trends and Insights

Automated 3D Printing – Drivers Impact Analysis
Software, Sensor and AI Convergence Enabling Lights-Out Factories
Real-time thermal imaging, acoustic monitoring, and layer-wise geometry checks now flag defects before they propagate, cutting scrap in metal powder-bed systems by up to 60%. Manufacturing execution systems link design files with machine telemetry and quality records, generating audit trails that satisfy AS9100 and ISO 13485 without manual logbooks. Collaborative robots equipped with force-torque sensors swap build plates in under 90 seconds, eliminating the need for two operators per shift. Large U.S. defense contractors already mandate digital-thread compliance under CMMC 2.0, accelerating the adoption of integrated software stacks.[1]Germany and Japan lead hybrid machine design that embeds additive heads into multi-axis platforms, while IEC 62443 provides a security baseline for small and medium enterprises.
Rising Demand for Mass Customization at Scale
Consumer brands exploit lattice geometries that injection molding cannot match, compressing product cycles from 18 months to six weeks. Fully 3D-printed footwear eliminates assembly labor, letting micro-factories respond to regional trends within days. In healthcare, AI platforms generate patient-specific spinal cages from CT scans in 15 minutes, thereby shortening surgical planning time. Cosmetic firms print lattice applicators that reduce material waste by 30% while delivering a tailored tactile feel. Fewer regulatory hurdles in sporting goods speed adoption, whereas medical devices navigate ISO 10993 and FDA 510(k), but still benefit from the flexibility of additive workflows.
Growth in Adoption of Robotics for Industrial Automation
Adaptive robotic arms tune grip force to avoid damaging thin-walled parts during depowdering. Heavy-payload robots move 300-kilogram build plates between additive, heat-treatment, and machining stations without manual lifts. Deloitte’s 2025 survey showed that 47% of manufacturers are budgeting for additive-robotic integration within 2 years. South Korea’s K-AM Initiative earmarks USD 150 million for robotic post-processing modules that aim to halve per-part handling cost. Compliance frameworks such as ISO/TS 15066 guide collaborative-robot safety, while ANSI/RIA R15.08 governs industrial manipulators, ensuring global rollouts progress smoothly.
Corporate Net-Zero Commitments Driving Lightweight Parts
Aerospace and automotive OEMs replace castings with topology-optimized parts that slash mass by up to 50%, directly lowering fuel burn. Airbus has more than 800 printed brackets, ducts, and hinges flying on the A350, aligning with its ZEROe sustainability roadmap. Boeing operates 60,000 additive components across its fleets, including a 787 air-duct fitting that saves USD 3 million in materials and labor each year. Volkswagen integrates metal powder-bed systems to trim the weight of battery housings by 35%. Gas-turbine burner tips produced by laser fusion have logged 1.7 million operating hours with no field failures, boosting thermal efficiency for decarbonization goals. Science-based targets and ISO 14064 supply measurement protocols, though, still leave attributing emissions cuts to individual processes complex.

Automated 3D Printing – Restraints Impact Analysis
High Initial Capital Expenditure
Industrial metal printers cost USD 0.5-5 million, a hurdle for small enterprises that lack affordable leases. EY’s 2024 survey found that 62% of manufacturers cited capital constraints as the top barrier to adoption. Service bureaus alleviate balance-sheet pressure; one leading provider booked USD 127.5 million in additional revenue in Q3 2024 on a pay-per-part model. Online marketplaces offering instant quotes posted 18.9% year-over-year sales growth, signaling demand for asset-light procurement. Lending programs from the U.S. Small Business Administration and the European Investment Bank reduce interest rates, yet many firms remain unaware of these options.
Limited Qualified Materials Catalogue
Fewer than 50 metal powder grades meet aerospace and medical certification requirements, and generating full mechanical datasets can cost up to USD 500,000 per alloy.[2] ASTM F42 and ISO/ASTM 52900 published 14 new standards between 2023 and 2025, but certification backlogs stretch 18 months. The 2024 MMPDS-17 handbook added Ti-6Al-4V and Inconel 718 allowables, giving designers trusted values. America Makes pooled data from 12 OEMs to accelerate Department of Defense qualification, trimming timelines by 40%. Powder recipes often need retuning across different machines, fragmenting supply chains and inflating inventory costs.
*Our forecasts treat driver/restraint impacts as directional, not additive. The impact forecasts reflect baseline growth, mix effects, and variable interactions.
Segment Analysis
By Offering: Services Accelerate as Firms Favor Variable-Cost Models
Hardware captured the largest slice of the Automated 3D Printing market revenue at 53.11% in 2025, reflecting investment in multi-laser powder-bed systems and hybrid machines. However, demand now tilts toward service bureaus that convert capex into opex, letting clients avoid technology obsolescence. A leading on-demand provider posted USD 127.5 million in additive sales in Q3 2024, highlighting growing demand for quick-turn parts. Marketplaces that match 7,000 qualified suppliers with buyers process quotes in seconds, shrinking procurement cycles and widening access to capacity.
Services are projected to outpace hardware at a 37.21% CAGR to 2031, underpinned by subscription bundles that wrap software, consumables, and predictive maintenance into multiyear contracts. Simulation suites automate support generation and build orientation, cutting pre-production labor by 50%. Machine vendors increasingly embed remote diagnostics and real-time monitoring, satisfying ISO 9001 and AS9100 audits with minimal paperwork. The Automated 3D Printing market size for services, therefore, expands steadily as firms scale part volumes without heavy balance-sheet exposure.
By Process: Multiprocessing Compresses Lead Times
Automated production dominated in 2025 with a 38.49% share, yet multiprocessing is projected to expand at a robust 37.35% annually as hybrid cells integrate multiple manufacturing processes, including additive, subtractive, heat treatment, and inspection tasks. For instance, a five-axis laser deposition platform is now capable of repairing turbine blades in a single setup, effectively eliminating inter-operation queues and reducing aerospace tooling lead times by up to 60%.[3] Additionally, compact hybrid machines are increasingly combining powder-bed modules with 12,000-rpm spindles, enabling the machining of conformal cooling channels in injection molds with greater efficiency.
As manufacturers strive to achieve one-day tool delivery, robotic part-handling systems are being deployed to autonomously swap 300-kilogram plates, significantly enhancing operational efficiency. Automated depowdering systems have also emerged as a critical innovation, cutting manual touch time by up to 70% in high-mix production environments. Furthermore, Hermle’s modular pallet pools now seamlessly interface with hybrid additive-subtractive cells, thereby increasing unmanned operational hours. Consequently, the Automated 3D Printing market is witnessing a shift, with multiprocessing gaining traction as factories aim to boost throughput without expanding their physical footprint.
By End-User Vertical: Healthcare Surges on Patient-Specific Workflows
Industrial manufacturing held 32.53% of the Automated 3D Printing market revenue in 2025, supplying jigs, fixtures, and custom tooling across discrete sectors. Yet healthcare now posts the highest growth, expected to climb at 36.99% CAGR as surgeons adopt patient-matched implants and guides. University surgeons achieved fusion rates comparable to those with off-the-shelf cages while reducing operating-room time by 20%. Ceramic hip cups with superior wear resistance earned the CE mark in 2024, widening orthopedic portfolios.
Medical adoption is accelerating as AI planning tools rapidly convert CT scans into build files in minutes, enabling faster, more efficient workflows. Automotive OEMs are also scaling up production volumes, aiming to manufacture 400,000 structural parts annually by 2027 to meet growing demand. Aerospace primes are actively planning to reshore additive components by 2026, a strategic move to reduce geopolitical risks and enhance supply chain resilience. As qualification pathways continue to mature, the Automated 3D Printing market size for healthcare is steadily narrowing the gap with industrial manufacturing, driven by technological advancements and increasing adoption across sectors.
By Application: End-Use Parts Move Toward Serial Production
Prototyping still accounted for 41.21% of spending in 2025, but the manufacturing of end-use parts is scaling at a 36.91% CAGR as qualification frameworks unlock serial production. For instance, a single airframe incorporates 60,000 additive parts, including a duct fitting that generates annual savings of USD 3 million. Additionally, more than 800 printed components are already operational on a twin-aisle jet, with plans to incorporate 50% sustainable materials by 2035, reflecting the industry’s commitment to environmental sustainability.
Tooling applications are also witnessing significant advancements, with conformal cooling technology reducing cycle times by 30%, thereby enhancing production efficiency. Meanwhile, field-repair printers are revolutionizing military logistics by cutting associated costs by 90%. The adoption of standards such as NASA MSFC-STD-3716 and FDA 510(k) has further bolstered confidence in the structural integrity and biocompatibility of additive manufacturing processes. As the cost per part continues to decline, the Automated 3D Printing market share for end-use manufacturing is steadily increasing, driven by these technological and regulatory advancements.
Complete Report Scope:
- By Offering
- Hardware
- Software
- Services
- By Process
- Automated Production
- Material Handling
- Part Handling
- Post-Processing
- Multiprocessing
- By End-user Vertical
- Industrial Manufacturing
- Automotive
- Aerospace and Defense
- Consumer Products
- Healthcare
- Energy
- Rest of End-user Verticals
- By Application
- Prototyping
- Manufacturing of End-use Parts
- Tooling
- Rest of Applications
- By Geography
- North America
- United States
- Canada
- Mexico
- South America
- Brazil
- Argentina
- Rest of South America
- Europe
- Germany
- United Kingdom
- France
- Italy
- Spain
- Russia
- Rest of Europe
- Asia-Pacific
- China
- Japan
- India
- South Korea
- Australia and New Zealand
- Rest of Asia-Pacific
- Middle East
- Saudi Arabia
- United Arab Emirates
- Turkey
- Rest of Middle East
- Africa
- South Africa
- Nigeria
- Rest of Africa
- North America
Geography Analysis
North America accounted for 34.83% of the Automated 3D Printing market revenue in 2025. Federal grants worth USD 500 million accelerate aerospace qualification, compressing certification cycles from three years to 18 months. Boeing and Lockheed Martin expanded in-house metal powder-bed fleets to ensure 70% domestic sourcing by 2027. Canada invested CAD 50 million (USD 37 million) in a Montreal cluster, while Mexico’s nearshoring push installs hybrid cells that deliver automotive tooling within 48 hours.
Asia-Pacific is forecast to grow at 36.78% CAGR through 2031. India’s National Strategy funds titanium and nickel powder hubs at IITs, South Korea’s K-AM Initiative directs USD 150 million to shipbuilding hybrids, and Chinese OEMs captured 40% of regional hardware sales in 2025 despite aerospace material bottlenecks. Japan’s machine-tool giants integrate directed energy deposition with multi-axis machining, and Australian defense units deploy field printers for on-site repairs, illustrating diverse adoption drivers across the region.
Europe maintains a strong footprint through Horizon Europe grants and national programs. German Fraunhofer institutes collaborate with Siemens, EOS, and Trumpf on digital-twin monitoring, while EOS invested USD 3 million in Texas to serve U.S. clients. French joint venture AddUp supplies turbine components, and the United Kingdom’s Catapult centers accelerate medical and energy applications. The Middle East and Africa focus on energy and defense spare-parts localization, and South America remains nascent but grows in automotive and oil sectors as powder supply chains mature.
Competitive Landscape
The top five hardware vendors, Stratasys, 3D Systems, EOS, HP, and GE Additive, collectively accounted for approximately 35% of the automated 3D printing market revenue in 2025. This leaves significant opportunities for mid-tier challengers to capture market share. Nikon’s EUR 622 million (USD 703 million) acquisition of SLM Solutions in 2025 highlights cross-sector convergence, combining precision-optics metrology with advanced metal fusion capabilities. Similarly, Desktop Metal’s earlier acquisition of ExOne consolidated binder-jetting expertise under one organization, enabling streamlined cradle-to-grave workflows and enhancing operational efficiency.
Opportunities remain in hybrid repair cells for oversized energy and marine components, where wire-arc technology providers such as SPEE3D and AML3D stand out by offering low material costs and rapid deposition rates. These companies are carving out a niche by addressing specific needs in industries that require large-scale, cost-effective solutions.[4] Competitive differentiation is increasingly driven by software ecosystems, with platforms like Renishaw’s InfiniAM Central and Authentise MES delivering real-time analytics that reduce operator skill requirements and improve production efficiency.
Strategic initiatives in the automated 3D printing market include vertical integration, geographic expansion, and partnerships with robotics specialists. For instance, Desktop Metal’s collaboration with Flexiv aims to halve depowdering labor, showcasing the importance of alliances in driving innovation and cost reduction. The market exhibits moderate concentration, with continuous repositioning as established players and new entrants compete to secure recurring revenue streams. This dynamic environment underscores the importance of adaptability and strategic foresight in maintaining a competitive edge.
Recent Industry Developments
- March 2026: Stratasys Ltd announced advancements in its automated additive manufacturing platforms, focusing on software-driven workflow automation and scalable production systems.
- February 2026: HP Inc. expanded its Multi Jet Fusion ecosystem with new automation and material handling capabilities for high-volume production.
- January 2026: Siemens AG enhanced its additive manufacturing software portfolio to enable fully integrated, automated digital manufacturing workflows.
- December 2025: Desktop Metal Inc. introduced upgraded binder jetting systems designed for automated mass production of end-use metal parts.
List of Companies Covered in this Report:
- Stratasys Ltd
- 3D Systems Corporation
- General Electric Company
- EOS GmbH
- HP Inc.
- Desktop Metal Inc.
- SLM Solutions Group AG
- The ExOne Company
- Materialise NV
- Universal Robots AS
- ABB Ltd
- Formlabs Inc.
- PostProcess Technologies Inc.
- Authentise Inc.
- Carbon Inc.
- Renishaw plc
- Siemens AG
- Coobx AG
- DWS Systems
- Additive Industries BV
Additional Benefits:
- The market estimate (ME) sheet in Excel format
- 3 months of analyst support
Table of Contents
1 INTRODUCTION
1.1 Study Assumptions and Market Definition
1.2 Scope of the Study
2 RESEARCH METHODOLOGY
3 EXECUTIVE SUMMARY
4 MARKET LANDSCAPE
4.1 Market Overview
4.2 Market Drivers
4.2.1 Increasing Investments in R&D
4.2.2 Growth in Adoption of Robotics for Industrial Automation
4.2.3 Rising Demand for Mass Customisation at Scale
4.2.4 Software, Sensor and AI Convergence Enabling Lights-Out Factories
4.2.5 Government Incentives for Localised Manufacturing and Reshoring
4.2.6 Corporate Net-Zero Commitments Driving Lightweight Parts
4.3 Market Restraints
4.3.1 High Initial Capital Expenditure
4.3.2 Limited Qualified Materials Catalogue
4.3.3 Inter-operability Issues Across Proprietary Platforms
4.3.4 Cyber-Physical Security Risks in Fully Automated Cells
4.4 Industry Supply-Chain Analysis
4.5 Impact of Macroeconomic Factors on the Market
4.6 Regulatory Landscape
4.7 Technological Outlook
4.8 Porter’s Five Forces Analysis
4.8.1 Threat of New Entrants
4.8.2 Bargaining Power of Buyers
4.8.3 Bargaining Power of Suppliers
4.8.4 Threat of Substitute Products
4.8.5 Intensity of Competitive Rivalry
5 MARKET SIZE AND GROWTH FORECASTS (VALUE)
5.1 By Offering
5.1.1 Hardware
5.1.2 Software
5.1.3 Services
5.2 By Process
5.2.1 Automated Production
5.2.2 Material Handling
5.2.3 Part Handling
5.2.4 Post-Processing
5.2.5 Multiprocessing
5.3 By End-user Vertical
5.3.1 Industrial Manufacturing
5.3.2 Automotive
5.3.3 Aerospace and Defense
5.3.4 Consumer Products
5.3.5 Healthcare
5.3.6 Energy
5.3.7 Rest of End-user Verticals
5.4 By Application
5.4.1 Prototyping
5.4.2 Manufacturing of End-use Parts
5.4.3 Tooling
5.4.4 Rest of Applications
5.5 By Geography
5.5.1 North America
5.5.1.1 United States
5.5.1.2 Canada
5.5.1.3 Mexico
5.5.2 South America
5.5.2.1 Brazil
5.5.2.2 Argentina
5.5.2.3 Rest of South America
5.5.3 Europe
5.5.3.1 Germany
5.5.3.2 United Kingdom
5.5.3.3 France
5.5.3.4 Italy
5.5.3.5 Spain
5.5.3.6 Russia
5.5.3.7 Rest of Europe
5.5.4 Asia-Pacific
5.5.4.1 China
5.5.4.2 Japan
5.5.4.3 India
5.5.4.4 South Korea
5.5.4.5 Australia and New Zealand
5.5.4.6 Rest of Asia-Pacific
5.5.5 Middle East
5.5.5.1 Saudi Arabia
5.5.5.2 United Arab Emirates
5.5.5.3 Turkey
5.5.5.4 Rest of Middle East
5.5.6 Africa
5.5.6.1 South Africa
5.5.6.2 Nigeria
5.5.6.3 Rest of Africa
6 COMPETITIVE LANDSCAPE
6.1 Market Concentration
6.2 Strategic Moves
6.3 Market Share Analysis
6.4 Company Profiles (includes Global Level Overview, Market Level Overview, Core Segments, Financials as available, Strategic Information, Market Rank/Share, Products and Services, Recent Developments)
6.4.1 Stratasys Ltd
6.4.2 3D Systems Corporation
6.4.3 General Electric Company
6.4.4 EOS GmbH
6.4.5 HP Inc.
6.4.6 Desktop Metal Inc.
6.4.7 SLM Solutions Group AG
6.4.8 The ExOne Company
6.4.9 Materialise NV
6.4.10 Universal Robots AS
6.4.11 ABB Ltd
6.4.12 Formlabs Inc.
6.4.13 PostProcess Technologies Inc.
6.4.14 Authentise Inc.
6.4.15 Carbon Inc.
6.4.16 Renishaw plc
6.4.17 Siemens AG
6.4.18 Coobx AG
6.4.19 DWS Systems
6.4.20 Additive Industries BV
7 MARKET OPPORTUNITIES AND FUTURE OUTLOOK
7.1 White-Space and Unmet-need Assessment
