1 エグゼクティブ・サマリー
2 序文
2.1 概要
2.2 ステークホルダー
2.3 調査範囲
2.4 調査方法
2.4.1 データマイニング
2.4.2 データ分析
2.4.3 データの検証
2.4.4 リサーチアプローチ
2.5 リサーチソース
2.5.1 一次調査ソース
2.5.2 セカンダリーリサーチソース
2.5.3 前提条件
3 市場動向分析
3.1 はじめに
3.2 推進要因
3.3 抑制要因
3.4 機会
3.5 脅威
3.6 アプリケーション分析
3.7 エンドユーザー分析
3.8 新興市場
3.9 Covid-19の影響
4 ポーターズファイブフォース分析
4.1 供給者の交渉力
4.2 買い手の交渉力
4.3 代替品の脅威
4.4 新規参入の脅威
4.5 競争上のライバル関係
5 形状記憶合金の世界市場、種類別
5.1 はじめに
5.2 ニッケルチタン(ニチノール)
5.3 銅ベース
5.4 鉄-マンガン-シリコン系
5.5 その他のタイプ
6 形状記憶合金の世界市場、機能別
6.1 はじめに
6.2 超弾性
6.3 形状記憶効果
6.4 ダンピング特性
6.5 その他の機能
7 形状記憶合金の世界市場、用途別
7.1 はじめに
7.2 モータ・アクチュエータ
7.3 構造材料
7.4 センサー
7.5 エネルギーハーベスティング
7.6 光学デバイス
7.7 振動ダンパー
7.8 その他の用途
8 形状記憶合金の世界市場、エンドユーザー別
8.1 はじめに
8.2 バイオメディカル
8.3 航空宇宙・防衛
8.4 自動車
8.5 産業用
8.6 家電・家電
8.7 その他のエンドユーザー
9 形状記憶合金の世界市場:地域別
9.1 はじめに
9.2 北アメリカ
9.2.1 アメリカ
9.2.2 カナダ
9.2.3 メキシコ
9.3 ヨーロッパ
9.3.1 ドイツ
9.3.2 イギリス
9.3.3 イタリア
9.3.4 フランス
9.3.5 スペイン
9.3.6 その他のヨーロッパ
9.4 アジア太平洋
9.4.1 日本
9.4.2 中国
9.4.3 インド
9.4.4 オーストラリア
9.4.5 ニュージーランド
9.4.6 韓国
9.4.7 その他のアジア太平洋地域
9.5 南アメリカ
9.5.1 アルゼンチン
9.5.2 ブラジル
9.5.3 チリ
9.5.4 その他の南アメリカ地域
9.6 中東/アフリカ
9.6.1 サウジアラビア
9.6.2 アラブ首長国連邦
9.6.3 カタール
9.6.4 南アフリカ
9.6.5 その他の中東/アフリカ地域
10 主要開発
10.1 契約、パートナーシップ、提携、合弁事業
10.2 買収と合併
10.3 新製品上市
10.4 拡張
10.5 その他の主要戦略
11 企業プロフィール
11.1 ATI Inc.
11.2 Confluent Medical Technologies
11.3 Dynalloy Inc.
11.4 ENDOSMART GmbH
11.5 Fort Wayne Metals Research Products Corp.
11.6 Furukawa Electric Co., Ltd
11.7 G. Rau GmbH & Co. KG
11.8 Johnson Matthey plc
11.9 Lumenous Device Technologies, Inc.
11.10 Memry Corporation
11.11 Metalwerks PMD Inc.
11.12 Nippon Steel Corporation
11.13 Nitinol Devices & Components, Inc.
11.14 SAES Getters S.p.A
11.15 Seabird Metal Material Co., Ltd
11.16 TiNi Alloy Co.
11.17 Ultimate NiTi Technologies Inc.
11.18 Xi’an Saite Metal Materials Development Co., Ltd
表一覧
表1 形状記憶合金の世界市場展望、地域別 (2022-2030) ($MN)
表2 形状記憶合金の世界市場展望、種類別 (2022-2030) ($MN)
表3 形状記憶合金の世界市場展望、ニッケルチタン(ニチノール)別 (2022-2030) ($MN)
表4 形状記憶合金の世界市場展望、銅ベース別 (2022-2030) ($MN)
表5 形状記憶合金の世界市場展望、鉄-マンガン-シリコン系別 (2022-2030) ($MN)
表6 形状記憶合金の世界市場展望、その他の種類別 (2022-2030) ($MN)
表7 形状記憶合金の世界市場展望、機能別 (2022-2030) ($MN)
表8 形状記憶合金の世界市場展望、超弾性別 (2022-2030) ($MN)
表9 形状記憶合金の世界市場展望、形状記憶効果別 (2022-2030) ($MN)
表10 形状記憶合金の世界市場展望、減衰特性別 (2022-2030) ($MN)
表11 形状記憶合金の世界市場展望、その他の機能別 (2022-2030) ($MN)
表12 形状記憶合金の世界市場展望、用途別 (2022-2030) ($MN)
表13 形状記憶合金の世界市場展望、モーターとアクチュエーター別 (2022-2030) ($MN)
表14 形状記憶合金の世界市場展望、構造材料別 (2022-2030) ($MN)
表15 形状記憶合金の世界市場展望、センサー別 (2022-2030) ($MN)
表16 形状記憶合金の世界市場展望、エネルギーハーベスティング別 (2022-2030) ($MN)
表17 形状記憶合金の世界市場展望、眼用デバイス別 (2022-2030) ($MN)
表18 形状記憶合金の世界市場展望、振動ダンパー別 (2022-2030) ($MN)
表19 形状記憶合金の世界市場展望、その他の用途別 (2022-2030) ($MN)
表20 形状記憶合金の世界市場展望、エンドユーザー別 (2022-2030) ($MN)
表21 形状記憶合金の世界市場展望、バイオメディカル別 (2022-2030) ($MN)
表22 形状記憶合金の世界市場展望、航空宇宙・防衛別 (2022-2030) ($MN)
表23 形状記憶合金の世界市場展望、自動車別 (2022-2030) ($MN)
表24 形状記憶合金の世界市場展望、産業別 (2022-2030) ($MN)
表25 形状記憶合金の世界市場展望:家電・家庭電化製品別 (2022-2030) ($MN)
表26 形状記憶合金の世界市場展望:その他のエンドユーザー別 (2022-2030) ($MN)
注)北アメリカ、ヨーロッパ、APAC、南アメリカ、中東/アフリカ地域の表も上記と同様に表記しています。
According to a research paper published in the Journal of Materials Science, Nickel-Titanium (NiTi) SMAs exhibit a shape recovery strain of up to 8% and a recovery stress of over 500 MPa.
Market Dynamics:
Driver:
Increasing demand in medical applications
The medical industry is driving significant growth in the shape memory alloys market. These materials are increasingly used in minimally invasive surgical devices, orthodontic wires, stents, and implants due to their unique properties like biocompatibility, superelasticity, and shape memory effect. The aging global population and advancements in medical technology are fueling demand for innovative medical devices utilizing shape memory alloys. Their ability to return to a predetermined shape when heated makes them ideal for self-expanding stents and other medical applications, driving market expansion.
Restraint:
High cost of materials
The high cost of shape memory alloys, particularly nickel-titanium (Nitinol), is a significant restraint on market growth. The complex manufacturing processes, specialized equipment, and precise control required to produce these alloys contribute to their high production costs. Additionally, the raw materials used, such as nickel and titanium, can be expensive. These factors make shape memory alloys more costly compared to conventional materials, limiting their adoption in price-sensitive applications and industries. The high costs can deter potential users from incorporating these alloys into their products, especially in emerging markets.
Opportunity:
Expansion in the automotive industry
The automotive industry presents a significant opportunity for shape memory alloys market growth. These materials are increasingly being explored for various automotive applications, including actuators, sensors, and adaptive components. Shape memory alloys can potentially replace traditional mechanical systems, offering benefits like reduced weight, improved fuel efficiency, and enhanced performance. As the automotive sector shifts towards electric and autonomous vehicles, the demand for advanced materials like shape memory alloys is expected to rise.
Threat:
Complex manufacturing processes
The complex manufacturing processes required for shape memory alloys pose a threat to market growth. These alloys demand precise control over composition, heat treatment, and processing parameters to achieve desired properties. Specialized techniques like vacuum arc melting, induction melting, and careful heat treatments are necessary, requiring significant expertise and investment. The complexity of manufacturing can lead to quality control issues, increased production times, and higher costs. This threat may limit the number of manufacturers capable of producing high-quality shape memory alloys, potentially creating supply chain bottlenecks and hindering market expansion.
Covid-19 Impact:
The Covid-19 pandemic initially disrupted the shape memory alloys market due to supply chain interruptions and reduced demand from key end-use industries. However, the market showed resilience as medical applications surged, particularly for devices used in Covid-19 treatment. The pandemic accelerated the adoption of minimally invasive medical procedures, boosting demand for shape memory alloy-based devices. Long-term impacts include increased focus on healthcare applications and supply chain diversification.
The Nickel-Titanium (Nitinol) segment is expected to be the largest during the forecast period
The Nickel-Titanium (Nitinol) is anticipated to dominate the shape memory alloys market due to its superior properties compared to other alloys. Nitinol offers excellent biocompatibility, corrosion resistance, and a wide range of transformation temperatures, making it ideal for medical applications. Its superelastic properties and shape memory effect are unmatched, driving its use in various industries beyond healthcare, including aerospace and consumer electronics. The growing demand for minimally invasive medical devices and the expanding applications in the automotive and robotics sectors further contribute to Nitinol's market dominance.
The consumer electronics & home appliances segment is expected to have the highest CAGR during the forecast period
The consumer electronics & home appliances segment is poised for rapid growth in the shape memory alloys market. These materials are increasingly used in smartphones, laptops, and home appliances for various functions such as vibration damping, thermal management, and miniature actuators. Shape memory alloys enable the development of more compact, efficient, and durable electronic devices. The growing consumer demand for smart home technologies and wearable devices is driving innovation in this sector. Additionally, the use of shape memory alloys in appliances for energy-efficient operation and improved functionality is contributing to the segment's high growth rate.
Region with largest share:
The North American region is expected to dominate the shape memory alloys market. The region's dominance in the shape memory alloys market is driven by its advanced healthcare sector, strong aerospace and defense industries, and significant investments in research and development. The region has a high adoption rate of innovative medical technologies, particularly in the United States, which fuels demand for shape-memory alloy-based medical devices. Additionally, the presence of key market players, well-established manufacturing infrastructure, and supportive regulatory environment contribute to North America's market leadership.
Region with highest CAGR:
The Asia Pacific region is set to witness a lucrative growth rate in the shape memory alloys market due to rapid industrialization, increasing healthcare expenditure, and growing automotive and consumer electronics sectors. Countries like China, Japan, and South Korea are investing heavily in advanced manufacturing and emerging technologies. The region's large and growing population, coupled with rising disposable incomes, is driving demand for innovative products across various industries. Additionally, government initiatives to promote advanced materials and technologies are expected to boost the adoption of shape memory alloys, contributing to the region's high growth rate.
Key players in the market
Some of the key players in Shape Memory Alloys market include ATI Inc., Confluent Medical Technologies, Dynalloy Inc., ENDOSMART GmbH, Fort Wayne Metals Research Products Corp., Furukawa Electric Co., Ltd, G. Rau GmbH & Co. KG, Johnson Matthey plc, Lumenous Device Technologies, Inc., Memry Corporation, Metalwerks PMD Inc., Nippon Steel Corporation, Nitinol Devices & Components, Inc., SAES Getters S.p.A, Seabird Metal Material Co., Ltd, TiNi Alloy Co., Ultimate NiTi Technologies Inc., and Xi'an Saite Metal Materials Development Co., Ltd.
Key Developments:
In January 2024, Scottsdale, AZ- Confluent Medical Technologies (Confluent) announced that it has partnered with ATI to invest more than $50 million over the next several years in ATI’s Nitinol melt and materials conversion infrastructure. With this significant investment, which will more than triple ATI’s melt capacity for medical Nitinol, Confluent will become ATI’s fulfillment partner and provide a suite of value-add services and order-fulfillment for ATI medical Nitinol mill product.
In June 2023, Fort Wayne Metals and NASA’s Glenn Research Center in Cleveland are advancing shape memory alloy material technology for innovative rover tires that could be used to support the agency’s Artemis exploration efforts on the moon. The two organizations have previously collaborated on highly engineered Nitinol materials for many aerospace applications, including use in prototype spring tires for Mars rovers. The current collaboration between Fort Wayne Metals and NASA Glenn includes studying the anticipated operating conditions on the moon and initial Nitinol materials development for various lunar applications.
Types Covered:
• Nickel-Titanium (Nitinol)
• Copper-based
• Iron-Manganese-Silicon
• Other Types
Functions Covered:
• Superelasticity
• Shape Memory Effect
• Damping Properties
• Other Functions
Applications Covered:
• Motors & Actuators
• Structural Materials
• Sensors
• Energy Harvesting
• Ocular Devices
• Vibration Dampers
• Other Applications
End Users Covered:
• Biomedical
• Aerospace & Defense
• Automotive
• Industrial
• Consumer Electronics & Home Appliances
• Other End Users
Regions Covered:
• North America
US
Canada
Mexico
• Europe
Germany
UK
Italy
France
Spain
Rest of Europe
• Asia Pacific
Japan
China
India
Australia
New Zealand
South Korea
Rest of Asia Pacific
• South America
Argentina
Brazil
Chile
Rest of South America
• Middle East & Africa
Saudi Arabia
UAE
Qatar
South Africa
Rest of Middle East & Africa
What our report offers:
- Market share assessments for the regional and country-level segments
- Strategic recommendations for the new entrants
- Covers Market data for the years 2022, 2023, 2024, 2026, and 2030
- Market Trends (Drivers, Constraints, Opportunities, Threats, Challenges, Investment Opportunities, and recommendations)
- Strategic recommendations in key business segments based on the market estimations
- Competitive landscaping mapping the key common trends
- Company profiling with detailed strategies, financials, and recent developments
- Supply chain trends mapping the latest technological advancements
1 Executive Summary
2 Preface
2.1 Abstract
2.2 Stake Holders
2.3 Research Scope
2.4 Research Methodology
2.4.1 Data Mining
2.4.2 Data Analysis
2.4.3 Data Validation
2.4.4 Research Approach
2.5 Research Sources
2.5.1 Primary Research Sources
2.5.2 Secondary Research Sources
2.5.3 Assumptions
3 Market Trend Analysis
3.1 Introduction
3.2 Drivers
3.3 Restraints
3.4 Opportunities
3.5 Threats
3.6 Application Analysis
3.7 End User Analysis
3.8 Emerging Markets
3.9 Impact of Covid-19
4 Porters Five Force Analysis
4.1 Bargaining power of suppliers
4.2 Bargaining power of buyers
4.3 Threat of substitutes
4.4 Threat of new entrants
4.5 Competitive rivalry
5 Global Shape Memory Alloys Market, By Type
5.1 Introduction
5.2 Nickel-Titanium (Nitinol)
5.3 Copper-based
5.4 Iron-Manganese-Silicon
5.5 Other Types
6 Global Shape Memory Alloys Market, By Function
6.1 Introduction
6.2 Superelasticity
6.3 Shape Memory Effect
6.4 Damping Properties
6.5 Other Functions
7 Global Shape Memory Alloys Market, By Application
7.1 Introduction
7.2 Motors & Actuators
7.3 Structural Materials
7.4 Sensors
7.5 Energy Harvesting
7.6 Ocular Devices
7.7 Vibration Dampers
7.8 Other Applications
8 Global Shape Memory Alloys Market, By End User
8.1 Introduction
8.2 Biomedical
8.3 Aerospace & Defense
8.4 Automotive
8.5 Industrial
8.6 Consumer Electronics & Home Appliances
8.7 Other End Users
9 Global Shape Memory Alloys Market, By Geography
9.1 Introduction
9.2 North America
9.2.1 US
9.2.2 Canada
9.2.3 Mexico
9.3 Europe
9.3.1 Germany
9.3.2 UK
9.3.3 Italy
9.3.4 France
9.3.5 Spain
9.3.6 Rest of Europe
9.4 Asia Pacific
9.4.1 Japan
9.4.2 China
9.4.3 India
9.4.4 Australia
9.4.5 New Zealand
9.4.6 South Korea
9.4.7 Rest of Asia Pacific
9.5 South America
9.5.1 Argentina
9.5.2 Brazil
9.5.3 Chile
9.5.4 Rest of South America
9.6 Middle East & Africa
9.6.1 Saudi Arabia
9.6.2 UAE
9.6.3 Qatar
9.6.4 South Africa
9.6.5 Rest of Middle East & Africa
10 Key Developments
10.1 Agreements, Partnerships, Collaborations and Joint Ventures
10.2 Acquisitions & Mergers
10.3 New Product Launch
10.4 Expansions
10.5 Other Key Strategies
11 Company Profiling
11.1 ATI Inc.
11.2 Confluent Medical Technologies
11.3 Dynalloy Inc.
11.4 ENDOSMART GmbH
11.5 Fort Wayne Metals Research Products Corp.
11.6 Furukawa Electric Co., Ltd
11.7 G. Rau GmbH & Co. KG
11.8 Johnson Matthey plc
11.9 Lumenous Device Technologies, Inc.
11.10 Memry Corporation
11.11 Metalwerks PMD Inc.
11.12 Nippon Steel Corporation
11.13 Nitinol Devices & Components, Inc.
11.14 SAES Getters S.p.A
11.15 Seabird Metal Material Co., Ltd
11.16 TiNi Alloy Co.
11.17 Ultimate NiTi Technologies Inc.
11.18 Xi'an Saite Metal Materials Development Co., Ltd
List of Tables
Table 1 Global Shape Memory Alloys Market Outlook, By Region (2022-2030) ($MN)
Table 2 Global Shape Memory Alloys Market Outlook, By Type (2022-2030) ($MN)
Table 3 Global Shape Memory Alloys Market Outlook, By Nickel-Titanium (Nitinol) (2022-2030) ($MN)
Table 4 Global Shape Memory Alloys Market Outlook, By Copper-based (2022-2030) ($MN)
Table 5 Global Shape Memory Alloys Market Outlook, By Iron-Manganese-Silicon (2022-2030) ($MN)
Table 6 Global Shape Memory Alloys Market Outlook, By Other Types (2022-2030) ($MN)
Table 7 Global Shape Memory Alloys Market Outlook, By Function (2022-2030) ($MN)
Table 8 Global Shape Memory Alloys Market Outlook, By Superelasticity (2022-2030) ($MN)
Table 9 Global Shape Memory Alloys Market Outlook, By Shape Memory Effect (2022-2030) ($MN)
Table 10 Global Shape Memory Alloys Market Outlook, By Damping Properties (2022-2030) ($MN)
Table 11 Global Shape Memory Alloys Market Outlook, By Other Functions (2022-2030) ($MN)
Table 12 Global Shape Memory Alloys Market Outlook, By Application (2022-2030) ($MN)
Table 13 Global Shape Memory Alloys Market Outlook, By Motors & Actuators (2022-2030) ($MN)
Table 14 Global Shape Memory Alloys Market Outlook, By Structural Materials (2022-2030) ($MN)
Table 15 Global Shape Memory Alloys Market Outlook, By Sensors (2022-2030) ($MN)
Table 16 Global Shape Memory Alloys Market Outlook, By Energy Harvesting (2022-2030) ($MN)
Table 17 Global Shape Memory Alloys Market Outlook, By Ocular Devices (2022-2030) ($MN)
Table 18 Global Shape Memory Alloys Market Outlook, By Vibration Dampers (2022-2030) ($MN)
Table 19 Global Shape Memory Alloys Market Outlook, By Other Applications (2022-2030) ($MN)
Table 20 Global Shape Memory Alloys Market Outlook, By End User (2022-2030) ($MN)
Table 21 Global Shape Memory Alloys Market Outlook, By Biomedical (2022-2030) ($MN)
Table 22 Global Shape Memory Alloys Market Outlook, By Aerospace & Defense (2022-2030) ($MN)
Table 23 Global Shape Memory Alloys Market Outlook, By Automotive (2022-2030) ($MN)
Table 24 Global Shape Memory Alloys Market Outlook, By Industrial (2022-2030) ($MN)
Table 25 Global Shape Memory Alloys Market Outlook, By Consumer Electronics & Home Appliances (2022-2030) ($MN)
Table 26 Global Shape Memory Alloys Market Outlook, By Other End Users (2022-2030) ($MN)
Note: Tables for North America, Europe, APAC, South America, and Middle East & Africa Regions are also represented in the same manner as above.
| ※参考情報 形状記憶合金は、温度による状態変化を利用して特定の形状を記憶し、その記憶された形状に戻る特性を持った金属材料です。この特性は、主にニッケルとチタンの合金であるニチノールや、銅と亜鉛、アルミニウムの合金などで見られます。形状記憶合金は、温度変化に応じて構造的変化を生じるため、様々な用途で使用されています。 形状記憶合金は主に二つの相転移を経てその性質を発揮します。まず、特定の温度以下では、最初の相である低温相が形成されます。この状態は、より柔軟で変形しやすい特性を持っています。そして、温度が上昇すると、高温相に移行し、元の形状に戻る能力を発揮します。この相転移の性質を利用することによって、形状記憶合金は多様な技術分野で利用されています。 形状記憶合金にはいくつかの種類があります。代表的なものとしては、ニチノールが挙げられます。ニチノールは、ニッケルとチタンの合金であり、形状記憶効果や超弾性を発揮します。ニチノールは、医療機器やロボット技術に広く使用されています。また、銅基形状記憶合金も存在し、これらは比較的低コストで高温下でも使用できる特徴を持ちます。さらに、鉄ベースの合金も研究されており、これはコストパフォーマンスに優れるとされています。 用途に関しては、形状記憶合金は多岐にわたります。その中でも特に重要な応用分野は医療です。例えば、血管内治療に使われるステントは、形状記憶合金で製造されていることが多く、挿入時には柔軟な形状にでき、体内で温度が上がると元の形状に戻り、血流を確保します。さらに、手術用の器具や人工関節などにも使用されています。 また、産業用のアクチュエーターやセンサーにも形状記憶合金が利用されています。これらは、熱エネルギーを直接作動エネルギーに変えることができるため、エネルギー効率の高い動作が実現します。車両や航空機のパーツに用いられることも多く、軽量かつコンパクトなデザインが求められる場面で効果を発揮します。 さらに、形状記憶合金は衛星や宇宙関連の技術にも活用されています。特に、展開式のソーラーパネルやアンテナなど、打ち上げ時には小型化され、宇宙で展開される製品に形状記憶合金が使われています。これにより、重量を軽減し、耐久性を高めることが可能になります。 形状記憶合金を取り扱う上での関連技術も進化しています。設計や製造プロセスが高度化し、より精密な形状を生み出すことや、特定の温度範囲に合わせた合金の調整が研究されています。さらに、高度なシミュレーション技術によって、形状記憶合金の性質を事前に予測し、有効に活用することができるようになっています。 これらの情報から、形状記憶合金は温度変化によって特定の形状に戻る特性を持つ金属材料であり、医療や産業、宇宙分野など多岐にわたる用途に使用されていることが分かります。特に、ニチノールなどの形状記憶合金は多様な技術の進展に寄与し、今後の発展が期待される分野です。 |

