Industry: Chemical & Material
Published Date: 2025-07-31
Pages: 157 Pages
Report ld: 4806690
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Vacuum Inert Gas Atomization (VIGA) Processing Technology Market Size(US$)

CAGR 2025-2031
14.0%
Market Size,2031
USD 217
Million
Market Snapshot
Source: Secondary research, interviews with experts, and QYResearch analysis
The global Vacuum Inert Gas Atomization (VIGA) Processing Technology market is projected to grow from US$ 87.8 million in 2024 to US$ 217 million by 2031, at a CAGR of 14.0% (2025-2031), driven by critical product segments and diverse end‑use applications, while evolving U.S. tariff policies introduce trade‑cost volatility and supply‑chain uncertainty.
Vacuum induction melting and inert gas atomization is the leading process for production of a variety of high-performance metal powders and essential for quality manufacturing of Ni-based super-alloys as well as Fe-, Co-, Cr-based and other special alloy powders. In the VIGA system, a vacuum induction melting unit is integrated with an inert gas atomization unit. The starting materials are melted using electromagnetic induction which couples electrical power into the crucible/material under vacuum or in an inert gas atmosphere. Once the desired melt homogeneity and chemical composition have been achieved, the material is poured into a tundish by crucible tilting. The fine metal stream flowing from the tundish orifice into the atomization nozzle system is subject to a high-pressure, inert-gas jet and then atomized. The combination of molten metal and gas jet creates a spray of micro-droplets that solidifies in the atomization tower and forms fine powder with spherical shape.
VIGA is where the melting and pouring of the alloy prior to atomisation is carried out in a vacuum chamber, to allow the production of the most oxidation-sensitive and reactive alloys, especially Fe-, Ni- and Co-based alloys containing Al, titanium and rare earths. This includes ‘superalloys’ such as IN718, maraging steels and M-Cr-Al-Y alloys. This technique was developed from the 1950s and 1960s when there was a push to explore the potential benefits of rapid solidification (RS) to allow the production of more highly alloyed superalloys for aerospace and defence applications. This proved to be a very challenging field of application but, after several decades of development, is now absorbing many thousands of tonnes per year of VIGA-produced superalloy powders. This intensive development has meant that the technology lends itself well to producing powders for HIP, MIM and AM. Oxygen contents in the 50–200 ppm range are achievable. Particle shape is, again, spherical with mis-shapes. Particle sizes are as for IGA.
By 1940, air atomisation was a well-established process for the production of zinc, aluminium, and probably also copper/brass/bronze powders. During World War Two, German engineers applied it to pig iron for iron powder production using the RZ process (Roheisen Zunder-Verfahren or ‘pig iron ignition process’). In the 1950s, W D Jones in the UK worked on inert gas atomisation as well as water atomisation and, by the 1960s, plants were being built for thermal spray alloy powder production of the NiCrBSi self-fluxing type. The development of Powder Metallurgy of high alloys and the concept of Rapid Solidification (RS) for refinement of microstructures led to the construction in Sweden of inert gas atomisers for tool steels, which went commercial on a 1–2 t scale in the 1970s. At the same time, the US government invested heavily in R&D on RS superalloys for aerospace and the first Vacuum Inert Gas Atomiser (VIGA) units were constructed with 100–300 kg capacity.
Since then, the use of inert gas atomisation (IGA) with air melting, as well as VIGA, has become widespread in use for thermal spray powders, PM superalloys, AM powders, and MIM powders. VIGA production of superalloy powders in the US alone now amounts to something in the order of 10–20 kt/year.
Inert gas atomisation is the method of choice for more demanding applications, such as MIM, AM, HIP, HVOF, brazing pastes, etc. Nitrogen is the most economic option, but argon is also used on reactive alloys like superalloys and titanium. Helium is used mostly in the production of aluminium and magnesium powders, but there is currently a huge incentive to switch to argon due to the unstable supply and high cost of helium. Total installed capacity of IGA and VIGA probably approaches 100 kt/ year, with large numbers of plants in different countries and industries. They range from tiny plants for a few kgs of precious metal brazing alloy to 3 t/h continuous plants for tool steel production. The fact that they are mostly processing relatively valuable metals and alloys (high value-added, large margin applications) makes small, local, plants economically feasible as opposed to iron powder plants, where low cost and economy of scale is imperative.
Global 5 largest manufacturers of Vacuum Inert Gas Atomization (VIGA) Processing Technology are ALD, PSI, Arcast, Consarc and ACME, which make up about 80%. Among them, ALD is the leader with about 25% market share.
Americas is the largest market, with a share about 45%, followed by Europe and Asia-Pacific, with share about 30% and 23%. In terms of product type, Medium VIGA Systems (50~250 kg) occupy the largest share of the total market, about 69%. And in terms of product application, the largest application is Metal Powder Manufacturer, followed by Universities and Research Institutes.
Report Includes:
This definitive report equips CEOs, marketing directors, and investors with a 360° view of the global Vacuum Inert Gas Atomization (VIGA) Processing Technology market, seamlessly integrating production capacity and sales performance across the value chain. It analyzes historical production, revenue, and sales data (2020–2024) and delivers forecasts through 2031, illuminating demand trends and growth drivers.
By segmenting the market by Type and by Application, the study quantifies volume and value, growth rates, technical innovations, niche opportunities, and substitution risks, and analyzes downstream customers distribution pattern.
Granular regional insights cover five major markets—North America, Europe, APAC, South America, and MEA—with in‑depth analysis of 20+ countries. Each region’s dominant products, competitive landscape, and downstream demand trends are clearly detailed.
Critical competitive intelligence profiles manufacturers—capacity, sales volume, revenue, margins, pricing strategies, and major customers—and dissects the top-player positioning across product lines, applications, and regions to reveal strategic strengths.
A concise supply‑chain overview maps upstream suppliers, manufacturing technologies, cost structures, and distribution dynamics to identify strategic gaps and unmet demand.
MARKET SEGMENTATION
CHAPTER OUTLINE
Chapter 1: Defines the Vacuum Inert Gas Atomization (VIGA) Processing Technology study scope, segments the market by Type and by Application, etc, highlights segment size and growth potential.
Chapter 2: Offers current market state, projects global revenue and sales to 2031, pinpointing high consumption regions and emerging market catalysts
Chapter 3: Maps global production capacity, utilization, and market share (2020–2031), identifies efficient hubs, reveals regulatory/trade policy impacts and bottlenecks.
Chapter 4: Dissects the manufacturer landscape—ranks by volume and revenue, analyzes profitability and pricing, maps production bases, details manufacturer performance by product type and evaluates concentration alongside M&A moves.
Chapter 5: Unlocks high margin product segments—compares sales, revenue, ASP, and technology differentiators, highlighting growth niches and substitution risks
Chapter 6: Targets downstream market opportunities—evaluates sales, revenue, and pricing by Application, identifies emerging use cases, and profiles leading customers by region and by Application.
Chapter 7: North America—breaks down sales and revenue by Type, by Application and country, profiles key manufacturers and assesses growth drivers and barriers.
Chapter 8: Europe—analyses regional sales, revenue and market by Type, by Application and manufacturers, flagging drivers and barriers.
Chapter 9: Asia Pacific—quantifies sales and revenue by Type, by Application, and region/country, profiles top manufacturers, and uncovers high potential expansion areas.
Chapter 10: Central & South America—measures sales and revenue by Type, by Application, and country, profiles top manufacturers, and identifies investment opportunities and challenges.
Chapter 11: Middle East and Africa—evaluates sales and revenue by Type, by Application, and country, profiles key manufacturers, and outlines investment prospects and market hurdles
Chapter 12: Profiles manufacturers in depth—details product specs, capacity, sales, revenue, margins; Top manufactures 2024 sales breakdowns by Product type, by Application, by sales region SWOT analysis, and recent strategic developments.
Chapter 13: Supply chain—analyses upstream raw materials and suppliers, manufacturing footprint and technology, cost drivers, plus downstream channels and distributor roles.
Chapter 14: Market dynamics—explores drivers, restraints, regulatory impacts, and risk mitigation strategies.
Chapter 15: Actionable conclusions and strategic recommendations.
WHY THIS REPORT
Beyond standard market data, this analysis provides a clear profitability roadmap, empowering you to:
Beyond standard market data, this analysis provides a clear profitability roadmap—empowering you to:
Allocate capital strategically to high growth regions (Chapters 7–11) and margin rich segments (Chapter 5).
Negotiate from strength with suppliers (Chapter 13) and customers (Chapter 6) using cost and demand intelligence.
Outmaneuver competitors with granular insights into their operations, margins, and strategies (Chapters 4 and 12).
Secure your supply chain against disruptions through upstream and downstream visibility (Chapters 13 and 14).
Leverage this 360° intelligence to turn market complexity into actionable competitive advantage.
QYRESEARCH'S STRENGTHS
Unlike generic global market reports, this study combines macro-level industry trends with hyper-local operational intelligence, empowering data-driven decisions across the Compound Chocolate value chain, addressing:
We identify regional market threats and growth prospects to guide your overseas layout.
We adjust product portfolios in line with local consumption habits.
We unpack rivals’ operation strategies for scattered and highly concentrated industries.
We cover competition landscape, full supply chain and quantified market size data, and deliver tailor-made customized surveys to meet your unique business demands.
We own self-owned massive exclusive databases, backed by 19 years of global market research experience across thousands of sectors.
Our team operates 24 hours a day, 365 days a year, enabling ultra-fast report turnaround to respond to your research needs efficiently.
We integrate regional risk assessment, localized product optimization and competitor analysis to deliver actionable market strategies.
All data is cross-verified from multiple industry sources to deliver thorough, precise analysis that supports reliable corporate strategic decisions.
We provide responsive, dedicated after-sales support to resolve all follow-up inquiries about reports, data and industry interpretation.
TABLE OF CONTENTS
1 Study Coverage
1.1 Introduction to Vacuum Inert Gas Atomization (VIGA) Processing Technology: Definition, Properties, and Key Attributes
1.2 Market Segmentation by Type
1.2.1 Global Vacuum Inert Gas Atomization (VIGA) Processing Technology Market Size by Type, 2020 VS 2024 VS 2031
1.2.2 Small VIGA Systems (<50 kg)
1.2.3 Medium VIGA Systems (50~250 kg)
1.2.4 Large VIGA Systems (≥250 kg)
1.3 Market Segmentation by Application
1.3.1 Global Vacuum Inert Gas Atomization (VIGA) Processing Technology Market Size by Application, 2020 VS 2024 VS 2031
1.3.2 Metal Powder Manufacturer
1.3.3 Universities and Research Institutes
1.4 Assumptions and Limitations
1.5 Study Objectives
1.6 Years Considered
2 Executive Summary
2.1 Global Vacuum Inert Gas Atomization (VIGA) Processing Technology Revenue Estimates and Forecasts 2020-2031
2.2 Global Vacuum Inert Gas Atomization (VIGA) Processing Technology Revenue by Region
2.2.1 Revenue Comparison: 2020 VS 2024 VS 2031
2.2.2 Historical and Forecasted Revenue by Region (2020--2031)
2.2.3 Global Revenue Market Share by Region (2020-2031)
2.3 Global Vacuum Inert Gas Atomization (VIGA) Processing Technology Sales Estimates and Forecasts 2020-2031
2.4 Global Vacuum Inert Gas Atomization (VIGA) Processing Technology Sales by Region
2.4.1 Sales Comparison: 2020 VS 2024 VS 2031
2.4.2 Historical and Forecasted Sales by Region (2020-2031)
2.4.3 Emerging Market Focus: Growth Drivers & Investment Trends
2.4.4 Global Sales Market Share by Region (2020-2031)
3 Global Production Analysis
3.1 Global Vacuum Inert Gas Atomization (VIGA) Processing Technology Production Capacity and Utilization Rates (2020–2031)
3.2 Regional Production: Comparative Analysis (2020 VS 2024 VS 2031)
3.3 Regional Production Dynamics
3.3.1 Historic Production by Region (2020-2025)
3.3.2 Forecasted Production by Region (2026-2031)
3.3.3 Production Market Share by Region (2020-2031)
3.3.4 Regulatory and Trade Policy Impact on Production
3.3.5 Production Capacity Enablers and Constraints
3.4 Key Regional Production Hubs
3.4.1 North America
3.4.2 Europe
3.4.3 China
4 Competition by Manufacturers
4.1 Global Vacuum Inert Gas Atomization (VIGA) Processing Technology Sales by Manufacturers
4.1.1 Global Sales Volume by Manufacturers (2020-2025)
4.1.2 Global Top 5 and Top 10 Manufacturers’Market Share by Sales Volume (2024)
4.2 Global Vacuum Inert Gas Atomization (VIGA) Processing Technology Manufacturer Revenue Rankings and Tiers
4.2.1 Global Revenue (Value) by Manufacturers (2020-2025)
4.2.2 Global Key Manufacturer Revenue Ranking (2023 vs. 2024)
4.2.3 Revenue-Based Tier Segmentation (Tier 1, Tier 2, and Tier 3)
4.3 Manufacturer Profitability Profiles and Pricing Strategies
4.3.1 Gross Margin by Top Manufacturer (2020 VS 2024)
4.3.2 Manufacturer-Level Price Trends (2020-2025)
4.4 Key Manufacturers Manufacturing Base and Headquarters
4.5 Main Product Type Market Size by Manufacturers
4.5.1 Small VIGA Systems (<50 kg) Market Size by Manufacturers
4.5.2 Medium VIGA Systems (50~250 kg) Market Size by Manufacturers
4.5.3 Large VIGA Systems (≥250 kg) Market Size by Manufacturers
4.6 Global Vacuum Inert Gas Atomization (VIGA) Processing Technology Market Concentration and Dynamics
4.6.1 Global Market Concentration (CR5 and HHI)
4.6.2 Entrant/Exit Impact Analysis
4.6.3 Strategic Moves: M&A, Capacity Expansion, R&D Investment
5 Global Product Segmentation Analysis
5.1 Global Vacuum Inert Gas Atomization (VIGA) Processing Technology Sales Performance by Type
5.1.1 Global Historical and Forecasted Sales by Type (2020-2031)
5.1.2 Global Sales Market Share by Type (2020-2031)
5.2 Global Vacuum Inert Gas Atomization (VIGA) Processing Technology Revenue Trends by Type
5.2.1 Global Historical and Forecasted Revenue by Type (2020-2031)
5.2.2 Global Revenue Market Share by Type (2020-2031)
5.3 Global Average Selling Price (ASP) Trends by Type (2020-2031)
5.4 Product Technology Differentiation
5.5 Subtype Dynamics: Growth Leaders, Profitability and Risk
5.5.1 High-Growth Niches and Adoption Drivers
5.5.2 Profitability Hotspots and Cost Drivers
5.5.3 Substitution Threats
6 Global Downstream Application Analysis
6.1 Global Vacuum Inert Gas Atomization (VIGA) Processing Technology Sales by Application
6.1.1 Global Historical and Forecasted Sales by Application (2020-2031)
6.1.2 Global Sales Market Share by Application (2020-2031)
6.1.3 High-Growth Application Identification
6.1.4 Emerging Application Case Studies
6.2 Global Vacuum Inert Gas Atomization (VIGA) Processing Technology Revenue by Application
6.2.1 Global Historical and Forecasted Revenue by Application (2020-2031)
6.2.2 Revenue Market Share by Application (2020-2031)
6.3 Global Pricing Dynamics by Application (2020-2031)
6.4 Downstream Customer Analysis
6.4.1 Top Customers by Region
6.4.2 Top Customers by Application
7 North America
7.1 North America Sales Volume and Revenue (2020-2031)
7.2 North America Key Manufacturers Sales Revenue in 2024
7.3 North America Vacuum Inert Gas Atomization (VIGA) Processing Technology Sales and Revenue by Type (2020-2031)
7.4 North America Vacuum Inert Gas Atomization (VIGA) Processing Technology Sales and Revenue by Application (2020-2031)
7.5 North America Growth Accelerators and Market Barriers
7.6 North America Vacuum Inert Gas Atomization (VIGA) Processing Technology Market Size by Country
7.6.1 North America Revenue by Country
7.6.2 North America Sales Trends by Country
7.6.3 US
7.6.4 Canada
7.6.5 Mexico
8 Europe
8.1 Europe Sales Volume and Revenue (2020-2031)
8.2 Europe Key Manufacturers Sales Revenue in 2024
8.3 Europe Vacuum Inert Gas Atomization (VIGA) Processing Technology Sales and Revenue by Type (2020-2031)
8.4 Europe Vacuum Inert Gas Atomization (VIGA) Processing Technology Sales and Revenue by Application (2020-2031)
8.5 Europe Growth Accelerators and Market Barriers
8.6 Europe Vacuum Inert Gas Atomization (VIGA) Processing Technology Market Size by Country
8.6.1 Europe Revenue by Country
8.6.2 Europe Sales Trends by Country
8.6.3 Germany
8.6.4 France
8.6.5 U.K.
8.6.6 Italy
8.6.7 Russia
9 Asia-Pacific
9.1 Asia-Pacific Sales Volume and Revenue (2020-2031)
9.2 Asia-Pacific Key Manufacturers Sales Revenue in 2024
9.3 Asia-Pacific Vacuum Inert Gas Atomization (VIGA) Processing Technology Sales and Revenue by Type (2020-2031)
9.4 Asia-Pacific Vacuum Inert Gas Atomization (VIGA) Processing Technology Sales and Revenue by Application (2020-2031)
9.5 Asia-Pacific Vacuum Inert Gas Atomization (VIGA) Processing Technology Market Size by Region
9.5.1 Asia-Pacific Revenue by Region
9.5.2 Asia-Pacific Sales Trends by Region
9.6 Asia-Pacific Growth Accelerators and Market Barriers
9.7 Southeast Asia
9.7.1 Southeast Asia Revenue by Country (2020 VS 2024 VS 2031)
9.7.2 Key Country Analysis: Indonesia, Vietnam, Thailand
9.8 China
9.9 Japan
9.10 South Korea
9.11 China Taiwan
9.12 India
10 Central and South America
10.1 Central and South America Sales Volume and Revenue (2020-2031)
10.2 Central and South America Key Manufacturers Sales Revenue in 2024
10.3 Central and South America Vacuum Inert Gas Atomization (VIGA) Processing Technology Sales and Revenue by Type (2020-2031)
10.4 Central and South America Vacuum Inert Gas Atomization (VIGA) Processing Technology Sales and Revenue by Application (2020-2031)
10.5 Central and South America Investment Opportunities and Key Challenges
10.6 Central and South America Vacuum Inert Gas Atomization (VIGA) Processing Technology Market Size by Country
10.6.1 Central and South America Revenue Trends by Country (2020 VS 2024 VS 2031)
10.6.2 Brazil
10.6.3 Argentina
11 Middle East and Africa
11.1 Middle East and Africa Sales Volume and Revenue (2020-2031)
11.2 Middle East and Africa Key Manufacturers Sales Revenue in 2024
11.3 Middle East and Africa Vacuum Inert Gas Atomization (VIGA) Processing Technology Sales and Revenue by Type (2020-2031)
11.4 Middle East and Africa Vacuum Inert Gas Atomization (VIGA) Processing Technology Sales and Revenue by Application (2020-2031)
11.5 Middle East and Africa Investment Opportunities and Key Challenges
11.6 Middle East and Africa Vacuum Inert Gas Atomization (VIGA) Processing Technology Market Size by Country
11.6.1 Middle East and Africa Revenue Trends by Country (2020 VS 2024 VS 2031)
11.6.2 GCC Countries
11.6.3 Turkey
11.6.4 Egypt
11.6.5 South Africa
12 Corporate Profile
12.1 ALD
12.1.1 ALD Corporation Information
12.1.2 ALD Business Overview
12.1.3 ALD Vacuum Inert Gas Atomization (VIGA) Processing Technology Product Models, Descriptions and Specifications
12.1.4 ALD Vacuum Inert Gas Atomization (VIGA) Processing Technology Capacity, Sales, Price, Revenue and Gross Margin (2020-2025)
12.1.5 ALD Vacuum Inert Gas Atomization (VIGA) Processing Technology Sales by Product in 2024
12.1.6 ALD Vacuum Inert Gas Atomization (VIGA) Processing Technology Sales by Application in 2024
12.1.7 ALD Vacuum Inert Gas Atomization (VIGA) Processing Technology Sales by Geographic Area in 2024
12.1.8 ALD Vacuum Inert Gas Atomization (VIGA) Processing Technology SWOT Analysis
12.1.9 ALD Recent Developments
12.2 Consarc
12.2.1 Consarc Corporation Information
12.2.2 Consarc Business Overview
12.2.3 Consarc Vacuum Inert Gas Atomization (VIGA) Processing Technology Product Models, Descriptions and Specifications
12.2.4 Consarc Vacuum Inert Gas Atomization (VIGA) Processing Technology Capacity, Sales, Price, Revenue and Gross Margin (2020-2025)
12.2.5 Consarc Vacuum Inert Gas Atomization (VIGA) Processing Technology Sales by Product in 2024
12.2.6 Consarc Vacuum Inert Gas Atomization (VIGA) Processing Technology Sales by Application in 2024
12.2.7 Consarc Vacuum Inert Gas Atomization (VIGA) Processing Technology Sales by Geographic Area in 2024
12.2.8 Consarc Vacuum Inert Gas Atomization (VIGA) Processing Technology SWOT Analysis
12.2.9 Consarc Recent Developments
12.3 PSI
12.3.1 PSI Corporation Information
12.3.2 PSI Business Overview
12.3.3 PSI Vacuum Inert Gas Atomization (VIGA) Processing Technology Product Models, Descriptions and Specifications
12.3.4 PSI Vacuum Inert Gas Atomization (VIGA) Processing Technology Capacity, Sales, Price, Revenue and Gross Margin (2020-2025)
12.3.5 PSI Vacuum Inert Gas Atomization (VIGA) Processing Technology Sales by Product in 2024
12.3.6 PSI Vacuum Inert Gas Atomization (VIGA) Processing Technology Sales by Application in 2024
12.3.7 PSI Vacuum Inert Gas Atomization (VIGA) Processing Technology Sales by Geographic Area in 2024
12.3.8 PSI Vacuum Inert Gas Atomization (VIGA) Processing Technology SWOT Analysis
12.3.9 PSI Recent Developments
12.4 SMS Group
12.4.1 SMS Group Corporation Information
12.4.2 SMS Group Business Overview
12.4.3 SMS Group Vacuum Inert Gas Atomization (VIGA) Processing Technology Product Models, Descriptions and Specifications
12.4.4 SMS Group Vacuum Inert Gas Atomization (VIGA) Processing Technology Capacity, Sales, Price, Revenue and Gross Margin (2020-2025)
12.4.5 SMS Group Vacuum Inert Gas Atomization (VIGA) Processing Technology Sales by Product in 2024
12.4.6 SMS Group Vacuum Inert Gas Atomization (VIGA) Processing Technology Sales by Application in 2024
12.4.7 SMS Group Vacuum Inert Gas Atomization (VIGA) Processing Technology Sales by Geographic Area in 2024
12.4.8 SMS Group Vacuum Inert Gas Atomization (VIGA) Processing Technology SWOT Analysis
12.4.9 SMS Group Recent Developments
12.5 Arcast
12.5.1 Arcast Corporation Information
12.5.2 Arcast Business Overview
12.5.3 Arcast Vacuum Inert Gas Atomization (VIGA) Processing Technology Product Models, Descriptions and Specifications
12.5.4 Arcast Vacuum Inert Gas Atomization (VIGA) Processing Technology Capacity, Sales, Price, Revenue and Gross Margin (2020-2025)
12.5.5 Arcast Vacuum Inert Gas Atomization (VIGA) Processing Technology Sales by Product in 2024
12.5.6 Arcast Vacuum Inert Gas Atomization (VIGA) Processing Technology Sales by Application in 2024
12.5.7 Arcast Vacuum Inert Gas Atomization (VIGA) Processing Technology Sales by Geographic Area in 2024
12.5.8 Arcast Vacuum Inert Gas Atomization (VIGA) Processing Technology SWOT Analysis
12.5.9 Arcast Recent Developments
12.6 Topcast
12.6.1 Topcast Corporation Information
12.6.2 Topcast Business Overview
12.6.3 Topcast Vacuum Inert Gas Atomization (VIGA) Processing Technology Product Models, Descriptions and Specifications
12.6.4 Topcast Vacuum Inert Gas Atomization (VIGA) Processing Technology Capacity, Sales, Price, Revenue and Gross Margin (2020-2025)
12.6.5 Topcast Recent Developments
12.7 Avimetal
12.7.1 Avimetal Corporation Information
12.7.2 Avimetal Business Overview
12.7.3 Avimetal Vacuum Inert Gas Atomization (VIGA) Processing Technology Product Models, Descriptions and Specifications
12.7.4 Avimetal Vacuum Inert Gas Atomization (VIGA) Processing Technology Capacity, Sales, Price, Revenue and Gross Margin (2020-2025)
12.7.5 Avimetal Recent Developments
12.8 VMP
12.8.1 VMP Corporation Information
12.8.2 VMP Business Overview
12.8.3 VMP Vacuum Inert Gas Atomization (VIGA) Processing Technology Product Models, Descriptions and Specifications
12.8.4 VMP Vacuum Inert Gas Atomization (VIGA) Processing Technology Capacity, Sales, Price, Revenue and Gross Margin (2020-2025)
12.8.5 VMP Recent Developments
12.9 ACME
12.9.1 ACME Corporation Information
12.9.2 ACME Business Overview
12.9.3 ACME Vacuum Inert Gas Atomization (VIGA) Processing Technology Product Models, Descriptions and Specifications
12.9.4 ACME Vacuum Inert Gas Atomization (VIGA) Processing Technology Capacity, Sales, Price, Revenue and Gross Margin (2020-2025)
12.9.5 ACME Recent Developments
12.10 Zhuzhou ShuangLing
12.10.1 Zhuzhou ShuangLing Corporation Information
12.10.2 Zhuzhou ShuangLing Business Overview
12.10.3 Zhuzhou ShuangLing Vacuum Inert Gas Atomization (VIGA) Processing Technology Product Models, Descriptions and Specifications
12.10.4 Zhuzhou ShuangLing Vacuum Inert Gas Atomization (VIGA) Processing Technology Capacity, Sales, Price, Revenue and Gross Margin (2020-2025)
12.10.5 Zhuzhou ShuangLing Recent Developments
12.11 Hunan Skyline
12.11.1 Hunan Skyline Corporation Information
12.11.2 Hunan Skyline Business Overview
12.11.3 Hunan Skyline Vacuum Inert Gas Atomization (VIGA) Processing Technology Product Models, Descriptions and Specifications
12.11.4 Hunan Skyline Vacuum Inert Gas Atomization (VIGA) Processing Technology Capacity, Sales, Price, Revenue and Gross Margin (2020-2025)
12.11.5 Hunan Skyline Recent Developments
12.12 Zhuzhou Hanhe
12.12.1 Zhuzhou Hanhe Corporation Information
12.12.2 Zhuzhou Hanhe Business Overview
12.12.3 Zhuzhou Hanhe Vacuum Inert Gas Atomization (VIGA) Processing Technology Product Models, Descriptions and Specifications
12.12.4 Zhuzhou Hanhe Vacuum Inert Gas Atomization (VIGA) Processing Technology Capacity, Sales, Price, Revenue and Gross Margin (2020-2025)
12.12.5 Zhuzhou Hanhe Recent Developments
13 Value Chain and Supply-Chain Analysis
13.1 Vacuum Inert Gas Atomization (VIGA) Processing Technology Industry Chain
13.2 Vacuum Inert Gas Atomization (VIGA) Processing Technology Upstream Materials Analysis
13.2.1 Raw Materials
13.2.2 Key Suppliers Market Share & Risk Assessment
13.3 Vacuum Inert Gas Atomization (VIGA) Processing Technology Integrated Production Analysis
13.3.1 Manufacturing Footprint Analysis
13.3.2 Production Technology Overview
13.3.3 Regional Cost Drivers
13.4 Vacuum Inert Gas Atomization (VIGA) Processing Technology Sales Channels and Distribution Networks
13.4.1 Sales Channels
13.4.2 Distributors
14 Vacuum Inert Gas Atomization (VIGA) Processing Technology Market Dynamics
14.1 Industry Trends and Evolution
14.2 Market Growth Drivers and Emerging Opportunities
14.3 Market Challenges, Risks, and Restraints
15 Key Findings in the Global Vacuum Inert Gas Atomization (VIGA) Processing Technology Study
16 Appendix
16.1 Research Methodology
16.1.1 Methodology/Research Approach
16.1.1.1 Research Programs/Design
16.1.1.2 Market Size Estimation
16.1.1.3 Market Breakdown and Data Triangulation
16.1.2 Data Source
16.1.2.1 Secondary Sources
16.1.2.2 Primary Sources
16.2 Author Details
TABLE OF FIGURES
List of Tables
List of Figures
KEY QUESTIONS ADDRESSED BY THE REPORT
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USD 2900.00
(Single User License)
Vacuum induction melting and inert gas atomization is the leading process for production of a variety of high-performance metal powders and essential for quality manufacturing of Ni-based super-alloys as well as Fe-, Co-, Cr-based and other special alloy powders. In the VIGA system, a vacuum induction melting unit is integrated with an inert gas atomization unit. The starting materials are melted using electromagnetic induction which couples electrical power into the crucible/material under vacuum or in an inert gas atmosphere. Once the desired melt homogeneity and chemical composition have been achieved, the material is poured into a tundish by crucible tilting. The fine metal stream flowing from the tundish orifice into the atomization nozzle system is subject to a high-pressure, inert-gas jet and then atomized. The combination of molten metal and gas jet creates a spray of micro-droplets that solidifies in the atomization tower and forms fine powder with spherical shape.
Published Date: 2024-04-07
Pages: 108
USD 4900.00
(Single User License)
Vacuum induction melting and inert gas atomization is the leading process for production of a variety of high-performance metal powders and essential for quality manufacturing of Ni-based super-alloys as well as Fe-, Co-, Cr-based and other special alloy powders. In the VIGA system, a vacuum induction melting unit is integrated with an inert gas atomization unit. The starting materials are melted using electromagnetic induction which couples electrical power into the crucible/material under vacuum or in an inert gas atmosphere. Once the desired melt homogeneity and chemical composition have been achieved, the material is poured into a tundish by crucible tilting. The fine metal stream flowing from the tundish orifice into the atomization nozzle system is subject to a high-pressure, inert-gas jet and then atomized. The combination of molten metal and gas jet creates a spray of micro-droplets that solidifies in the atomization tower and forms fine powder with spherical shape.
Published Date: 2024-01-18
Pages: 121
USD 3950.00
(Single User License)
Vacuum induction melting and inert gas atomization is the leading process for production of a variety of high-performance metal powders and essential for quality manufacturing of Ni-based super-alloys as well as Fe-, Co-, Cr-based and other special alloy powders. In the VIGA system, a vacuum induction melting unit is integrated with an inert gas atomization unit. The starting materials are melted using electromagnetic induction which couples electrical power into the crucible/material under vacuum or in an inert gas atmosphere. Once the desired melt homogeneity and chemical composition have been achieved, the material is poured into a tundish by crucible tilting. The fine metal stream flowing from the tundish orifice into the atomization nozzle system is subject to a high-pressure, inert-gas jet and then atomized. The combination of molten metal and gas jet creates a spray of micro-droplets that solidifies in the atomization tower and forms fine powder with spherical shape.
Published Date: 2024-01-03
Pages: 101
USD 2900.00
(Single User License)
The global Vacuum Inert Gas Atomization (VIGA) Processing Technology market size was US$ 99 million in 2025 and is forecast to reach a readjusted size of US$ 244 million by 2032 with a CAGR of 14.0% during the forecast period 2026-2032.
Published: 2026-01-05
Pages: 99
The global Vacuum Inert Gas Atomization (VIGA) Processing Technology market was valued at US$ 99 million in 2025 and is anticipated to reach US$ 244 million by 2032, at a CAGR of 14.0% from 2026 to 2032.
Published: 2026-01-05
Pages: 145
The global market for Vacuum Inert Gas Atomization (VIGA) Processing Technology was estimated to be worth US$ 99 million in 2025 and is projected to reach US$ 244 million, growing at a CAGR of 14.0% from 2026 to 2032.
Published: 2026-01-05
Pages: 117
The global Vacuum Inert Gas Atomization (VIGA) Processing Technology market size was US$ 87.8 million in 2024 and is forecast to a readjusted size of US$ 217 million by 2031 with a CAGR of 14.0% during the forecast period 2025-2031.
Published: 2025-09-10
Pages: 92
The global market for Vacuum Inert Gas Atomization (VIGA) Processing Technology was estimated to be worth US$ 87.8 million in 2024 and is forecast to a readjusted size of US$ 217 million by 2031 with a CAGR of 14.0% during the forecast period 2025-2031.
Published: 2025-01-19
Pages: 118
The global market for Vacuum Inert Gas Atomization (VIGA) Processing Technology was valued at US$ 87.8 million in the year 2024 and is projected to reach a revised size of US$ 217 million by 2031, growing at a CAGR of 14.0% during the forecast period.
Published: 2025-01-19
Pages: 104
Vacuum induction melting and inert gas atomization is the leading process for production of a variety of high-performance metal powders and essential for quality manufacturing of Ni-based super-alloys as well as Fe-, Co-, Cr-based and other special alloy powders. In the VIGA system, a vacuum induction melting unit is integrated with an inert gas atomization unit. The starting materials are melted using electromagnetic induction which couples electrical power into the crucible/material under vacuum or in an inert gas atmosphere. Once the desired melt homogeneity and chemical composition have been achieved, the material is poured into a tundish by crucible tilting. The fine metal stream flowing from the tundish orifice into the atomization nozzle system is subject to a high-pressure, inert-gas jet and then atomized. The combination of molten metal and gas jet creates a spray of micro-droplets that solidifies in the atomization tower and forms fine powder with spherical shape.
Published: 2024-04-07
Pages: 108
Vacuum induction melting and inert gas atomization is the leading process for production of a variety of high-performance metal powders and essential for quality manufacturing of Ni-based super-alloys as well as Fe-, Co-, Cr-based and other special alloy powders. In the VIGA system, a vacuum induction melting unit is integrated with an inert gas atomization unit. The starting materials are melted using electromagnetic induction which couples electrical power into the crucible/material under vacuum or in an inert gas atmosphere. Once the desired melt homogeneity and chemical composition have been achieved, the material is poured into a tundish by crucible tilting. The fine metal stream flowing from the tundish orifice into the atomization nozzle system is subject to a high-pressure, inert-gas jet and then atomized. The combination of molten metal and gas jet creates a spray of micro-droplets that solidifies in the atomization tower and forms fine powder with spherical shape.
Published: 2024-01-18
Pages: 121
Vacuum induction melting and inert gas atomization is the leading process for production of a variety of high-performance metal powders and essential for quality manufacturing of Ni-based super-alloys as well as Fe-, Co-, Cr-based and other special alloy powders. In the VIGA system, a vacuum induction melting unit is integrated with an inert gas atomization unit. The starting materials are melted using electromagnetic induction which couples electrical power into the crucible/material under vacuum or in an inert gas atmosphere. Once the desired melt homogeneity and chemical composition have been achieved, the material is poured into a tundish by crucible tilting. The fine metal stream flowing from the tundish orifice into the atomization nozzle system is subject to a high-pressure, inert-gas jet and then atomized. The combination of molten metal and gas jet creates a spray of micro-droplets that solidifies in the atomization tower and forms fine powder with spherical shape.
Published: 2024-01-03
Pages: 101
REPORT COVERAGE
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OVERVIEW
MARKET SEGMENTATION
CHAPTER OUTLINE
WHY THIS REPORT
QYRESEARCH'S STRENGTHS
TABLE OF CONTENTS
TABLE OF FIGURES
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