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Zero Liquid Discharge Systems Market by Type, Process, Capacity, Application, End-Use Industry, and Region - Global Forecast to 2029

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    Report

  • 280 Pages
  • December 2024
  • Region: Global
  • Markets and Markets
  • ID: 4755954

This report is expected to help stakeholders obtain an in-depth understanding of the competitive landscape of the market and gain insights to improve the position of their businesses

The Zero liquid discharge system market size is projected to grow from USD 7.80 billion in 2024 to USD 11.48 billion by 2029, registering a CAGR of 8.0% during the forecast period in terms of value. The global zero liquid discharge system market is witnessing growth due to its versatile properties and it is also widely used in various industries due to its exceptional properties. Furthermore, zero liquid discharge system are required for the application in various end use industries like energy & power, chemicals & petrochemicals, food & beverages, textiles, pharmaceuticals, semiconductors & electronics, and other end use industries, which fuels the need for zero liquid discharge systems.

Pre treatment process type is projected to be the second fastest process type in terms of value.

Pre treatment process type is projected to be the second fastest process type in terms of value in the zero liquid discharge system market due to various factors. The pre treatment process is one of the initial process in the zero liquid discharge systems. As pre treatment process removes contamination and its conditions the water. The goal with which the pre treatment process is done is to reduce the amount of contaminants in the water and prepare it for downstream equipment. The pre treatment method includes process like filtering, chemical treatment, coagulation, clarification, microfiltration and ultrafiltration.

This process also reduces total suspended solids, chemical oxygen demand, and turbidity. Pre treatment is important process as it helps to protect downstream membrane process, minimize the need for downstream treatment and it also help downstream equipment perform more efficiently. Pre treatment process is carried out mostly in end use industries like energy & power, chemicals & petrochemicals, textiles. The process is followed amongst these industries as they produce large volumes of waste water and these industries require recycled water to carry out their functions.

Semiconductors & electronics end use industry is expected to be the second fastest growing end use industry for forecasted period in terms of value.

Semiconductors & electronics end use industry is expected to be the second fastest growing end use industry for forecasted period in terms of value. Electronics manufacturing process requires high purity water to avoid contamination of sensitive components. As the environmental regulations are tightened globally, the end use industry face pressure to minimize its ecological footprint. ZLD systems help the companies to adopt to these regulations by eliminating liquid waste discharge and reducing freshwater consumption, making them an attractive option for manufacturers looking to enhance their sustainability practices.

Middle East & Africa is estimated to be the second fastest growing region in terms of value for the forecasted period.

Middle East and Africa region is expected to be the second fastest growing region in forecasted period in terms of value. As these region faces severe water scarcity challenges which make it essential for the countries to practice efficient water management practices. Rapid industrialization across various end use industries like chemicals and petrochemicals, oil and gas is occuring in these region, as these industries expand they generate substantial amount of wastewater that require effective treatment solutions. Also government are implementing various regulations aimed at reducing water pollution and promoting sustainable practices. These parameters are helping the ZLD system market to grow at a faster rate.

In-depth interviews were conducted with Chief Executive Officers (CEOs), marketing directors, other innovation and technology directors, and executives from various key organizations operating in the zero liquid discharge system market, and information was gathered from secondary research to determine and verify the market size of several segments.
  • By Company Type: Tier 1 - 40%, Tier 2 - 30%, and Tier 3 - 30%
  • By Designation: C Level Executives - 20%, Directors - 10%, and Others - 70%
  • By Region: North America - 22%, Europe - 22%, APAC - 45%, ROW - 11%
The Zero liquid discharge system market comprises major players such as Alfa Laval (Sweden), AQUARION AG (Switzerland), Veolia (France), Aquatech (US), GEA Group (Germany), Praj Industries Ltd (India), H2O GmbH (Germany), Thermax Limited (India), Mitsubishi Chemical Corporation. (Japan), ANDRITZ (Austria), Toshiba Infrastructure Systems & Solutions Corporation (Japan), IEI (India), Condorchem Enviro Solutions (Spain), Kurita Water Industries Ltd (Japan), Evoqua Water Technologies LLC (US). The study includes in-depth competitive analysis of these key players in the zero liquid discharge system market, with their company profiles, recent developments, and key market strategies.

Research Coverage

This report segments the market for zero liquid discharge system market on the basis of system, process, capacity, application, end use industry, and region, and provides estimations for the overall value of the market across various regions. A detailed analysis of key industry players has been conducted to provide insights into their business overviews, products & services, key strategies, new product launches, expansions, and mergers & acquisition associated with the market for zero liquid discharge system market.

Key benefits of buying this report

This research report is focused on various levels of analysis - industry analysis (industry trends), market ranking analysis of top players, and company profiles, which together provide an overall view on the competitive landscape; emerging and high-growth segments of the zero liquid discharge system market; high-growth regions; and market drivers, restraints, opportunities, and challenges.

The report provides insights on the following pointers:

  • Market Penetration: Comprehensive information on the zero liquid discharge system market offered by top players in the global zero liquid discharge system market.
  • Analysis of drivers: (Growth trends in Asia Pacific region, uptrend in desalination equipment costs, Government implementing stringent regulations and new policies regarding water treatment) restraints (High initial investment and complexity of systems, Availability of substitutes for water treatment), opportunities (Growing public concern about water scarcity and environmental degradation, Higher growth in emerging economies of Asia Pacific) and challenges (Operational cost and high maintenance, Controlling water loss during the operation)
  • Product Development/Innovation: Detailed insights on upcoming technologies, research & development activities, and new product launches in the zero liquid discharge system market.
  • Market Development: Comprehensive information about lucrative emerging markets - the report analyzes the markets for zero liquid discharge system market across regions.
  • Market Capacity: Production capacities of companies producing zero liquid discharge system are provided wherever available with upcoming capacities for the zero liquid discharge system market.
  • Competitive Assessment: In-depth assessment of market shares, strategies, products, and manufacturing capabilities of leading players in the zero liquid discharge system market.

Table of Contents

1 Introduction
1.1 Study Objectives
1.2 Market Definition
1.3 Market Scope
1.3.1 Zero Liquid Discharge Systems Market Segmentation
1.3.2 Inclusions and Exclusions
1.3.3 Years Considered
1.3.4 Currency Considered
1.3.5 Units Considered
1.4 Stakeholders
1.5 Summary of Changes
2 Research Methodology
2.1 Research Data
2.1.1 Secondary Data
2.1.1.1 Key Secondary Sources
2.1.1.2 Key Data from Secondary Sources
2.1.2 Primary Data
2.1.2.1 Key Data from Primary Sources
2.1.2.2 Key Industry Insights
2.1.2.3 Breakdown of Interviews with Experts
2.2 Market Size Estimation
2.2.1 Bottom-Up Approach
2.2.2 Top-Down Approach
2.3 Data Triangulation
2.4 Research Assumptions
2.5 Factor Analysis
2.6 Growth Forecast
2.6.1 Supply Side
2.6.2 Demand Side
2.7 Research Limitations
2.8 Risk Assessment
3 Executive Summary
4 Premium Insights
4.1 Opportunities for Players in Zero Liquid Discharge Systems Market
4.2 Zero Liquid Discharge Systems Market, by System
4.3 Zero Liquid Discharge Systems Market, by Capacity
4.4 Zero Liquid Discharge Systems Market, by End-use Industry
4.5 Zero Liquid Discharge Systems Market, by Country
5 Market Overview
5.1 Introduction
5.2 Impact of AI/Gen AI
5.2.1 Introduction
5.2.2 Overview of Impact
5.2.2.1 Transforming Zero Liquid Discharge Systems with AI and Machine Learning
5.2.2.2 Impact of AI/Genai on Reverse Osmosis
5.2.2.3 Impact of AI on Water Treatment and Zero Liquid Discharge Systems
5.3 Market Dynamics
5.3.1 Drivers
5.3.1.1 Stringent Environmental Regulations, Industrial Expansion, and Increasing Water Scarcity in Asia-Pacific
5.3.1.2 Uptrend in Cost of Desalination Equipment
5.3.1.3 Implementation of Stringent Regulations and New Policies Regarding Water Treatment
5.3.1.4 Commitment of Various Organizations to Sustainability Initiatives
5.3.1.5 Increasing Water Scarcity Across Regions
5.3.2 Restraints
5.3.2.1 High Initial Investments and Complexity of Systems
5.3.2.2 Availability of Substitutes for Water Treatment
5.3.3 Opportunities
5.3.3.1 Growing Public Concerns About Water Scarcity and Environmental Degradation
5.3.3.2 Rapid Industrial Growth in Emerging Economies of Asia-Pacific
5.3.4 Challenges
5.3.4.1 High Maintenance and Operational Cost
5.3.4.2 Controlling Water Loss During Operation
5.4 Porter's Five Forces Analysis
5.4.1 Threat of Substitutes
5.4.2 Bargaining Power of Buyers
5.4.3 Threat of New Entrants
5.4.4 Bargaining Power of Suppliers
5.4.5 Intensity of Competitive Rivalry
5.5 Key Stakeholders and Buying Criteria
5.5.1 Key Stakeholders in Buying Process
5.5.2 Buying Criteria
5.6 Macroeconomic Indicators
5.6.1 Global GDP Trends
5.7 Value Chain Analysis
5.7.1 Raw Material Suppliers
5.7.2 Manufacturers
5.7.3 Suppliers/Distributors
5.7.4 End-use Industries
5.8 Ecosystem
5.9 Case Study Analysis
5.9.1 Zero Liquid Discharge at Pearl Gtl Plant
5.9.2 Wastewater Recycling and Zero Liquid Discharge System for Ctx Industry in China
5.9.3 Zero Liquid Discharge in Wastewater Treatment
5.10 Regulatory Landscape
5.10.1 Regulations
5.10.1.1 Europe
5.10.1.2 Asia-Pacific
5.10.1.3 North America
5.10.2 Regulatory Bodies, Government Bodies, and Other Agencies
5.11 Technology Analysis
5.11.1 Key Technologies
5.11.1.1 Membrane Technology
5.11.2 Complementary Technologies
5.11.2.1 Ultrafiltration Technology
5.11.2.2 Falling Film Evaporators
5.11.3 Adjacent Technologies
5.11.3.1 Forward Osmosis
5.12 Trends/Disruptions Impacting Customer Business
5.13 Trade Analysis
5.13.1 Export Scenario (HS Code 842121)
5.13.2 Import Scenario (HS Code 842121)
5.14 Key Conferences & Events, 2024-2025
5.15 Pricing Trend Analysis
5.15.1 Average Selling Price, by Region
5.15.2 Average Selling Price Trend of Zero Liquid Discharge Systems
5.15.3 Average Selling Price of Zero Liquid Discharge Systems of Key Players, by Capacity
5.15.4 Average Selling Price Trend of Zero Liquid Discharge Systems of Key Players, by End-use Industry
5.15.5 Average Selling Price of Zero Liquid Discharge Systems of Key Players, by End-use Industry
5.15.6 Average Selling Price of Zero Liquid Discharge Systems, by Region
5.16 Investment and Funding Scenario
5.17 Patent Analysis
5.17.1 Approach
5.17.2 Document Type
5.17.3 Insights
5.17.4 Legal Status of Patents
5.17.5 Jurisdiction Analysis
5.17.6 Top Companies/Applicants
5.17.7 Top 10 Patent Owners (US) Last 10 Years
6 Zero Liquid Discharge Systems Market, by Process
6.1 Introduction
6.2 Zero Liquid Discharge Processes
6.2.1 Pretreatment
6.2.1.1 Prevention of Scaling or Fouling by Suspended Solids and Contaminants to Drive Market
6.2.2 Filtration
6.2.2.1 Reuse of Recovered Permeates to Fuel Demand
6.2.3 Evaporation/Crystallization
6.2.3.1 Demand for Removal of Contaminants to Propel Market
7 Zero Liquid Discharge Systems Market, by Capacity
7.1 Introduction
7.2 Small Scale
7.2.1 Demand for Industries with Limited Water Resources to Drive Market
7.3 Medium Scale
7.3.1 Wide Use in Textiles, Pharmaceuticals, and Food Processing Industries to Propel Market
7.4 Large Scale
7.4.1 Critical Use in Petrochemical, Pharmaceutical, and Power Generation Sectors to Fuel Demand
8 Zero Liquid Discharge Systems Market, by Application
8.1 Introduction
8.2 Brine Disposal
8.2.1 Elimination of Discharge of Concentrated Brine into Marine Environments to Fuel Market
8.3 Chemical Waste
8.3.1 Environmental Regulations to Propel Market
8.4 Food & Beverage Waste
8.4.1 Prevention of Contamination to Drive Market
8.5 Electronics
8.5.1 Recovery of Valuable Metals Such as Gold, Silver, and Palladium to Fuel Demand
8.6 Other Applications
9 Zero Liquid Discharge Systems Market, by System
9.1 Introduction
9.2 Conventional
9.2.1 Requirement in Small and Medium Capacity Plants to Drive Market
9.3 Hybrid
9.3.1 High Water Recovery Rate to Promote Use
10 Zero Liquid Discharge Systems Market, by End-use Industry
10.1 Introduction
10.2 Energy & Power
10.2.1 Thermal Power Industry to Drive Market
10.2.2 Power Generation
10.2.3 Oil & Gas
10.3 Chemicals & Petrochemicals
10.3.1 Highly Water-Intensive Sector to Propel Market
10.4 Food & Beverages
10.4.1 Significant Effluent Volumes to Fuel Demand
10.5 Textiles
10.5.1 Heavy Effluent Discharge to Drive Market
10.6 Pharmaceuticals
10.6.1 Discharge of Hazardous Chemicals and Salts to Propel Market
10.7 Semiconductors & Electronics
10.7.1 Criticality of Processes to Fuel Market
10.8 Other End-use Industries
11 Zero Liquid Discharge Systems Market, by Region
11.1 Introduction
11.2 North America
11.2.1 US
11.2.1.1 Rapid Growth of Energy & Power and Chemicals & Petrochemicals End-use Industries to Drive Market
11.2.2 Canada
11.2.2.1 Industrial Expansion to Enhance Market Demand
11.2.3 Mexico
11.2.3.1 Scarcity of Fresh Water and Increased Investments in Manufacturing Sector to Drive Growth
11.3 Europe
11.3.1 Germany
11.3.1.1 Strong Manufacturing Base to Drive Market Growth
11.3.2 France
11.3.2.1 Large Chemical Industry to Drive Market
11.3.3 Spain
11.3.3.1 Chemicals & Petrochemicals, Energy & Power, and Pharmaceuticals Sectors to Drive Demand
11.3.4 UK
11.3.4.1 Government Policies to Drive Market
11.3.5 Italy
11.3.5.1 Healthcare and Pharmaceutical Industries to Drive Demand
11.3.6 Russia
11.3.6.1 Growing Concerns About Water Scarcity and Pollution to Drive Market
11.3.7 Rest of Europe
11.4 Asia-Pacific
11.4.1 China
11.4.1.1 Power and Wastewater Treatment Sectors to Propel Market
11.4.2 Japan
11.4.2.1 Technological Innovations in Water Treatment to Propel Market
11.4.3 India
11.4.3.1 Urbanization and Industrialization to Propel Market Growth
11.4.4 South Korea
11.4.4.1 Food & Beverage Industry to Create Demand
11.4.5 Taiwan
11.4.5.1 Regulatory Framework for Treatment of Reclaimed Water to Drive Market
11.4.6 Australia
11.4.6.1 Established Infrastructure for Water & Wastewater Treatment to Lead to Steady Demand
11.4.7 Rest of Asia-Pacific
11.5 Middle East & Africa
11.5.1 GCC Countries
11.5.1.1 Saudi Arabia
11.5.1.1.1 Economic Diversification to Enhance Market Growth
11.5.1.2 UAE
11.5.1.2.1 Rising Oil Production to Boost Market
11.5.1.3 Rest of GCC Countries
11.5.2 South Africa
11.5.2.1 Large Chemical Industry to Propel Demand
11.6 South America
11.6.1 Brazil
11.6.1.1 Chemical Processing, Pharmaceutical, Oil & Gas Processing, and Food & Beverage Industries to Drive Market
11.6.2 Argentina
11.6.2.1 Investment in Sanitation Services to Drive Market Growth
11.6.3 Rest of South America
12 Competitive Landscape
12.1 Introduction
12.2 Key Player Strategies/Right to Win, 2019-2024
12.3 Revenue Analysis, 2021-2023
12.4 Market Share Analysis, 2023
12.5 Company Valuation and Financial Metrics, 2023
12.6 Brand/Product Comparison
12.7 Company Evaluation Matrix: Key Players, 2023
12.7.1 Stars
12.7.2 Emerging Leaders
12.7.3 Pervasive Players
12.7.4 Participants
12.7.5 Company Footprint: Key Players, 2023
12.7.5.1 Company Footprint
12.7.5.2 Region Footprint
12.7.5.3 System Footprint
12.7.5.4 Process Footprint
12.7.5.5 End-use Industry Footprint
12.8 Company Evaluation Matrix: Startups/SMEs, 2023
12.8.1 Progressive Companies
12.8.2 Responsive Companies
12.8.3 Dynamic Companies
12.8.4 Starting Blocks
12.8.5 Competitive Benchmarking
12.8.5.1 Detailed List of Key Startups/SMEs
12.8.5.2 Competitive Benchmarking of Key Startups/SMEs
12.9 Competitive Scenario
12.9.1 Product Launches
12.9.2 Expansions
12.9.3 Deals
13 Company Profiles
13.1 Key Players
13.1.1 Alfa Laval
13.1.1.1 Business Overview
13.1.1.2 Products/Solutions/Services Offered
13.1.1.3 Recent Developments
13.1.1.3.1 Expansions
13.1.1.4 Analyst's View
13.1.1.4.1 Right to Win
13.1.1.4.2 Strategic Choices
13.1.1.4.3 Weaknesses and Competitive Threats
13.1.2 Aquarion AG
13.1.2.1 Business Overview
13.1.2.2 Products/Solutions/Services Offered
13.1.2.3 Recent Developments
13.1.2.3.1 Deals
13.1.2.3.2 Expansions
13.1.2.4 Analyst's View
13.1.3 Veolia
13.1.3.1 Business Overview
13.1.3.2 Products/Solutions/Services Offered
13.1.3.3 Recent Developments
13.1.3.3.1 Product Launches
13.1.3.3.2 Deals
13.1.3.3.3 Expansions
13.1.3.4 Analyst's View
13.1.3.4.1 Right to Win
13.1.3.4.2 Strategic Choices
13.1.3.4.3 Weaknesses and Competitive Threats
13.1.4 Aquatech
13.1.4.1 Business Overview
13.1.4.2 Products/Solutions/Services Offered
13.1.4.3 Recent Developments
13.1.4.3.1 Deals
13.1.4.4 Analyst's View
13.1.4.4.1 Right to Win
13.1.4.4.2 Strategic Choices
13.1.4.4.3 Weaknesses and Competitive Threats
13.1.5 Gea Group
13.1.5.1 Business Overview
13.1.5.2 Products/Solutions/Services Offered
13.1.5.3 Recent Developments
13.1.5.3.1 Expansions
13.1.5.4 Analyst's View
13.1.5.4.1 Right to Win
13.1.5.4.2 Strategic Choices
13.1.5.4.3 Weaknesses and Competitive Threats
13.1.6 Praj Industries
13.1.6.1 Business Overview
13.1.6.2 Products/Solutions/Services Offered
13.1.6.3 Analyst's View
13.1.6.3.1 Right to Win
13.1.6.3.2 Strategic Choices
13.1.6.3.3 Weaknesses and Competitive Threats
13.1.7 H2O GmbH
13.1.7.1 Business Overview
13.1.7.2 Products/Solutions/Services Offered
13.1.7.3 Analyst's View
13.1.8 Thermax Limited
13.1.8.1 Business Overview
13.1.8.2 Products/Solutions/Services Offered
13.1.8.3 Recent Developments
13.1.8.3.1 Deals
13.1.8.3.2 Expansions
13.1.8.4 Analyst's View
13.1.8.4.1 Right to Win
13.1.8.4.2 Strategic Choices
13.1.8.4.3 Weaknesses and Competitive Threats
13.1.9 Mitsubishi Chemical Corporation
13.1.9.1 Business Overview
13.1.9.2 Products/Solutions/Services Offered
13.1.9.3 Analyst's View
13.1.10 Andritz
13.1.10.1 Business Overview
13.1.10.2 Products/Solutions/Services Offered
13.1.10.3 Analyst's View
13.1.11 Toshiba Infrastructure Systems & Solutions Corporation
13.1.11.1 Business Overview
13.1.11.2 Products/Solutions/Services Offered
13.1.11.3 Analyst's View
13.1.12 Iei (Ion Exchange)
13.1.12.1 Business Overview
13.1.12.2 Products/Solutions/Services Offered
13.1.12.3 Analyst's View
13.1.13 Condorchem Enviro Solutions
13.1.13.1 Business Overview
13.1.13.2 Products/Solutions/Services Offered
13.1.13.3 Recent Developments
13.1.13.3.1 Expansions
13.1.13.4 Analyst's View
13.1.14 Kurita Water Industries Ltd.
13.1.14.1 Business Overview
13.1.14.2 Products/Solutions/Services Offered
13.1.14.3 Analyst's View
13.1.15 Evoqua Water Technologies LLC
13.1.15.1 Business Overview
13.1.15.2 Products/Solutions/Services Offered
13.1.15.3 Recent Developments
13.1.15.3.1 Deals
13.1.15.3.2 Expansions
13.1.15.4 Analyst's View
13.2 Other Players
13.2.1 Petro Sep Corporation
13.2.2 Fluence Corporation Limited
13.2.3 Envisol Arvind
13.2.4 Samco Technologies
13.2.5 Lenntech B.V.
13.2.6 Shiva Global Environmental Private Limited
13.2.7 Gmm Pfaudler
13.2.8 Ide Water Technologies
13.2.9 Saltworks Technologies Inc
13.2.10 Encon Evaporators
13.2.11 Scaleban Equipments Pvt.Ltd.
13.2.12 Memsift Innovations Pte Ltd.
13.2.13 Grundfos
13.2.14 U.S. Water Services Corporation
14 Appendix
14.1 Discussion Guide
14.2 Knowledgestore: The Subscription Portal
14.3 Customization Options
List of Figures
Figure 1 Zero Liquid Discharge Systems Market Segmentation
Figure 2 Zero Liquid Discharge Systems Market: Research Design
Figure 3 Market Size Estimation Approach: Demand Side
Figure 4 Market Size Estimation: Bottom-Up Approach
Figure 5 Market Size Estimation: Top-Down Approach
Figure 6 Zero Liquid Discharge Systems Market: Data Triangulation
Figure 7 Zero Liquid Discharge Systems Market: Factors Impacting Market
Figure 8 Conventional Zero Liquid Discharge Systems to be Larger Segment During Forecast Period
Figure 9 Evaporation/Crystallization Process to Account for Largest Share During Forecast Period
Figure 10 Energy & Power to be Largest End-use Industry During Forecast Period
Figure 11 Asia-Pacific to be Fastest-Growing Zero Liquid Discharge Systems Market
Figure 12 Asia-Pacific to Lead Zero Liquid Discharge Systems Market During Forecast Period
Figure 13 Conventional Zero Liquid Discharge Systems to be Largest Segment in Zero Liquid Discharge Systems Market During Forecast Period
Figure 14 Small Scale Segment to Capture Largest Share During Forecast Period
Figure 15 Energy & Power End-use Industry Segment to Lead Market During Forecast Period
Figure 16 India to Register Highest CAGR in Zero Liquid Discharge Systems Market
Figure 17 Drivers, Restraints, Opportunities, and Challenges in Zero Liquid Discharge Systems Market
Figure 18 Zero Liquid Discharge Systems Market: Porter's Five Forces Analysis
Figure 19 Influence of Stakeholders on Buying Process of Key End-use Industries
Figure 20 Key Buying Criteria for Top Three End-use Industries
Figure 21 Overview of Zero Liquid Discharge Systems Value Chain
Figure 22 Zero Liquid Discharge Systems: Ecosystem
Figure 23 Growing Demand in Various End-use Industries to Influence Zero Liquid Discharge Systems Market
Figure 24 Export Data for HS Code 842121-Compliant Products, by Country, 2019-2023 (USD Thousand)
Figure 25 Import Scenario for HS Code 842121-Compliant Products, 2019-2023 (USD Thousand)
Figure 26 Average Selling Price Trend of Zero Liquid Discharge Systems, 2021-2023
Figure 27 Average Selling Price, by Capacity, USD/Unit (2022-2029)
Figure 28 Average Selling Price Trend of Zero Liquid Discharge Systems of Key Players, by End-use Industry, 2023
Figure 29 Average Selling Price, by Region, USD/Unit (2022-2029)
Figure 30 Investment and Funding Scenario, 2019-2023
Figure 31 Total Number of Patents
Figure 32 Patent Analysis, by Legal Status
Figure 33 Top Jurisdiction - by Document
Figure 34 Top 10 Companies/Applicants with Highest Number of Patents
Figure 35 Evaporation/Crystallization to be Largest Process During Forecast Period
Figure 36 Medium Scale to be Largest Capacity Segment of Zero Liquid Discharge Systems Market During Forecast Period
Figure 37 Brine Disposals to be Largest Application of Zero Liquid Discharge Systems During Forecast Period
Figure 38 Conventional System to Account for Larger Market Share During Forecast Period
Figure 39 Energy & Power to be Largest End-use Industry of Zero Liquid Discharge Systems Market
Figure 42 Europe: Zero Liquid Discharge Systems Market Snapshot
Figure 43 Asia-Pacific: Zero Liquid Discharge Systems Market Snapshot
Figure 44 Revenue Analysis of Key Companies in Zero Liquid Discharge Systems Market, 2021-2023
Figure 45 Share of Leading Companies in Zero Liquid Discharge Systems Market, 2023
Figure 46 Company Valuation of Key Companies in Zero Liquid Discharge Systems Market, 2023
Figure 47 Financial Metrics of Key Companies in Zero Liquid Discharge Systems Market, 2023
Figure 48 Zero Liquid Discharge Systems Market: Brand/Product Comparison
Figure 49 Zero Liquid Discharge Systems Market: Company Evaluation Matrix (Key Players), 2023
Figure 50 Zero Liquid Discharge Systems Market: Company Footprint
Figure 51 Zero Liquid Discharge Systems Market: Company Evaluation Matrix (Startups/SMEs), 2023
Figure 52 Alfa Laval: Company Snapshot
Figure 53 Veolia: Company Snapshot
Figure 54 Gea Group: Company Snapshot
Figure 55 Praj Industries: Company Snapshot
Figure 56 Thermax Limited: Company Snapshot
Figure 57 Mitsubishi Chemical Corporation: Company Snapshot
Figure 58 Andritz: Company Snapshot
Figure 59 Toshiba Infrastructure Systems & Solutions Corporation: Company Snapshot
Figure 60 Iei: Company Snapshot
Figure 61 Kurita Water Industries Ltd.: Company Snapshot
Figure 62 Evoqua Water Technologies LLC: Company Snapshot

Companies Mentioned

  • Alfa Laval
  • Aquarion AG
  • Veolia
  • Aquatech
  • Gea Group
  • Praj Industries
  • H2O GmbH
  • Thermax Limited
  • Mitsubishi Chemical Corporation
  • Andritz
  • Toshiba Infrastructure Systems & Solutions Corporation
  • Iei (Ion Exchange)
  • Condorchem Enviro Solutions
  • Kurita Water Industries Ltd.
  • Evoqua Water Technologies LLC
  • Petro Sep Corporation
  • Fluence Corporation Limited
  • Envisol Arvind
  • Samco Technologies
  • Lenntech B.V.
  • Shiva Global Environmental Private Limited
  • Gmm Pfaudler
  • Ide Water Technologies
  • Saltworks Technologies Inc
  • Encon Evaporators
  • Scaleban Equipments Pvt.Ltd.
  • Memsift Innovations Pte Ltd.
  • Grundfos
  • U.S. Water Services Corporation

Methodology

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Table Information