Ionic Exchange Based Liquid Nuclear Waste Treatment : CAGR of 12.1% by 2018-25 Market : Rising Number of Nuclear Plants to Complement Fossil Fuels Sourced Energy Drives Market
Press
Release - 13 April 2018
Global
Research and Development News
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Report
Description-
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The report estimates and forecasts the Ionic
Exchange based Liquid Nuclear Waste Treatment market on the global
and regional levels. The study provides forecast between 2017 and
2025 based on revenue (US$ Mn) with 2016 as the base year. The report
comprises an exhaustive value chain analysis for each of the
segments. It provides a comprehensive view of the market. Value chain
analysis also offers detailed information about value addition at
each stage. The study includes drivers and restraints for the Ionic
Exchange based Liquid Nuclear Waste Treatment market along with their
impact on demand during the forecast period.
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The study also provides key market
indicators affecting the growth of the market. The report analyzes
opportunities in the Ionic Exchange based Liquid Nuclear Waste
Treatment market on the global and regional level. Drivers,
restraints, and opportunities mentioned in the report are justified
through quantitative and qualitative data. These have been verified
through primary and secondary resources. Furthermore, the report
analyzes substitute analysis of Ionic Exchange based Liquid Nuclear
Waste Treatment and global average price trend analysis.
The report includes Porter’s Five Forces Model
to determine the degree of competition in the Ionic Exchange based
Liquid Nuclear Waste Treatment market. The report comprises a
qualitative write-up on market attractiveness analysis, wherein
end-users and regions have been analyzed based on attractiveness for
each region. Growth rate, market size, raw material availability,
profit margin, impact strength, technology, competition, and other
factors (such as environmental and legal) have been evaluated in
order to derive the general attractiveness of the market.
The study provides a comprehensive view of the
Ionic Exchange based Liquid Nuclear Waste Treatment market by
dividing it into ionic exchange process, liquid waste type, liquid
waste source and geography segments. The ionic exchange process have
been segmented into Inorganic Natural Ion Exchangers, Organic Natural
Ion Exchangers, Synthetic inorganic Ion Exchangers, Synthetic Organic
Ion Exchangers, Modified Natural Ion Exchangers, and Others. The
liquid waste type are segmented into Low Level Waste, Intermediate
Level Waste, and High Level Waste. These segments have been analyzed
based on historic, present, and future trends.
Secondary research sources that were typically
referred to include, but were not limited to, International Atomic
Energy Agency (IAEA), Nuclear Energy Institute (NEI), World Nuclear
Association (WNA), IPFM: International Panel for Fissile Material,
company websites, financial reports, annual reports, investor
presentations, broker reports, and SEC filings. Other sources such as
internal and external proprietary databases, statistical databases
and market reports, news articles, national government documents, and
webcasts specific to companies operating in the market have also been
referred for the report.
In-depth interviews and discussions with a wide
range of key opinion leaders and industry participants were conducted
to compile this research report. Primary research represents the bulk
of research efforts, supplemented by extensive secondary research.
Key players’ product literature, annual reports, press releases,
and relevant documents were reviewed for competitive analysis and
market understanding. This helped in validating and strengthening
secondary research findings. Primary research further helped in
developing the analysis team’s expertise and market understanding.
Liquid nuclear waste from nuclear reactors needs
intensive treatment before its storage and disposal into the
environment. Liquid nuclear waste can be categorized into three
segments: high level liquid nuclear waste, low level liquid nuclear
waste, and intermediate level liquid nuclear waste.
There are mainly five types of ionic exchangers
that are utilized around the globe for the treatment of the liquid
nuclear waste. Inorganic natural ion exchangers, organic natural
ionic exchangers, synthetic inorganic ionic exchangers, synthetic
organic ionic exchangers, and modified natural ionic exchangers. All
ionic exchanger works on the ionic exchanged process which reduce the
radioactive nucleoids into precipitates and reduce the radioactivity
of the waste water.
Low level and intermediate level liquid nuclear
waste is treated effectively by the help of ionic exchangers. High
level waste needs to be stored in underground storage, far from human
interventions, for longer time duration before its radioactivity
decays naturally to permissible limits for the ionic exchange
treatment.
There are primarily five types of nuclear reactors
operating in different parts of the globe. These are pressurized
water reactors, gas cooled reactors, pressurized heavy water
reactors, boiling water reactors and others. Pressurized heavy water
reactors and boiling water reactors produces large volume of
radioactive liquid waste as compared to gas cooled reactors and
pressurized water reactors. Among different types of ionic
exchangers, majority of the liquid radioactive waste is treated by
inorganic natural ionic exchangers. Others ionic exchangers such as
organic natural ionic exchangers, synthetic inorganic ionic
exchangers, synthetic organic ionic exchangers, and modified natural
ionic exchangers are also employed.
Regional segmentation includes the current and
forecast consumption of Ionic Exchange based Liquid Nuclear Waste
Treatment in North America, Latin America, Europe, Asia Pacific, and
Middle East & Africa (MEA). Market segmentation includes demand
for consumption in all the regions individually.
The report covers detailed competitive outlook
that includes market share and profiles of key players operating in
the global market. Key players profiled in the report include Areva
SA, Bechtel Corporation, Augean PLC, SRCL Limited, Fluor Corporation,
and Svensk Kärnbränslehantering AB. Company profiles include
attributes such as company overview, number of employees, brand
overview, key competitors, business overview, business strategies,
recent/key developments, acquisitions, and financial overview
(wherever applicable).
The global Ionic Exchange based Liquid Nuclear
Waste Treatment market has been segmented as follows:
- Inorganic Natural Ion Exchangers
- Organic Natural Ion Exchangers
- Synthetic inorganic Ion Exchangers
- Synthetic Organic Ion Exchangers
- Modified Natural Ion Exchangers
- Others
- Low Level Waste
- Intermediate Level Waste
- High Level Waste
- Inorganic Natural Ion Exchangers Water Reactor (BWR)
- Organic Natural Ion Exchangers Cooled Reactors (GCR)
- Pressurized Water Reactors (PWR)
- Pressurized Heavy Water Reactors (PHWR)
- Others
- North America
- U.S.
- Canada
- Latin America
- Brazil
- Mexico
- Rest of Latin America
- Europe
- Germany
- France
- U.K.
- Russia
- Belgium
- Rest of Europe
- Asia Pacific
- China
- Japan
- India
- South Korea
- Rest of Asia Pacific
- Middle East & Africa
- GCC
- South Africa
- Rest of Middle East & Africa
– More
Clear Details get Table of Contents
https://www.researchmoz.us/ionic-exchange-based-liquid-nuclear-waste-treatment-market-global-industry-analysis-size-share-growth-trends-and-forecast-2017-2025-report.html/toc
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1. Preface
1.1. Report Scope and Market Segmentation
1.2. Research Highlights
1.1. Report Scope and Market Segmentation
1.2. Research Highlights
2. Assumptions and Methodology
2.1. Report Assumptions
2.2. Secondary Sources and Acronyms Used
2.3. Research Methodology
2.1. Report Assumptions
2.2. Secondary Sources and Acronyms Used
2.3. Research Methodology
3. Executive Summary
3.1. Market Snapshot
3.2. Key Trends
3.1. Market Snapshot
3.2. Key Trends
4. Market Overview
4.1. Product Overview
4.2. Key Industry Developments
4.3. Market Indicators
4.4. Drivers and Restraints Snapshot Analysis
4.4.1. Drivers
4.4.2. Restraints
4.4.3. Opportunity
4.5. Global Ionic Exchanged Based Liquid Nuclear waste Treatment Market Analysis and Forecast
4.6. Porter’s Analysis
4.6.1. Threat of Substitutes
4.6.2. Bargaining Power of Buyers
4.6.3. Bargaining Power of Suppliers
4.6.4. Threat of New Entrants
4.6.5. Degree of Competition
4.7. Value Chain Analysis
4.8. Global Demand-Supply Scenario
4.9. Global Ionic Exchanged Based Liquid Nuclear waste Treatment Market Outlook, 2016
4.10. Regulatory Scenario
4.11. Global Ionic Exchanged Based Liquid Nuclear waste Treatment Market: SWOT Analysis
4.1. Product Overview
4.2. Key Industry Developments
4.3. Market Indicators
4.4. Drivers and Restraints Snapshot Analysis
4.4.1. Drivers
4.4.2. Restraints
4.4.3. Opportunity
4.5. Global Ionic Exchanged Based Liquid Nuclear waste Treatment Market Analysis and Forecast
4.6. Porter’s Analysis
4.6.1. Threat of Substitutes
4.6.2. Bargaining Power of Buyers
4.6.3. Bargaining Power of Suppliers
4.6.4. Threat of New Entrants
4.6.5. Degree of Competition
4.7. Value Chain Analysis
4.8. Global Demand-Supply Scenario
4.9. Global Ionic Exchanged Based Liquid Nuclear waste Treatment Market Outlook, 2016
4.10. Regulatory Scenario
4.11. Global Ionic Exchanged Based Liquid Nuclear waste Treatment Market: SWOT Analysis
5. Ionic Exchanged Based Liquid Nuclear
waste Treatment Market Analysis, by Ionic Exchange Processing
5.1. Introduction
5.2. Key Findings
5.3. Global Ionic Exchanged Based Liquid Nuclear waste Treatment Market Value Share Analysis, by Ionic Exchange Processing
5.4. Global Ionic Exchanged Based Liquid Nuclear waste Treatment Market Forecast and Analysis, by Ionic Exchange Processing
5.4.1. Inorganic natural ion exchangers
5.4.2. Organic natural ion exchangers
5.4.3. Synthetic inorganic ion exchangers
5.4.4. Synthetic organic ion exchangers
5.4.5. Modified natural ion exchangers
5.1. Introduction
5.2. Key Findings
5.3. Global Ionic Exchanged Based Liquid Nuclear waste Treatment Market Value Share Analysis, by Ionic Exchange Processing
5.4. Global Ionic Exchanged Based Liquid Nuclear waste Treatment Market Forecast and Analysis, by Ionic Exchange Processing
5.4.1. Inorganic natural ion exchangers
5.4.2. Organic natural ion exchangers
5.4.3. Synthetic inorganic ion exchangers
5.4.4. Synthetic organic ion exchangers
5.4.5. Modified natural ion exchangers
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