Organic Rankine Cycle (ORC) Waste Heat to Power Market::' Will Grow At Excellent CAGR of 12.00%, Industry Trends, Opportunity Analysis, Market Competition, Market Analysis Insight By 2029
Data Bridge Market Research has recently published a Report, titled, "Organic Rankine Cycle (ORC) Waste Heat to Power Market" The report offers an extensive analysis of key growth strategies, drivers, opportunities, key segment, Porter's Five Forces analysis, and competitive landscape. The top-notch Organic Rankine Cycle (ORC) Waste Heat to Power market research report provides estimations about the growth rate and the market value based on market dynamics and growth-inducing factors. While preparing this market analysis report, a few of the attributes that have been adopted include the highest level of spirit, practical solutions, committed research and analysis, innovation, integrated approaches, and the most up-to-date technology. The report offers a wide-ranging statistical analysis of the market’s continuous developments, capacity, production, production value, cost/profit, supply/demand, and import/export. The winning Organic Rankine Cycle (ORC) Waste Heat to Power market report also assesses the growth rate and the market value based on market dynamics and growth-inducing factors.
Data Bridge Market Research analyses that the global organic rankine cycle (ORC) waste heat to power market is expected to reach the value of USD 3,637,069.31 thousand by 2029, at a CAGR of 8.6% during the forecast period. The organic rankine cycle (ORC) waste heat to power market report also comprehensively covers pricing analysis, patent analysis, and technological advancements.
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Market Overview:
Organic rankine cycle (ORC) systems are used for power production from low to medium-temperature heat sources at 80 to 350 °C and for small-medium applications at any temperature. This technology allows for the exploitation of low-grade heat that otherwise would be wasted. The working principle of an organic rankine cycle power plant is similar to the most widely used process for power generation, the clausius-rankine cycle.
The main difference is using organic substances instead of water (steam) as a working fluid. The organic working fluid has a lower boiling point and a higher vapor pressure than water and is, therefore, able to use low-temperature heat sources to produce electricity. The organic fluid is chosen to best fit the heat source according to their differing thermodynamic properties, thus obtaining higher efficiencies of both cycle and expander.
Opportunities for Players:
· Rapid industrialization and climate change concerns
Industrialization is a process of adopting an economy based on manufacturing. This step involves many changes that help the society's economy grow and prosper. Industrialization does not seem to have a sudden change, but it takes a gradual change that happens over a period. Thus, indirectly there will be a large number of fossil fuels, which in turn generate the climate.
The cause of climate change has been a serious issue that has been changing with the rapid increase in industrialization. However, industrialization is the route to economic development, but climate change is one of the major concerns that must be controlled. This will lead to adopting sustainable and efficient technologies in the industrial process, including the WHP system. The adoption of such technologies with the increase in industrialization along with the climate change concerns will help to protect the environment.
Some of the major players operating in the Metal Injection molding market are:
· MITSUBISHI HEAVY INDUSTRIES, LTD
· Kaishan USA
· Strebl Energy Pte Ltd
· ORCAN ENERGY AG
· ALFA LAVAL
· Fujian Snowman Co., Ltd
· Ormat, Rank
· TMEIC
· Triogen
· ABB
· Siemens Energy (Siemens AG)
· Dürr Group
· ElectraTherm Inc. (BITZER Group)
· Enerbasque, Enertime
· Enogia
· EXERGY
· CLIMEON
· INTEC Engineering GmbH
· Zuccato Energia srl
· Opel Energy Systems Pvt. Ltd
· Corycos Group
· CTMI - Steam Turbines
· BorgWarner Inc
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The report provides insights on the following pointers:
Market Penetration: Comprehensive information on the product portfolios of the top players in the Organic Rankine Cycle (ORC) Waste Heat to Power market
Product Development/Innovation: Detailed insights on upcoming technologies, R&D activities, and product launches in the market
Competitive Assessment: In-depth assessment of the market strategies, and geographic and business segments of the leading players in the market
Market Development: Comprehensive information about emerging markets.This report analyzes the market for various segments across geographies
Market Diversification: Exhaustive information about new products, untapped geographies, recent developments, and investments in the Organic Rankine Cycle (ORC) Waste Heat to Power Market
Market Dynamics: Organic Rankine Cycle (ORC) Waste Heat to Power Market
This section deals with understanding the market drivers, advantages, opportunities, restraints, and challenges. All of this is discussed in detail as below:
Drivers
· Upsurge in the reduction of usage of primary energy in industrial operations
Waste heat to power is one of the adoptable renewable sources to generate electricity. This technique is found to be the most efficient resource to generate power as it helps to reduce the usage of energy or fuels for industrial processes, and the waste heat generated is used to generate emission-free electricity, which is further used in the normal industrial process or sold to the grid for distribution.
The waste heat generated is considered a by-product in most industries, such as steel paper manufacturing, refineries, chemical, and general manufacturing, as the waste heat is produced in industrial operations. Thus, the energy or the cost involved in running the main industrial operation will also generate waste heat that can be dumped into the environment.
· Increased focus on improving the power plant efficiency
The world's electricity generation is majorly dependent on the fossil fuel resources such as coal, natural gas, and oil. The number of installed fossil-fired power generation plants has increased globally, and the development of such power plants is trending across the globe. However, waste heat is discharged in a power plant and can be dumped in the environment. How recovering the waste heat is the main approach to improve thermal efficiencies further and reduce greenhouse gas emissions for fossil-fired power plants.
Moreover, it is found that adopting technologies to recover waste heat is gaining importance to improve power plant efficiency. Thus, a waste heat ORC system is applied, based on a closed loop thermodynamic cycle for generating electricity and thermal power, which is suitable for plant operations. This system has been found to support various power plant functions such as economizer, heat pump, rotary heat exchanger, regenerator, and many others. This will support the functioning of the power plant and improves its efficiency.
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