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市场调查报告书
商品编码
1280660
有机朗肯循环市场规模、市场份额、应用分析、区域展望、增长趋势、主要参与者、竞争战略、预测,2023-2031 年Organic Rankine Cycle Market Size, Market Share, Application Analysis, Regional Outlook, Growth Trends, Key Players, Competitive Strategies and Forecasts, 2023 To 2031 |
有机朗肯循环的全球市场在过去几年经历了巨大的增长。 在 2023 年至 2031 年的预测期内,该市场预计将以 10% 的复合年增长率增长。 有机朗肯循环 (ORC) 是一种将废热转化为可用电能的热力学过程,为发电提供了一种环保解决方案。 对清洁和可再生能源的需求不断增加、政府为减少碳足迹所做的努力以及 ORC 在各种最终用途行业中的采用率不断提高是促进有机朗肯循环市场增长的主要因素。 有机朗肯循环市场的主要驱动力之一是对清洁能源不断增长的需求。 减少二氧化碳排放的需要和对化石燃料的依赖正在推动 ORC 等可再生能源的采用。 ORC 技术可以利用地热井、生物质和废气等多种来源的废热,提供一种高效且具有成本效益的发电方法。 世界各国政府出台了各种举措和政策,以减少碳排放和促进清洁能源的采用。 例如,欧盟 (EU) 制定了到 2020 年可再生能源产量达到 20% 的目标,这对 ORC 技术产生了巨大的需求。 另一方面,ORC 系统的高安装和维护成本可能会抑制市场增长。 此外,对ORC技术认知度低和替代技术的存在也可能阻碍部分地区采用ORC系统。 然而,为降低成本和提高 ORC 系统效率而进行的持续研究和开发有望在未来几年为市场增长创造机会。
对清洁能源不断增长的需求和日益严重的环境问题正在推动有机朗肯循环 (ORC) 市场的增长。 ORC技术被认为是一种将低温废热转化为电能的高效且具有成本效益的解决方案,可用于多种应用。 根据国际能源署 (IEA) 的报告,余热占工业能源消耗的 50% 以上,而 ORC 系统有潜力回收高达 80% 的这种余热。 此外,旨在促进清洁能源和减少温室气体排放的政府举措也推动了 ORC 市场的增长。 例如,在欧盟(EU),能源效率指令设定了到2030年节能32.5%的目标,而ORC技术被视为实现这一目标的重要工具。
地热发电以其低成本、高效率、低碳等优点越来越受欢迎。 ORC 技术广泛用于利用这种可再生能源的地热发电。 ORC系统可以使用低温水和蒸汽从地热资源中发电,这在以前被认为是无法使用的。 随着 ORC 系统在地热发电中的应用不断推进,ORC 市场有望增长。 例如,据国际地热协会(IGA)预测,2020年地热发电装机容量将达到15.4吉瓦,预计2025年将达到18.4吉瓦。
ORC技术广泛应用于废热回收、生物质发电、热电联产(CHP)系统等各种工业应用。 工业部门对节能解决方案不断增长的需求正在推动 ORC 市场的增长。 ORC 系统用于回收钢铁生产、水泥生产和玻璃生产等各种工业过程中的废热来发电。 根据国际可再生能源机构(IRENA)的一份报告,工业部门约占全球能源消耗的37%,该部门余热回收潜力巨大。 工业部门对节能解决方案的需求不断增长,预计将推动 ORC 市场的增长。
有机朗肯循环 (ORC) 市场的主要製约因素之一是初始投资成本高。 ORC 系统需要专门的设备和技术,例如涡轮机、膨胀机、泵和热交换器,并且安装和维护成本高昂。 此外,ORC 系统的复杂性需要经验丰富的专业人士来熟练设计、安装和操作它们,这也推高了整体投资成本。 例如,根据国际能源署的一份报告,ORC 系统的初始投资成本在每千瓦装机容量 2,000 至 4,000 欧元之间,这对于许多中小企业来说可能是一笔不菲的投资。 此外,高资本成本可能会阻碍潜在投资者进入市场并限制 ORC 市场的增长。 然而,最近的技术进步正在降低 ORC 系统的初始成本。 例如,模块化和标准化的 ORC 系统的开发减少了安装时间和成本,控制系统的集成提高了系统效率并降低了维护和运营成本。 儘管取得了这些进步,但高昂的初始投资成本仍然是 ORC 市场增长的挑战。
有机朗肯循环 (ORC) 市场的应用领域包括余热回收、生物质能、地热能、太阳能热能、石油和天然气(天然气管道压力站)以及废物能源转换。 在这些应用中,由于对用于从工业废热中回收能量的 ORC 系统的需求不断增加,废热回收领域□□在 2022 年的收入中占据了最高的市场份额。 预计在 2023-2031 年的预测期内,余热回收应用领域将以最高复合年增长率增长。 此外,由于对可再生能源的需求不断增加和采用可持续废物管理做法,废物转化为能源的应用部门预计在同一时期也将大幅增长。
有机朗肯循环 (ORC) 市场可根据输出容量分为四类:<1 MWe、>1-5 MWe、>5-10 MWe 和>10 MWe。 由于对用于地热和余热回收应用的小型 ORC 系统的需求不断增长,□1 MWe 部分预计将在 2023 年至 2031 年的预测期内保持最高的复合年增长率。 这些系统被中小型工业广泛采用,因为它们可以有效地利用低温热源发电。 由于在生物质、废热回收和太阳能热应用中越来越多地安装 ORC 系统,>1-5 MWe 部分在 2022 年占据了最大的收入份额。 由于大型地热和废热回收应用中对 ORC 系统的需求增加,预计 >5-10 MWe 的细分市场也将出现显着增长。 由于安装量有限,主要用于地热和生物质能应用,预计 10MWe 以上的部分在预测期内将适度增长。 随着温室气体排放的减少和可再生能源发电量的增加,预计所有输出领域对 ORC 系统的需求都会增加,但低于 1MWe 和 1-5MWe 的领域将增长最快。
由于电力需求增加和对可持续能源的需求增加,预计亚太地区在预测期内将创下最高的复合年增长率。 在 2023-2031 年的预测期内,亚太有机朗肯循环市场预计将以 13.5% 的复合年增长率增长。 该地区的市场增长归因于积极的政府举措、增加对可再生能源的投资以及多个主要参与者的存在。 北美和欧洲也对全球有机朗肯循环市场做出了重大贡献。 在北美,由于对可再生能源的需求不断增长以及对减少碳排放的兴趣日益浓厚,美国在市场上占据主导地位。 在欧洲,德国、法国和英国等国家正在引领市场并取得显着增长。
全球有机朗肯循环市场竞争激烈且分散,市场上有几家主要参与者。 主要参与者正专注于战略合作伙伴关係、合作和併购,以扩大他们的产品供应并增加他们的市场占有率。 该市场的主要参与者之一是 Turboden S.p.A.,该公司在欧洲和亚太地区拥有强大的影响力。 该公司为各种应用提供有机朗肯循环系统,包括地热、生物质和废热回收。 2020 年,我们宣布与 Nippon Steel Engineering Co., Ltd. 建立战略合作伙伴关係,为日本市场开发有机朗肯循环发电厂。 总之,由于对可再生能源的需求不断增加以及对减少二氧化碳排放的关注日益增加,全球有机朗肯循环市场正在经历显着增长。 市场竞争激烈,主要参与者正在采取各种战略,如合作伙伴关係、协作和产品开发,以增加他们的市场占有率和收入。
The global organic Rankine cycle market has been witnessing significant growth over the years. The market is expected to grow at a CAGR of 10% during the forecast period of 2023 to 2031. The organic Rankine cycle (ORC) is a thermodynamic process that converts waste heat into usable electricity, providing an eco-friendly solution for power generation. The increasing demand for clean and renewable energy sources, government initiatives to reduce carbon emissions, and the rising adoption of ORC in various end-use industries are some of the key drivers contributing to the growth of the organic Rankine cycle market. One of the major drivers for the organic Rankine cycle market is the growing demand for clean energy sources. The need to reduce carbon emissions and dependence on fossil fuels has led to the adoption of renewable energy sources such as ORC. The ORC technology can harness waste heat from various sources like geothermal wells, biomass, and exhaust gases, providing an efficient and cost-effective way to generate power. Several governments worldwide are introducing various initiatives and policies to reduce carbon emissions and promote the adoption of clean energy sources. For instance, the European Union has set a target of producing 20% of its energy from renewable sources by 2020, creating a significant demand for ORC technology. In contrast, the high installation and maintenance costs of ORC systems could act as a restraint for market growth. Additionally, the lack of awareness about ORC technology and the availability of alternative technologies could also hinder the adoption of ORC systems in some regions. Nevertheless, ongoing research and development activities to reduce the cost and enhance the efficiency of ORC systems are expected to create opportunities for market growth in the coming years.
The increasing demand for clean energy and rising environmental concerns are driving the growth of the organic Rankine cycle (ORC) market. The ORC technology is considered a highly efficient and cost-effective solution for converting low-temperature waste heat into electricity, which can be used for various applications. As per the International Energy Agency (IEA) report, waste heat accounts for more than 50% of industrial energy consumption, and ORC systems have the potential to recover up to 80% of this waste heat. Furthermore, government initiatives to promote clean energy and reduce greenhouse gas emissions are also supporting the growth of the ORC market. For instance, in the European Union, the Energy Efficiency Directive has set a target of 32.5% energy savings by 2030, and ORC technology is seen as an important tool to achieve this target.
Geothermal energy is becoming increasingly popular due to its low cost, high efficiency, and low carbon emissions. The ORC technology is being widely adopted in geothermal power generation to harness this renewable energy source. The ORC system is capable of generating electricity from geothermal resources with low-temperature water or steam, which was previously considered unusable. The increasing adoption of ORC systems in geothermal power generation is expected to drive the growth of the ORC market. For instance, according to the International Geothermal Association (IGA), the installed capacity of geothermal power generation reached 15.4 GW in 2020, and it is expected to reach 18.4 GW by 2025.
ORC technology is being widely used in various industrial applications such as waste heat recovery, biomass power generation, and combined heat and power (CHP) systems. The growing demand for energy-efficient solutions in the industrial sector is driving the growth of the ORC market. ORC systems are being used to recover waste heat from various industrial processes, such as steel production, cement production, and glass manufacturing, to generate electricity. According to a report by the International Renewable Energy Agency (IRENA), the industrial sector is responsible for approximately 37% of global energy consumption, and the potential for waste heat recovery in this sector is significant. The increasing demand for energy-efficient solutions in the industrial sector is expected to drive the growth of the ORC market.
One of the main restraints for the organic Rankine cycle (ORC) market is the high initial investment costs. The ORC systems require specialized equipment and technology, such as a turbine or an expander, a pump, and a heat exchanger, among others, which can be costly to install and maintain. Additionally, the complexity of the ORC systems requires skilled and experienced professionals to design, install and operate them, which also adds to the overall investment cost. For instance, according to a report by the International Energy Agency, the initial investment cost of an ORC system ranges from €2,000 to €4,000 per kW of installed capacity, which can be a significant investment for many small and medium-sized enterprises. Furthermore, high capital costs may deter potential investors from entering the market and could limit the growth of the ORC market. However, recent advancements in technology have helped to reduce the initial costs of ORC systems. For example, the development of modular and standardized ORC systems has reduced installation time and costs, and the integration of control systems has increased the efficiency of the systems, reducing maintenance and operating costs. Despite these advancements, high initial investment costs remain a challenge for the growth of the ORC market.
The application segment of the organic Rankine cycle (ORC) market includes waste heat recovery, biomass, geothermal, solar thermal, oil & gas (gas pipeline pressure stations), and waste to energy. Among these applications, the waste heat recovery segment held the highest market share in revenue in 2022 due to the increasing demand for ORC systems for energy recovery from industrial waste heat. The waste heat recovery application segment is expected to grow at the highest CAGR during the forecast period of 2023-2031. The report further indicates that the waste-to-energy application segment is also expected to witness significant growth during the same period, driven by the increasing demand for renewable energy sources and the adoption of sustainable waste management practices.
The organic Rankine cycle (ORC) market can be segmented based on power output capacity, with four categories: ≤ 1 MWe, > 1 - 5 MWe, > 5 - 10 MWe, and > 10 MWe. The ≤ 1 MWe segment is expected to hold the highest CAGR during the forecast period of 2023 to 2031 due to the increasing demand for small-scale ORC systems in the geothermal and waste heat recovery applications. These systems are being widely adopted by small and medium-scale industries, as they provide an efficient way to generate power from low-temperature heat sources. The > 1 - 5 MWe segment held the largest revenue share in 2022 due to the increasing installation of ORC systems in biomass, waste heat recovery, and solar thermal applications. The > 5 - 10 MWe segment is also expected to witness significant growth due to the increasing demand for ORC systems in large-scale geothermal and waste heat recovery applications. The > 10 MWe segment is expected to witness moderate growth during the forecast period due to the limited number of installations in this category, mainly in the geothermal and biomass applications. With the increasing focus on reducing greenhouse gas emissions and increasing renewable energy generation, the demand for ORC systems is expected to increase in all power output segments, with the highest growth expected in the ≤ 1 MWe and > 1 - 5 MWe segments.
The Asia-Pacific region is expected to witness the highest CAGR during the forecast period owing to the increasing demand for electricity and the rising need for sustainable energy sources. The Asia-Pacific organic Rankine cycle market is projected to grow at a CAGR of 13.5% during the forecast period of 2023 to 2031. The region's market growth can be attributed to favorable government initiatives, increasing investments in renewable energy, and the presence of several key players. North America and Europe are also significant contributors to the global organic Rankine cycle market. In North America, the United States dominates the market due to the increasing demand for renewable energy sources and the rising focus on reducing carbon emissions. Europe is also witnessing significant growth, with countries like Germany, France, and the United Kingdom leading the market.
The global organic Rankine cycle market is highly competitive and fragmented, with several key players operating in the market. The major players are focused on strategic partnerships, collaborations, and mergers and acquisitions to expand their product offerings and increase their market presence. One of the key players in the market is Turboden S.p.A., which has a strong presence in Europe and Asia-Pacific regions. The company offers a range of organic Rankine cycle systems for various applications, including geothermal, biomass, and waste heat recovery. In 2020, the company announced a strategic partnership with Nippon Steel Engineering Co., Ltd. to develop organic Rankine cycle power plants for the Japanese market. In conclusion, the global organic Rankine cycle market is witnessing significant growth due to the increasing demand for renewable energy sources and the rising focus on reducing carbon emissions. The market is highly competitive, with key players adopting various strategies such as partnerships, collaborations, and product development to increase their market presence and revenue.
This study report represents analysis of each segment from 2021 to 2031 considering 2022 as the base year. Compounded Annual Growth Rate (CAGR) for each of the respective segments estimated for the forecast period of 2022 to 2031.
The current report comprises of quantitative market estimations for each micro market for every geographical region and qualitative market analysis such as micro and macro environment analysis, market trends, competitive intelligence, segment analysis, porters five force model, top winning strategies, top investment markets, emerging trends and technological analysis, case studies, strategic conclusions and recommendations and other key market insights.
The complete research study was conducted in three phases, namely: secondary research, primary research, and expert panel review. key data point that enables the estimation of Organic Rankine Cycle market are as follows:
Micro and macro environment factors that are currently influencing the Organic Rankine Cycle market and their expected impact during the forecast period.
Market forecast was performed through proprietary software that analyzes various qualitative and quantitative factors. Growth rate and CAGR were estimated through intensive secondary and primary research. Data triangulation across various data points provides accuracy across various analyzed market segments in the report. Application of both top down and bottom-up approach for validation of market estimation assures logical, methodical and mathematical consistency of the quantitative data.