![]() |
市场调查报告书
商品编码
1679279
2030 年多能源系统市场预测:按类型、能源来源、组件、应用、最终用户和地区进行的全球分析Multi Energy Systems Market Forecasts to 2030 - Global Analysis By Type, Energy Source, Component, Application, End User and By Geography |
根据 Stratistics MRC 的数据,全球多能源系统市场预计在 2024 年达到 2,514 亿美元,到 2030 年将达到 4,989 亿美元,预测期内的复合年增长率为 12.1%。
多能源系统 (MES) 无缝整合各种能源载体(电力、热能、冷却和燃料),以优化能源使用并提高效率。这些系统允许从附近区域到大面积区域的网路内不同能源形式的转换和互动。 MES使能源部门能够协同工作,而不是孤立地运作,从而提高技术、经济和环境绩效。基本组成部分包括能源中心、微电网和虚拟发电厂,有助于更有效地管理和分配能源。
对可靠和永续能源的需求不断增加
随着世界越来越重视减少碳排放和向可再生能源转型,对高效、全面的能源系统的需求至关重要。多能源系统 (MES) 透过优化电力、热能和天然气等各种能源来源的使用来提供确保稳定和永续能源供应的解决方案。此外,电动车(EV)和可再生能源储存系统的日益普及进一步推动了多能源系统市场的需求。
系统整合的复杂性
由于技术和操作的复杂性,将不同的能源来源和技术整合成一个整合系统是一项挑战。确保各个组件之间的无缝通讯和协调需要复杂的控制系统和先进的建模技术,这可能耗费资源彙整和时间。此外,不同能源系统之间缺乏标准化通讯协定和互通性,会阻碍多种能源系统的顺利整合,导致效率低和成本增加。
智慧电网和数位技术进步
智慧电网的发展使得能源管理和分配更加容易,并提高了多能源系统的效率和可靠性。物联网和人工智慧等数位技术促进能源系统的即时监控和优化,提高整体效能并实现预测性维护。此外,区块链技术融入能源系统将为透明和安全的能源交易提供机会,促进能源市场的分散化。
监管和政策的不确定性
不同地区缺乏标准化的法规和政策可能会给市场参与者带来挑战,影响投资决策和市场成长。此外,政府政策和法规的变化可能会影响多能源系统的采用和部署,导致市场不稳定。此外,多能源系统计划复杂的许可和授权要求可能会延迟实施。此外,地方、区域和国家当局之间潜在的监管衝突也增加了市场参与企业面临的不确定性。
COVID-19 的影响
疫情期间,人们对能源弹性和永续性的关注度不断提高,凸显了综合能源系统的重要性。然而,供应链中断和经济不确定性也为市场带来了挑战,影响了生产和部署时间表。这场疫情凸显了强大且有弹性的能源系统的必要性,以确保不间断的电力供应,特别是在医疗保健和通讯等关键领域。整体而言,疫情正在推动人们朝向更灵活、更具适应性的能源解决方案转变,从而推动对多能源系统的需求。
混合可再生能源系统预计将成为预测期内最大的细分市场
混合可再生能源系统部分预计将在预测期内占据最大的市场占有率,因为它结合了太阳能、风能和水力发电等多种再生能源来源,提供可靠且永续的能源供应。整合各种再生能源来源将增强能源安全并减少对石化燃料的依赖,从而促进该产业的发展。混合可再生能源系统具有更大的灵活性和弹性,适用于住宅、商业和工业等广泛的应用。
预计预测期内发电机组部分将达到最高的复合年增长率。
由于分散式和分散式发电的需求不断增加以及可再生能源技术的进步推动了发电机组的成长,预计发电机组部分将在预测期内见证最高成长率。微电网和虚拟发电厂等发电机组具有灵活性和弹性,对能源消费者来说是一个有吸引力的选择。离网和远端电气化计划的增加也推动了发电机组的高成长率。
预计北美将在预测期内占据最大的市场占有率,因为该地区的主要因素是完善的能源基础设施、政府的支持性政策以及先进能源技术的高度采用。此外,主要市场参与者的存在和对研发的大量投资进一步加强了北美在多能源系统市场的地位。
在预测期内,由于对永续能源解决方案的关注度日益增加,预计亚太地区将呈现最高的复合年增长率。对智慧电网技术的投资不断增加,促进了该地区的高成长率。中国、印度和日本等国家在多能源系统应用方面处于领先地位,并正在实施大型计划和支援政策。亚太地区都市化加速和能源消耗上升为市场扩张创造了巨大的机会。
According to Stratistics MRC, the Global Multi Energy Systems Market is accounted for $251.4 billion in 2024 and is expected to reach $498.9 billion by 2030 growing at a CAGR of 12.1% during the forecast period. Multi-Energy System (MES) seamlessly combines various energy carriers such as electricity, heat, cooling, and fuels into a unified framework to optimize energy utilization and enhance efficiency. These systems enable the conversion and interaction of different energy forms within a network, ranging from local neighbourhoods to large-scale regions. MESs improve technical, economic, and environmental performance by enabling energy sectors to collaborate rather than operate independently. Essential components include energy hubs, microgrids, and virtual power plants, which help manage and distribute energy more effectively.
Growing demand for reliable and sustainable energy
As the world increasingly focuses on reducing carbon emissions and transitioning to renewable energy sources, the need for efficient and integrated energy systems becomes crucial. Multi energy systems (MES) offer a solution by optimizing the use of various energy sources, such as electricity, heat, and gas, to provide a stable and sustainable energy supply. Additionally, the increasing adoption of electric vehicles (EVs) and renewable energy storage systems further drives the demand for multi energy systems market
Complexity in system integration
Integrating different energy sources and technologies into a cohesive system can be challenging due to technical and operational complexities. Ensuring seamless communication and coordination between various components requires advanced control systems and sophisticated modeling techniques, which can be resource-intensive and time-consuming. Additionally, the lack of standardized protocols and interoperability between different energy systems can hinder the smooth integration of multi energy systems, leading to inefficiencies and increased costs.
Advancements in smart grid & digital technologies
The development of smart grids enables better management and distribution of energy, enhancing the efficiency and reliability of multi energy systems. Digital technologies, such as IoT and AI, facilitate real-time monitoring and optimization of energy systems, improving overall performance and enabling predictive maintenance. The integration of blockchain technology into energy systems also offers opportunities for transparent and secure energy transactions, promoting decentralized energy markets.
Regulatory & policy uncertainties
Lack of standardized regulations and policies across different regions can create challenges for market players, affecting investment decisions and market growth. Additionally, changes in government policies and regulations can impact the adoption and implementation of multi energy systems, leading to market instability. The complexity of obtaining necessary permits and approvals for multi energy systems projects can also delay implementation. Furthermore, the potential for conflicting regulations between local, regional, and national authorities adds to the uncertainty faced by market participants.
Covid-19 Impact
The increased focus on energy resilience and sustainability during the pandemic has highlighted the importance of integrated energy systems. However, supply chain disruptions and economic uncertainties have also posed challenges for the market, affecting production and deployment timelines. The pandemic has underscored the need for robust and resilient energy systems to ensure uninterrupted power supply, especially in critical sectors such as healthcare and telecommunications. Overall, the pandemic has driven the shift towards more flexible and adaptable energy solutions, boosting the demand for multi energy systems.
The hybrid renewable energy systems segment is expected to be the largest during the forecast period
The hybrid renewable energy systems segment is expected to account for the largest market share during the forecast period because these systems combine multiple renewable energy sources, such as solar, wind, and hydro, to provide a reliable and sustainable energy supply. The integration of various renewable sources enhances energy security and reduces dependency on fossil fuels, driving the growth of this segment. Hybrid renewable energy systems offer increased flexibility and resilience, making them suitable for a wide range of applications, including residential, commercial, and industrial sectors.
The power generation units segment is expected to have the highest CAGR during the forecast period
Over the forecast period, the power generation units segment is predicted to witness the highest growth rate owing to increasing demand for decentralized and distributed power generation, coupled with advancements in renewable energy technologies, is driving the growth of power generation units. Power generation units, such as microgrids and virtual power plants, offer flexibility and resilience, making them attractive options for energy consumers. The rise in off-grid and remote area electrification projects also contributes to the high growth rate of the power generation units.
During the forecast period, the North America region is expected to hold the largest market share attributed to the region's well-established energy infrastructure, supportive government policies, and high adoption rate of advanced energy technologies contribute to its market leadership. Additionally, the presence of major market players and significant investments in research and development further strengthen North America's position in the multi energy systems market.
Over the forecast period, the Asia Pacific region is anticipated to exhibit the highest CAGR owing to the region's increasing focus on sustainable energy solutions. The rising investments in smart grid technologies, contribute to the high growth rate in this region. Countries like China, India, and Japan are at the forefront of multi energy systems adoption, with large-scale projects and supportive policies in place. The expanding urbanization and rising energy consumption in the Asia Pacific region create substantial opportunities for market expansion.
Key players in the market
Some of the key players in Multi Energy Systems market include ABB Ltd , Acciona Energy S.A, Brookfield Renewable Partners L.P, Constellation Energy Corporation, Duke Energy Corporation, Enphase Energy Inc, General Electric Company, Hitachi Ltd, Iberdrola S.A, NextEra Energy Resources, Orsted A/S, Pattern Energy Group Inc, Sempra Energy, Siemens Energy AG, Sungrow Power Supply Co. Ltd, TotalEnergies SE and Vivint Solar Inc.
In February 2025, ABB launched its previously announced new share buyback program of up to $1.5 billion. Based on the current ABB share price this represents a maximum of approximately 27.6 million shares.
In January 2025, ABB acquired Sensorfact BV, a fast-growing energy management company headquartered in Utrecht, Netherlands. The acquisition further expands ABB's digital energy management offering and is expected to close in Q1 2025. Financial terms were not disclosed.
In April 2024, GE announced its official launch as an independent public company defining the future of flight, following the completion of the GE Vernova spin-off. GE Aerospace will trade on the New York Stock Exchange under the ticker "GE".
Note: Tables for North America, Europe, APAC, South America, and Middle East & Africa Regions are also represented in the same manner as above.