PUBLISHER: Stratistics Market Research Consulting | PRODUCT CODE: 2102627
PUBLISHER: Stratistics Market Research Consulting | PRODUCT CODE: 2102627
According to Stratistics MRC, the Global Biomass Power Market is accounted for $81.2 billion in 2026 and is expected to reach $131.3 billion by 2034 growing at a CAGR of 6.2% during the forecast period. Biomass power refers to electricity generated from organic materials including wood, agricultural residues, energy crops, municipal solid waste, and animal manure through various conversion technologies including direct combustion, gasification, anaerobic digestion, pyrolysis, co-firing, and combined heat and power (CHP) systems. The market serves plant capacities ranging from below 1 MW to above 50 MW, catering to distributed and utility-scale power generation applications. Growing focus on renewable energy sources, increasing demand for sustainable waste management solutions, and supportive government policies and incentives for renewable energy are key drivers of market expansion across all regions.
Increasing global focus on renewable energy and decarbonization
The growing global commitment to reducing greenhouse gas emissions and transitioning to renewable energy sources is a primary driver for the biomass power market. Biomass power offers a dispatchable, reliable renewable energy source that can provide baseload and flexible power generation, complementing intermittent sources including solar and wind. Government policies including renewable portfolio standards, feed-in tariffs, tax incentives, and carbon pricing mechanisms are supporting biomass power development. International climate agreements and national decarbonization targets are accelerating renewable energy investment. As countries seek to diversify their energy mix and reduce fossil fuel dependence, biomass power is gaining recognition as a valuable renewable energy source, sustaining strong market growth.
High capital costs and feedstock availability challenges
The significant capital investment required for biomass power plants and challenges in securing consistent, cost-effective feedstock supply represent a major restraint for the market. Biomass power plants require substantial upfront investment in conversion equipment, fuel handling systems, and emissions control technology. Feedstock availability, quality, and cost can vary seasonally and regionally, affecting plant economics. Competition for biomass feedstocks from other industries including wood products and biofuels can affect supply and pricing. Logistics and transportation costs for bulky biomass materials add operational expenses. These cost and feedstock challenges may limit plant viability, particularly in regions with limited biomass resources or competing uses.
Integration with waste management and circular economy initiatives
The growing focus on waste management and circular economy principles presents significant opportunities for biomass power market expansion. Biomass power can utilize agricultural residues, forestry waste, and municipal solid waste that might otherwise be landfilled or burned uncontrolled. Converting waste to energy addresses multiple sustainability objectives including waste reduction, methane emission avoidance, and renewable energy generation. Increasing waste generation and landfill constraints in many regions create demand for waste-to-energy solutions. Government policies promoting waste diversion and sustainable waste management support development. As waste management challenges intensify and circular economy initiatives expand, biomass power from waste feedstocks captures growing market share.
Competition from other renewable energy sources
Intense competition from other renewable energy sources including solar, wind, and hydropower poses a significant threat to the biomass power market. Solar and wind power have experienced dramatic cost reductions, becoming increasingly cost-competitive with all generation sources. Falling battery storage costs are addressing intermittency challenges that previously favored dispatchable biomass power. Government incentives and policy support often favor wind and solar due to their lower costs and scalability. This competition may limit biomass power market share, particularly in regions with abundant solar and wind resources. Biomass must continue demonstrating its unique value proposition including dispatchability and waste management benefits.
The COVID-19 pandemic had a mixed impact on the biomass power market. Initial disruptions included project delays, supply chain interruptions, and reduced electricity demand during lockdowns. Construction and commissioning of new biomass facilities were temporarily affected. However, the pandemic reinforced government commitment to renewable energy as part of economic recovery packages. Renewable energy targets remained a priority in many regions. Waste management needs continued, supporting waste-to-energy projects. Post-pandemic, biomass power continues as a valuable renewable energy source, supported by decarbonization commitments and waste management needs.
The Direct Combustion segment is expected to be the largest during the forecast period
The Direct Combustion segment is expected to account for the largest market share during the forecast period, driven by its established technology, proven reliability, and broad applicability across diverse biomass feedstocks. Direct combustion involves burning biomass in a boiler to generate steam that drives turbines for electricity generation. This technology is well-understood, mature, and widely deployed globally, with extensive operating experience. The segment benefits from lower technological risk compared to emerging technologies and cost-effective implementation for many applications. Direct combustion plants can handle various feedstocks including wood chips, agricultural residues, and dedicated energy crops. With established infrastructure and proven performance, direct combustion maintains the largest market share throughout the forecast period.
The 1-10 MW segment is expected to have the highest CAGR during the forecast period
Over the forecast period, the 1-10 MW segment is predicted to witness the highest growth rate, fueled by advantages in project financing, feedstock logistics, and suitability for distributed generation applications. Plants in this capacity range offer manageable capital requirements, simpler permitting processes, and easier feedstock procurement compared to larger facilities. They are well-suited for community-scale projects, industrial applications, and agricultural areas with local feedstock availability. The segment benefits from growing interest in distributed renewable energy and combined heat and power applications. As decentralized energy systems gain traction and project development accelerates, the 1-10 MW segment delivers the fastest capacity range growth.
During the forecast period, the North America region is expected to hold the largest market share, supported by abundant biomass resources, established forest products industry, and supportive renewable energy policies. The United States and Canada have significant biomass resources from forestry, agriculture, and waste streams, supporting power generation. Established pulp and paper industry infrastructure facilitates biomass co-firing and conversion. State and provincial renewable energy policies support biomass development. Strong technology innovation in advanced biomass conversion technologies contributes to market growth. With abundant resources and policy support, North America maintains its dominant market position.
Over the forecast period, the Asia-Pacific region is anticipated to exhibit the highest CAGR, driven by rapid industrialization, growing energy demand, and increasing focus on renewable energy development across countries including China, India, Indonesia, and Southeast Asia. The region has abundant biomass resources from agriculture, forestry, and waste streams. Growing energy demand and concerns about energy security are driving interest in biomass power. Government renewable energy targets and waste management initiatives are supporting project development. Rapidly growing economies create substantial demand for new power generation. As renewable energy investment accelerates and biomass projects scale, Asia Pacific delivers the fastest biomass power market growth globally.
Key players in the market
Some of the key players in Biomass Power Market include GE Vernova Inc., ANDRITZ AG, Valmet Oyj, Babcock & Wilcox Enterprises, Inc., Veolia Environnement S.A., Drax Group plc, Mitsubishi Heavy Industries, Ltd., Hitachi Zosen Corporation, Sumitomo Heavy Industries, Ltd., DP CleanTech Group Limited, VYNCKE NV, HoSt Group, BWSC A/S, John Wood Group PLC, Thermax Limited, Babcock International Group PLC, CNIM Group, and Sugimat S.L.
In May 2026, Thermax's wholly owned subsidiary, Thermax Babcock & Wilcox Energy Solutions Limited (TBWES), successfully locked in a massive boiler package production contract valued at roughly ₹1,600 crore to manufacture large-scale utility infrastructure components for an ultra-supercritical thermal energy development in Central India.
In May 2026, ANDRITZ joined stakeholders across the bioenergy ecosystem to formally form the Advanced Woody Biomass Alliance, expanding from its previous baseline structure within the US Industrial Pellet Association to push global policy and tech investments into diversified renewable carbon applications.
In April 2026, UK power station analysis revealed that Drax entered its final 12 months of high-level subsidy payouts under its current policy framework. While public funding is projected to drop by roughly half to £460 million annually starting in 2027, the scale of its active fuel conversions ensures it remains a vital pillar of the UK grid base.
In March 2026, GE Vernova signed a strategic Memorandum of Understanding (MoU) focused on building out High Voltage Direct Current (HVDC) utility lines to modernize regional grids and accommodate highly volatile loads from densified renewable energy systems, alongside its global fleet of heavy-duty turbines surpassing 4 million commercial operating hours.
Note: Tables for North America, Europe, APAC, South America, and Rest of the World (RoW) Regions are also represented in the same manner as above.