Thermoelectric Generators Market Forecasts to 2028 – Global Analysis By Temperature (High Temperature (> 500°C), Low Temperature (<80°C), Medium Temperature (80°- 500°C)), Component (Electric Load, Thermoelectric Module, Cold Side, Heat Source, Other Components), Type (Solar Source Generators, Fossil Fuel Generators, Nuclear Fueled Generators, Other Types), and Others
According tStratistics MRC, the Global Thermoelectric Generators Market is accounted for $853.08 billion in 2022 and is expected treach $1692.87 billion by 2028 growing at a CAGR of 12.1% during the forecast period. A solid-state semiconductor thermoelectric generator converts temperature differences and heat flow inta useful DC power source. In thermoelectric generator semiconductors, the seebeck effect is exploited tgenerate voltage. When applied ta load, this voltage is utilised tgenerate electrical current and produce useful power. These generators are cost-effective, low-maintenance, simple tconstruct, safe tstore, and they utilise renewable energy sources.
According tEurostat, roughly 26% of the EU's electricity, 17% of the EU heating and cooling sectors along with 6% of EU transport energy are derived from renewable energy sources.
Market Dynamics:
Driver:
High demand from remote areas of developing countries
A possible answer is tuse a thermoelectric generator, which can provide these few watts of electricity for lighting, cell phone charging, and operating electric extractors. Because when involvement of the Thermoelectric Generators leads tan improvement in combustion efficiency, the poor efficiency of the thermoelectric modules is not a problem. Around 5 t10 kilograms of wood are burned over 3 hours, producing energy of 17 t34 kW/h. Bettering this combustion has a much greater impact on reducing global energy use than the 5–30 W produced by thermoelectric generators. Because maintenance is difficult in distant places, the main requirements for the construction of the Thermoelectric Generators in situations like these are tprovide enough electricity trun extractors, maybe charge cell phones, and provide power for illumination.
Restraint:
High initial cost and lack of skilled workers
For some applications, thermoelectric generators may initially cost more per watt of electrical power production than energy conversion methods. Due ttheir high cost or difficult marketability, a number of high meritorious figures or ZT thermoelectric materials are difficult tuse practically in thermoelectric generators. Depending on the application, the lifetime cost of a thermoelectric generator may be cheaper than that of other technologies despite the high initial cost. A thermoelectric generator's lifetime cost is further reduced by the absence of maintenance expenses. Although there is a fair amount of knowledge regarding the manufacture of thermoelectric generator modules, it is difficult tfind the design and engineering experience required teffectively integrate thermoelectric generators intan application. This prevents widespread adoption, which has a negative impact on efficiency and raises costs.
Opportunity:
Demand for energy across various end-user
The market for thermoelectric generators is expanding as a result of the rising energy demand across numerous end-user industries, including automotive, aerospace, defence, industrial, and many others. Moreover, radioisotope thermoelectric generators are employed in small portable applications and as power sources in satellites and space probes. The need for this sector has alsbeen driven by growing concerns over environmental and pollution challenges, particularly global warming.
Threat:
Availability of alternatives and complexity of the structure
The most common alternatives tthermoelectric generators are solar energy & piezoelectric power generation. Piezoelectric solid-state electronics have an effectiveness of 10-15%, while solar energy turns sunlight intelectricity with 20-25% efficiency. The market for thermoelectric generators faces difficulties because the former twhave much better output-to-input ratios than TEGs, and they have an average performance of 2–4%. The temperature range and necessary output power determine how well thermoelectric generators work. Manufacturers are impacted since the design needs tbe adjusted based on the application. The architecture of thermoelectric generators must be modified, which costs extra money, because different industries & applications have variable energy output and temperature requirements. The commercialisation of this technology faces a lot of difficulties because of this. The efficiency of currently employed materials for the production of thermoelectric energy is constrained. This restrains the market's expansion for thermoelectric generators and is anticipated tbe a key impediment going forward.
Covid-19 Impact
Using the unique COVID-19 impact evaluation by Axiom MRC, the global market for thermoelectric generators is subjected ta 360-degree examination of micrand macroeconomic aspects. Moreover, a thorough examination of the impact of economic, national, and trade policies on the demand side and supply chain of the global market for thermoelectric generators. As the government-imposed lockdown limitations, which had a detrimental impact on capital investments in numerous sectors, the COVID-19 outbreaks had an effect on all industries in the global economy. Due tfalling consumer electronics demand as well as diminishing demand in a variety of other sectors, including automotive, aerospace, industrial, and many more, the thermoelectric generator market has seen a considerable decline during this time. The entire shutdown of industries like consumer electronics and manufacturing has seriously impacted the global market for thermoelectric generators. The consumption for thermoelectric generators has been directly impacted by the decrease in customer demand for manufacturing goods and consumer electronics.
The medium-temperature (80–500°C) segment is expected tbe the largest during the forecast period
The medium-temperature (80–500°C) segment is estimated thave a lucrative growth. The Thermoelectric Principle is used by medium-temperature thermoelectric generators tcreate a temperature difference within the module by heating one side and cooling the other (heat elimination side). These modules have been designed specifically tfunction at 320 °C (for BiTe materials), though other hybrid materials like PbTe can withstand temperatures of up t600 °C. The waste heat sources for medium-temperature thermoelectric generators include catalytic crackers, annealing boiler cooling systems, and reciprocating engine exhausts.
The medium-power (10–1 kW) segment is expected thave the highest CAGR during the forecast period
The medium-power (10–1 kW) segment is anticipated twitness the fastest CAGR growth during the forecast period. Thermoelectric generators are small, straightforward, scalable, and less expensive than conventional heat engines, which seem tbe enormous. Thermoelectric systems are built toperate in the presence of heat sources and temperature variations. Steam turbines with a medium power range of 10 kW t1,900 MW are used in cogeneration plants and other industrial settings by companies like Siemens (Germany). These steam turbines are used as mechanical drives for compressors, pumps, or generator drives. Steam turbines are frequently used in the field of renewable energy. Due tits use in the automotive, aerospace & defence, and industrial sectors, the medium-power thermoelectric generator category is expected thold the major proportion of the thermoelectric generators market over the forecast time frame.
Region with highest share:
Asia Pacific is projected thold the largest market share during the forecast period. Governmental efforts testablish renewable energy sources in the region's nations can be credited with this. Additionally, the growing urbanisation, industrialization, and development of infrastructure in developing nations like China and India is fostering market expansion.
Region with highest CAGR:
North America is projected thave the highest CAGR over the forecast period, owing tregion's growing technical advancements. Moreover, the market will expand as a result of the expanding need for generators in many industries, including healthcare, aerospace, automotive, and others. A number of potential chances for market expansion are presented by the increasing rivalry among rivals and the presence of the major market players throughout the region. Also, as the car industry works tincrease fuel efficiency, there will be an increase in demand for generators, which will propel this market ahead throughout the study period.
Key players in the market
Some of the key players profiled in the Thermoelectric Generators Market include Yamaha Corporation, Marlow Industries, Inc., Ferrotec Corporation, Kryotherm Company, Komatsu Ltd., Laird plc, ThermElectric Company, Inc., Phononic Devices, Evident Thermoelectrics, Gentherm, Inc., Toshiba Corporation and Murata Manufacturing Co. Ltd.
Key Developments:
In April 2021, Laird Thermal Systems launched the PCX Thermoelectric Cooler Series tincrease the reliability of PCR cycling. It is used for Analytical, Medical, Medical Diagnostics, and DNA Amplification and is available as thermoelectric coolers, PowerCycling PCX Series.
In April 2018, Gentherm Inc. launched a thermoelectric based solution for 48-volt lithium-ion battery thermal management for the automotive industry. This thermoelectric technology is fully integrated intthe battery housing and is able theat and cool the lithium-ion battery cells.
In March 2014, Gentherm, Inc. announced the launch of a new thermal air conditioning system, as well as an air conditioning system for beds and household furniture.
Temperatures Covered:
• High Temperature (> 500°C)
• Low Temperature (<80°C)
• Medium Temperature (80°- 500°C)
Components Covered:
• Electric Load
• Thermoelectric Module
• Cold Side
• Heat Source
• Other Components
Types Covered:
• Solar Source Generators
• Fossil Fuel Generators
• Nuclear Fueled Generators
• Other Types
Wattages Covered:
• High Power (> 1kW)
• Low Power (<10 W)
• Medium Power (10-1kW)
Materials Covered:
• Lead Telluride
• Bismuth Telluride
Applications Covered:
• RadiCommunication
• Electronics
• Renewable Energy Sources
• Gas Pipelines
• Space Applications
• Other Applications
End Users Covered:
• Oil and Gas
• Automotive
• Consumer
• Healthcare
• Industrial
• Mining
• Defense
• Telecommunications
• Other End Users
Regions Covered:
• North America
US
Canada
Mexico
• Europe
Germany
UK
Italy
France
Spain
Rest of Europe
• Asia Pacific
Japan
China
India
Australia
New Zealand
South Korea
Rest of Asia Pacific
• South America
Argentina
Brazil
Chile
Rest of South America
• Middle East & Africa
Saudi Arabia
UAE
Qatar
South Africa
Rest of Middle East & Africa
What our report offers:
- Market share assessments for the regional and country-level segments
- Strategic recommendations for the new entrants
- Covers Market data for the years 2020, 2021, 2022, 2025, and 2028
- Market Trends (Drivers, Constraints, Opportunities, Threats, Challenges, Investment Opportunities, and recommendations)
- Strategic recommendations in key business segments based on the market estimations
- Competitive landscaping mapping the key common trends
- Company profiling with detailed strategies, financials, and recent developments
- Supply chain trends mapping the latest technological advancements
Learn how to effectively navigate the market research process to help guide your organization on the journey to success.
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