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¿¡¾î·Î°Ö ½ÃÀå ¿¹Ãø(-2030³â) : Á¦Ç°º°, Çüź°, ¿ëµµº°, ÃÖÁ¾»ç¿ëÀÚº°, Áö¿ªº° ¼¼°è ºÐ¼®Aerogels Market Forecasts to 2030 - Global Analysis By Product (Silica Aerogels, Carbon Aerogels, Metal Oxide Aerogels, Resorcinol-Formaldehyde Aerogels, Phenolic Aerogels and Other Products), Form, Application, End User and By Geography |
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According to Stratistics MRC, the Global Aerogels Market is accounted for $0.9 billion in 2024 and is expected to reach $2.0 billion by 2030 growing at a CAGR of 14.8% during the forecast period. Aerogels are highly porous, lightweight materials derived from gels in which the liquid component is replaced with a gas. They are often referred to as "frozen smoke" due to their translucent appearance and low density. Aerogels are created through a process called supercritical drying, which removes the liquid from the gel without collapsing its structure. This results in a material with an extremely high surface area, low thermal conductivity, and excellent insulating properties.
According to the United States Energy Information Administration, global crude oil production in 2023 increased by 1.76% and was valued at 101.749 million barrels per day.
Superior insulation, reducing energy consumption
Aerogels are renowned for their exceptional thermal insulating properties, often outperforming traditional materials. This efficiency translates into lower energy usage for heating and cooling, aligning with global trends toward energy conservation and sustainable building practices. In the construction industry, the demand for aerogels is rising as builders and architects seek materials that enhance energy efficiency and comply with stringent regulations. Similarly, in aerospace and industrial applications, aerogels help in reducing energy costs and improving overall system performance driving the growth of the market.
Intricate production processes
The production of aerogels involves sophisticated techniques such as supercritical drying and precise chemical formulations, which can lead to elevated production costs. These complexities can limit scalability and make aerogels less accessible for widespread use compared to more conventional insulation materials. Additionally, the need for specialized equipment and expertise can create barriers to entry for new manufacturers and increase the cost of aerogels for end-users. This complexity can also result in longer production times, which may impact supply chain efficiency and delay product availability.
Innovations in manufacturing techniques
Advances such as improved sol-gel processes, better supercritical drying methods, and novel synthesis techniques allow for higher quality aerogels at lower costs. These innovations make the production process more scalable and cost-effective, broadening the application of aerogels in various industries. For instance, new methods that reduce energy consumption and waste during production can lower the environmental footprint of aerogels, making them more appealing to sustainability-conscious markets.
Aerogels are susceptible to damage
Aerogels are fragile and can be prone to cracking, crumbling, or breaking under mechanical stress. This vulnerability limits their applicability in environments where durability and mechanical resilience are crucial. In industries such as construction and aerospace, where robust materials are essential, the fragile nature of aerogels can pose significant challenges. The need for additional protective layers or packaging to prevent damage during handling and installation increases costs and complexity. This can deter potential users from adopting aerogels, particularly in applications requiring high durability and resistance to physical stress hampering the growth of the market.
The COVID-19 pandemic initially disrupted the aerogels market through supply chain interruptions and reduced industrial activity. However, it also highlighted the need for advanced materials in healthcare and energy efficiency. The pandemic accelerated interest in aerogels for applications such as personal protective equipment (PPE) and improved thermal insulation in medical facilities. As industries adapt to new safety and efficiency standards, the market for aerogels is recovering, with increased focus on sustainability and innovation.
The particle segment is expected to be the largest during the forecast period
The particle is expected to be the largest during the forecast period owing to its efficient chemical and physical properties over blankets aerogels. These products have a variety of applications in defense, electronic substrates, building and construction, transport interiors, and antennas. Furthermore Rising necessity toward building safe, reliable and energy-efficient system as the energy spent on heating or cooling is wasted owing to ineffective thermal envelopes is driving the market growth.
The thermal insulation segment is expected to have the highest CAGR during the forecast period
The thermal insulation segment is expected to have the highest CAGR during the forecast period owing to the demand for energy-efficient buildings and the need for effective insulation in extreme environments, such as in aerospace and deep-sea applications, have spurred the adoption of aerogels. Additionally, aerogels' lightweight nature and high surface area contribute to their effectiveness in reducing heat transfer, making them ideal for applications requiring minimal thermal conductivity.
North America is projected to hold the largest market share during the forecast period owing to increasing demand from end-use industries including aerospace, building & construction, automotive, and oil & gas. The market in North America exhibits a huge growth potential in terms of application development, quality, and product innovation for the aerogel market, whereas the demand is driven by its superior insulation and low thermal conductivity properties.
Europe is projected to hold the highest CAGR over the forecast period due to European Union's energy efficiency policy, which mandates all buildings across countries such as Germany, the UK, Spain, Italy, and others to reduce their energy consumption, by 20%. Moreover In countries such as Germany, Italy, the UK, and Spain, the governments have taken initiatives to develop infrastructure, boosting commercial and residential projects.
Key players in the market
Some of the key players in Aerogels market include Active Aerogels, Aerogel Technologies LLC, Aerogel-it Gmbh, Aspen Aerogels, Inc., BASF SE, Cabot Corporation, Dow, Inc., Enersens, Guangdong Alison Hi-Tech Co., Ltd., JIOS Aerogel Corporation, Nano Technology Co., Ningbo Surnano Aerogel Co. Ltd, Sino Aerogel, Svenska Aerogel AB, Taasi Corporation and Thermablok Aerogels Limited
In July 2024, BASF backs Panasonic's launch of the first luminaire meeting the highest performance level in China. This luminaire uses BASF's optical film product NovaFlex GlareControl, and has become one of the first standing study luminaire products in China certified with the highest AAAAA performance level.
In July 2024, BASF launches game-changing heat and light stabilizer Tinuvin(R) NOR(R) 211 AR for sustainable farming practices. Tinuvin NOR 211 AR appears as an option to extend the useful life of agricultural plastics, promoting sustainability and efficiency.
In June 2024, Dow and Fiori Group sign MoU to develop sustainable solutions for circularity in the mobility market. This partnership allows both companies to work together along the European value chain, enlarging ecosystems to recycle materials obtained from end-of-life vehicles