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A very Finnish thing’: Big sand battery to store wind and solar energy using crushed soapstone

A very Finnish thing’: Big sand battery to store wind and solar energy using crushed soapstone

The battery will be able to store a week’s heat demand in winter – how does it work?

A huge sand battery is set to slash the carbon emissions of a Finnish town.

The industrial-scale storage unit in Pornainen, southern Finland, will be the world’s biggest sand battery when it comes online within a year.

Capable of storing 100 MWh of thermal energy from solar and wind sources, it will enable residents to eliminate oil from their district heating network, helping to cut emissions by nearly 70 percent.

“It’s exciting to build a large-scale thermal energy storage, which will also act as a primary production plant in Pornainen’s district heating network,” says Liisa Naskali, COO at Polar Night Energy, the company behind the innovation.

“This is a significant step in scaling up the sand battery technology.”

 

Sand batteries are getting bigger in Finland

The new 1 MW sand battery has a precursor. In May 2022, Polar Night Energy rigged a smaller design to a power station in Kankaanpää town.

Launched just as Russia cut off gas supplies in retaliation for Finland joining NATO, the project was a timely example of how renewable energy could be harnessed in a new way.

Euronews Green previously spoke to the young Finnish founders, Tommi Eronen and Markku Ylönen, who engineered the technology.

“We were talking about how – if we had the liberty to design a community for ourselves – how could we solve the energy problem in such a confined environment?” Markku said of the inspiration behind Polar Night Energy in 2018.

“Then quite quickly, especially here in the north, you run into the problem of energy storage if you’re trying to produce the energy as cleanly as possible.”

The friends started playing around with ideas, landing on sand as an affordable way to store the plentiful electricity generated when the sun is shining, or the wind blowing at a high rate.

Finding a way to store these variable renewables is the crux of unleashing their full potential. Lithium batteries work well for specific applications, explains Markku, but aside from their environmental issues and expense, they cannot take in a huge amount of energy.

Grains of sand, it turns out, are surprisingly roomy when it comes to energy storage.

The sand battery in Pornainen will be around 10 times larger than the one still in operation at Vatajankoski power plant in Kankaanpää. The start-up also previously connected a pilot plant to the district heating network of Tampere city.

 

So how do sand batteries work exactly?

It’s quite a simple structure to begin with, Polar Night Energy said of its prototype. A tall tower is filled with low-grade sand and charged up with the heat from excess solar and wind electricity.

This works by a process called resistive heating, whereby heat is generated through the friction created when an electrical current passes through any material that is not a superconductor. The hot air is then circulated in the container through a heat exchanger.

The sand can store heat at around 500C for several days to even months, providing a valuable store of cheaper energy during the winter. When needed, the battery discharges the hot air – warming water in the district heating network. Homes, offices and even the local swimming pool all benefit in Kankaanpää, for example.

“There’s really nothing fancy there,” Markku says of the storage. “The complex part happens on the computer; we need to know how the energy, or heat, moves inside the storage, so that we know all the time how much is available and at what rate we can discharge and charge.”

 

How will the sand battery serve residents in Pornainen?

Having refined its charging algorithms, Polar Night Energy is now ready to scale up the storage tech in Pornainen.

Once completed, the new battery will be integrated with the network of Loviisan Lämpö, the Finnish heating company that supplies district heating in the area.

“Loviisan Lämpö is moving towards more environmentally friendly energy production. With the Sand Battery, we can significantly reduce energy produced by combustion and completely eliminate the use of oil,” says CEO Mikko Paajanen.

The project also aligns with Pornainen’s plans for carbon neutrality. Many of its buildings, including the comprehensive school, town hall, and library, rely on district heating.

Mayor of Pornainen Antti Kuusela says the municipality “welcomes all innovative development projects that reduce emissions in district heating operations and contribute to network expansion.”

In total, the sand battery is expected to knock off 160 tonnes of carbon dioxide equivalent emissions per year. As well as weaning the town off oil, woodchip burning is expected to drop by 60 per cent as a result.

The battery’s thermal energy storage capacity equates to almost one month’s heat demand in summer and a one-week demand in winter in Pornainen, Polar Night Energy says.

Construction and testing of the 13 metres high by 15 metres wide battery is estimated to take around 13 months, meaning it should be keeping residents warm well before winter 2025.

 

Is sand a sustainable material?

“We wanted to find something that can be sourced nearly everywhere in the world,” Markku said. But is sand as ubiquitous as we might think?

Demand for the construction material is set to soar by 45 per cent in the next 40 years, according to a recent Dutch study. Building sand is typically extracted from rivers and lakes, and ‘sand pirates’ are speeding up its loss from these ecosystems.

But as far as the Finnish engineers are concerned, it doesn’t really matter where the sand comes from. Though builders’ sand was used initially (to limit transport emissions), sand batteries work with any sand-like material that has a high enough density, within certain thermodynamic parameters.

In Pornainen, Polar Night Energy has found a sustainable material in crushed soapstone; a by-product of a Finnish company’s manufacture of heat-retaining fireplaces.

“Tulikivi is a well-known and traditional company,” says Naskali. “The soapstone they use is a very Finnish thing.”

“We always choose the thermal energy storage medium based on the customer’s needs. Examining and testing different materials is crucial for us to use materials that are suitable in terms of properties, cost-effectiveness, and promotion of circular economy,” she adds.

Polar Night Energy has big ambitions to take its technology worldwide.

As Markku told us back in 2022, “we want to build a hundred times larger storages around the world as fast as possible.”

 

 


 

 

Source  euronews.green

Solar Farms Help Bees: Solar Installations for the Bees

Solar Farms Help Bees: Solar Installations for the Bees

Solar farms help bees: Solar farms emerging as sanctuaries for declining wild and honey bee populations.

In an unexpected turn, solar farms help bees and are emerging as potential sanctuaries for declining bee populations, providing a secondary purpose beyond clean energy generation. A recent study reveals that strategically planting native flowers and grasses around solar installations significantly enhances the population and diversity of crucial pollinators like bees, offering a promising avenue for both clean energy expansion and environmental conservation.

Research conducted by scientists from the Department of Energy’s Argonne National Lab, in collaboration with the National Renewable Energy Lab, focused on assessing the impacts on insects from two large solar installations situated on retired farmland in Minnesota. Enel Green Power North America, the operators of these solar sites, undertook the initiative to plant wildflower mixes alongside the panel arrays during construction in 2018. The researchers then conducted comprehensive year-round insect surveys at these facilities from 2018 to 2022.

The findings from the study are nothing short of remarkable; solar farms help bees. Over the five-year observation period, both native bee and monarch butterfly populations increased more than twenty-fold. The areas surrounding the solar panels transformed into thriving, prairie-like habitats abundant with essential flowering nourishment. The overall insect populations tripled, surpassing initial expectations. Additionally, these flourishing hubs of pollinators are extending benefits to vegetation in nearby agricultural areas, as evidenced by satellite imaging.

Dr. Lee Walston, an ecologist at Argonne and the lead author of the study, expressed enthusiasm about the scale of positive influence managed solar landscapes can have on insect biodiversity and abundance. The strategic integration of natural ecosystem elements adjacent to renewable projects, as demonstrated in this study, could potentially offer a win-win scenario, supporting the expansion of clean energy infrastructure while addressing the decline in insect populations.

The research underscores the concept of “solar sharing” – a departure from the traditional approach of isolating solar infrastructure from its surroundings. By allowing vegetation to thrive around solar facilities, solar farms help bees, and a new haven is created to support fragile bee colonies. The collapse of global bee populations poses a severe threat to agriculture, as over $500 billion in crop production relies on natural pollination annually.

But it doesn’t have to be only about the bees. Agrovoltaics refers to co-locating agriculture and solar photovoltaic systems on the same land. The solar panels are elevated and spaced out to allow crops to be grown underneath while allowing sunlight to reach the crops. The partial shade created by the solar panels can benefit certain crops by providing shelter, reducing evapotranspiration, and lessening weed pressure. The crops benefit the solar infrastructure by reducing heat under and around the panels.

Some bee-friendly crops and flowers that could thrive under the partial shade of solar panels include potatoes, cabbage, kale, carrots, Brussels sprouts, celery, spinach, onions, garlic, lettuce, arugula, strawberries, asparagus, leeks, swiss chard, parsley, oregano, green beans, sunflowers, cosmos flowers, marigolds, clovers, borage, and many varieties of wildflowers. These provide nutrient-rich pollen and nectar that support diverse bee populations.

These findings open the door to a new perspective on the relationship between solar power and ecological conservation. Instead of erecting barriers, solar infrastructure can be designed to coexist harmoniously with the environment. The success observed in this study suggests that solar farms help bees and can play a crucial role in aiding declining bee populations, offering hope for preserving essential pollinators.

As the world grapples with the urgent need for sustainable practices amid the climate crisis, the authors hope these groundbreaking findings will inspire further research. Exploring habitat-friendly solar blueprints to integrate nature into the urgent climate transition could be a transformative step forward. Dr. Walston emphasized the potential symbiosis between solar power and ecological conservation, envisioning bees flocking to blossoms beneath solar panels, which may reveal surprising pathways to advance sustainable energy and agriculture concurrently.

In conclusion, solar farms help bees. Once seen solely as agents of clean energy, they are now emerging as potential allies in the crucial mission to preserve and protect bee populations. This unexpected synergy between renewable energy infrastructure and environmental conservation opens doors to innovative solutions that could redefine the future of sustainable energy and agriculture.

 

 


 

 

Source   Happy Eco News

Sustainable Cooling: Electrocaloric Cooling Breakthrough

Sustainable Cooling: Electrocaloric Cooling Breakthrough

As heatwaves intensify across the globe, the demand for air conditioning and refrigeration skyrockets. The ballooning demand for cooling strains energy infrastructure and escalates emissions from vapor compression systems. These conventional refrigerators and AC units rely on greenhouse gases and inefficient mechanical compressors that have reached their efficiency limits. With little room for improvement, vapor compression technology cannot sustainably shoulder doubling cooling demands. Scientists urgently search for climate-friendly innovations before the warming world overheats.

In a breakthrough discovery, researchers at the Luxembourg Institute of Science and Technology (LIST) pioneer a radically different cooling approach harnessing the electrocaloric cooling effect. This phenomenon describes particular ceramic materials that heat up or cool down when electric fields flip on and off. By cleverly leveraging this conductivity toggle, the LIST team designed an assembly that can pump heat without noisy, energy-draining compressors.

Electrocaloric cooling is a fascinating phenomenon where certain materials experience a reversible temperature change when an electric field is applied. In simpler terms, you can directly use electricity to manipulate their temperature, creating a cooling effect. This opens up exciting possibilities for energy-efficient and environmentally friendly cooling technologies.

The regenerative system developed by LIST alternates layers of electrocaloric capacitors with liquid coolant. Switching an electric field pulls heat from the fluid into the capacitors, cooling the system. Cutting voltage then dissipates the heat, so the cycle repeats. The smooth back-and-forth between hot and cold replaces high-maintenance mechanical parts with solid-state reliability. Scientists calculate that electrocaloric cooling efficiency leapfrogs vapor compression refrigeration by directly shuffling heat instead of wasting effort compressing refrigerants.

Since fluids naturally stratify by temperature, no added energy input is required to cycle hot and cold. The passive electrocaloric cooling generator minimizes electricity demands by exploiting thermodynamics rather than fighting against them. With game-changing energy savings over traditional refrigerator designs, this electrocaloric cooling technology paves the way for truly sustainable cooling.

Seeking real-world integration, LIST researchers collaborate with manufacturing partners to develop prototypes. The original discovery featured a single electrocaloric part, which limited heat transfer speed. The current regenerator assembly overcame this by interleaving many capacitors with parallel coolant channels. This boosts heat pumping capacity for powerful, real-world performance. Ongoing enhancements also aim to lower costs and extend operating lifetimes to enable widespread commercialization.

While the immediate goal focuses on eco-friendly refrigeration, the applications likely won’t stop there. Any process generating unwanted heat could benefit from electrocaloric cooling technology. Air conditioners, electronics cooling, industrial processes and even solar energy storage represent prospective opportunities. Because electrocaloric cooling systems thrive when miniaturized, microchip-level cooling also offers possibilities for computing breakthroughs.

For example, electrocaloric cooling films could provide on-chip cooling for high-performance computer processors, enabling faster computing speeds. Electrocaloric cooling systems can also be used to condense water vapor in air conditioning and dehumidification applications. This could allow environmentally-friendly refrigerants like water instead of HFCs to be used in vapor compression HVAC.

Additionally, the flexibility of electric-powered cooling lends well to renewable energy integration and smart grid load balancing. Electrocaloric heat pumps powered by wind or solar electricity during times of excess generation could store thermal energy for later dispatch while synchronizing supply and demand on the grid. With materials and system configuration innovations, electrocaloric cooling technologies show promise for revolutionizing thermal management across many sectors.

Despite enormous promise, unanswered questions remain regarding large-scale manufacturing and durability. However, early indications suggest the regenerator’s simple solid-state design will prove reliable over long stretches. By dodging complex mechanical components, the approach naturally steers towards sustainability. Cooling demand will only climb higher as climate change continues, but creative solutions like the LIST electrocaloric cooling regenerator offer hope we can innovate our way to a cooler future.

 

 


 

 

Source  Happy Eco News 

Windcatcher the Huge Wooden Wind Generator

Windcatcher the Huge Wooden Wind Generator

Engineers have designed a new type of gigantic wooden wind generator dubbed the “Windcatcher” that could rise higher than the Eiffel Tower to tap into more powerful winds and generate huge amounts of renewable electricity far offshore.

At 1,066 feet (325 meters) from anchoring base to propeller tip, the proposed Windcatcher wooden wind generator system would surpass the iconic Parisian landmark’s height of 1,063 feet when fully built. But rather than offering tours of city views, this would allow the colossal tower to leverage faster wind speeds at higher altitudes than conventional wind turbines mounted closer to shore. Architects envision groups of these wooden wind generator megastructures with spinning wind turbines dotted along their central shafts, powering entire regions with clean energy.

Winds Tend to Blow Stronger Higher Up

Wind flow is enhanced the higher you go because ground obstacles like hills and buildings cause slowing friction. By elevating up into less disrupted airflow, the Windcatcher’s turbines could rotate 50% faster than ones constructed only 300 feet up. More spin velocity means manyfold more power generation. Modeling shows electricity output from a single Windcatcher could equal several traditional wind towers running in parallel. This boosted productivity per tower could make building fewer giants more efficient than patching seascape views with ever more waves of smaller mills.

Engineering a Gigantic Wooden Wind Generator

However, efficiently scaling turbines to Eiffel defining heights poses profound infrastructure challenges around stability, longevity, and safe maintenance access throughout the multiyear operation. The proposed Windcatcher design incorporates a sturdy yet flexible solid timber tower base tapering into an open skeletal wood frame swirling up to its peak generation capacity. The entire structure can gently sway to dampen extreme gust loads without catastrophic failure risk. Metal vibration dampeners also help absorb wind energy to limit motion.

Ringing the tower’s exterior, helical rampways, and grated platforms circle up to turbine machinery requiring routine inspection or emergency repairs. Cargo lifts and even tilting gondolas mean specialized crews can access any point from base to pinnacle in most conditions while remaining secure. But whatsoever precautions, embarking 1,000 feet into the North Sea gusts to bolt down wayward equipment is no task for the faint of heart.

The wooden wind generator concept has grabbed attention across renewable energy circles, yet experts debate feasibility obstacles around truly enormous timber joinery, massive construction logistics, operating equipment endurance, and connection infrastructure. Building numerous near Eiffel-topping wooden wind generators certainly nudges current offshore wind realism boundaries. However, proponents argue that visionary, clean power goals require expansive thinking, including wooden wind generators. However, intimidating initial steps appear. Our energy appetites will only expand, and every field bears longshot innovations that will later prove pivotal.

The proposal’s futuristic allure is clear. Windcatcher wooden wind generators evoke images of natural organisms gently swaying amid the waves, smoothly converting the wind’s energy into electricity, helping human life flourish onshore. Their sheer epic scale captivates the imagination much akin to Parisian Gustave Eiffel’s original wrought iron icon that long-held records as the world’s tallest manmade structure. Perhaps someday, rows of these block-long towers may claim their own position as ultimate wind energy titans built to sustainably power nations using renewable materials and ingenuity.

 

 


 

 

Source  Happy Eco News

How manufacturers can transition to 100% renewable electricity

How manufacturers can transition to 100% renewable electricity

Manufacturing and other industrial users account for around a third of the world’s energy consumption, according to the International Energy Agency(1). Electricity is a central element of that. If all the power consumed by factories and industrial plants came from renewable sources, it would make a sizeable contribution to tackling climate change.

It is a tough target, but one that companies are increasingly signing up to. The RE100 initiative, for example, has seen more than 400 corporations commit to 100% renewable electricity use across their operations. How they reach that goal will depend on many factors, including what they are making and where.

 

Switching to renewable electricity

“Organisations with lighter electricity needs and stable finances will be best positioned to transition to renewables. Companies with high electricity demand, like furnaces for glass, smelting or other large-scale heating applications and companies with very large footprints – such as expansive warehouses and assembly operations – may have more difficulty,” says Paul Holdredge, Director for Industrials and Transport at consultancy Business for Social Responsibility (BSR).

COP28 president-designate Dr Sultan Al-Jaber told the Adipec conference in Abu Dhabi in early October(2) that heavy industries may be hard to decarbonise but added “We know that solutions exist, and all industries can and must respond.”

The prospect of switching to renewable electricity has become far easier due to recent dramatic cost reductions. According to the International Renewable Energy Agency (IRENA), the price of solar photovoltaic power in 2010 was typically 710% higher than the cheapest fossil fuel, but by 2022 it was 29% cheaper(3). Currently electricity accounts for around 20% of final energy use in manufacturing, according to the International Renewable Energy Agency, and this is only expected to increase.

 

The manufacturing challenge

But it is not just the price of renewable energy, low as it is, that dictates a manufacturer’s ability to move to 100% renewable energy. Both the required initial capital investment and first-mover disadvantage—where it costs pioneers more than those that follow them to deploy new technologies—can significantly slow down a fully renewable transition. Not to mention the lack of availability of certain renewables in certain geographies and the fact that the appropriate infrastructure must be in place for this energy to be delivered—something no one company can do on its own.

Manufacturing requires an enormous amount of electricity in comparison to offices. In some countries or regions where the supply of renewable electricity is limited, like Japan, Taiwan, and Singapore, it is much more expensive than electricity produced by traditional means, placing a significant future cost burden on companies that purchase renewable electricity.

Epson is working to popularize the use of renewable electricity, despite the certainty of short-term cost increases. The company is advancing investment in sustainability to enrich communities and invest in future generations to create social value.

 

Going local

Wherever they are in the world, with whatever types of renewable energy available to them, companies need to adapt to local, national, and global circumstances. Seiko Epson, based in Japan, has done just that. Having switched to 100% renewable electricity for all its sites in Japan in 2021, it will complete the transition to 100% renewable electricity globally by the end of 2023(4). This goal has been made achievable through steady implementation of decarbonization targets and the use of renewable electricity since 2018.

In Nagano Prefecture, Japan, for example, where water sources are abundant, it relies on hydroelectric power. But in the Tohoku area, where it has a semiconductor fabrication plant, it uses hydropower and geothermal heat from the Ou mountains.

It is taking a similar approach outside Japan. In the Philippines, it taps into local geothermal and hydroelectric sources. While in Indonesia, it uses yet another renewable source—biomass power.

“We have used locally produced energy wherever possible,” says Junichi Watanabe, Managing Executive Officer General Administrative Manager, Production Planning Division, whose role encompasses the promotion of Epson’s procurement strategies in the supply chain, including the use of renewable electricity. “Rather than using energy generated in faraway countries, using a particular region’s abundant renewable resources brings many benefits, such as improving energy self-sufficiency and creating jobs.”

In addition to purchasing renewable electricity, Epson co-creates and develops other power sources through continuous renewable electricity purchases. In partnership with Nagano Prefecture and Chubu Electric Power Miraiz Company, Inc., the company began support of hydroelectric power plants in Nagano Prefecture. Two are already in operation (totalling 5,770 kilowatts) and another is scheduled to begin operation in 2024. That number is expected to increase to five by 2025.

Such targets can help a company stand out from the crowd. “Based on our research, setting a near-term goal for 100% renewable electricity use is an example of leadership and a differentiator. Some companies also have roadmaps to transition over longer time periods,” says Holdredge.

 

Among the practical methods companies should consider are:

• Sourcing renewable electricity from local suppliers via contracts with electricity suppliers – the ability to do this will depend on the rules in a particular country but, if it is possible, a company can be confident its electricity is only coming from renewable sources.

• Generating electricity on-site, via rooftop solar panels or, if space allows, wind turbines. Even if they do not generate all the power needed, they can still make a useful contribution.

• Develop battery storage facilities. A common concern about renewable electricity is the risk of supply being interrupted when the wind isn’t blowing or the sun isn’t shining, but storage technology offers a viable way to address that.

 

When it comes to solar power generation systems, Epson’s sites also decide whether to adopt self-investment or power purchase agreement (PPA) based on the individual circumstances of each country or region. The solution will vary from company to company. But most manufacturers are likely to find a combination of these elements will go a long way to reaching their renewable electricity goals.

What’s more, many manufacturers like Epson realize that their indirect GHG emissions from their entire value chain (Scope 3) are much greater than the GHG emissions from their own electricity use (Scope 2). As such, by reducing the sector’s Scope 2 emissions using renewable energy—something the sector can do independently—is likely to have a far greater impact on society. Setting goals early and demonstrating a company’s stance toward solving climate change is the key to co-prosperity with suppliers and a sustainable society.

“For large companies the return on investment is there to make the case for investment in renewables. For smaller companies this can also be true, but it depends on the geography. Government incentives can only speed up transition which is sorely needed,” says Christy Slay, Chief Executive Officer of The Sustainability Consortium.

 

The future for greener manufacturing

There are big gains for humanity if climate change can be addressed, but for manufacturing companies and their shareholders the best approach could also deliver commercial gains.

Consumers and investors are increasingly likely to reward companies with greener credentials, making it an essential part of long-term market positioning. In addition, greater use of renewables and greater self-generation can make a company more resilient to volatile electricity prices on the open market.

“Reaching 100% renewable is tough but pushing to get as close as possible, as soon as possible should be every company’s focus right now,” says Slay. “Epson has managed to stay one step ahead of the industry and is setting an example not only to Japan but to the world.”

 

 


 

 

Source  Reuters

New York State’s Largest Rooftop Solar Installation Ever

New York State’s Largest Rooftop Solar Installation Ever

New York State has taken a big renewable step forward with its largest rooftop solar installation yet. Recently, the state unveiled its largest rooftop solar project stationed atop the Medline Industries distribution center. This landmark achievement not only fortifies New York’s commitment to green energy but also serves as a beacon for other states to follow.

Tucked away at the expansive Medline Industries distribution center, this massive project is a testament to clean energy’s tangible benefits. With the capability to power an impressive 1,600 homes annually, the project is undeniably significant; it is the largest rooftop solar installation in New York state. This initiative boasts a production capacity of 7.2 megawatts to break down the numbers derived from its 17,000 solar panels.

Furthermore, the environmental implications of this largest rooftop solar installation project are profound. New York State expects to reduce its annual carbon footprint by 6,000 metric tons by harnessing the sun’s energy. To contextualize this, it’s akin to removing several thousand cars from the roads each year, paving the way for cleaner air and a healthier environment.

While individual projects like the one at Medline Industries are pivotal, they form part of a much grander scheme in New York’s green energy blueprint. Under the New York Climate Act Goal, the state has set its sights on an ambitious target: generating 6 gigawatts of solar energy by 2025. The largest rooftop solar installation in NY goes beyond just energy production—it’s about redefining the state’s relationship with power consumption and making clean energy an accessible commodity for all.

No significant venture comes to fruition without solid financial backing, especially the state’s largest rooftop solar installation. With its $8 million price tag, the Medline project required considerable investment. PowerFlex, a renowned entity in the clean energy domain, took the lead with a hefty $5 million investment. Their faith in the project’s potential was echoed by the New York State Energy Research and Development Authority, which further infused $3 million through its NY-Sun initiative. Such investments underscore the belief that sustainable projects are ecologically beneficial and economically viable.

Solar energy, while beneficial, remains elusive to many due to the upfront costs associated with panel installation and maintenance. This is where community solar projects step in as game-changers. These initiatives eliminate the need for individual households to install their own panels. Instead, they allow consumers to benefit from solar power by tapping into a shared grid, which receives energy from community-based solar installations.

By integrating solar power into the local grid, residents, irrespective of their housing situations or financial standings, can access clean energy. This communal approach democratizes solar energy access and fosters a sense of community collaboration towards a sustainable future.

New York’s endeavors in solar energy have solidified its reputation as a frontrunner in the U.S. community solar market. The statistics are telling: since 2012, the state has witnessed an astonishing 3,000% surge in solar access. Beyond the environmental accolades, this growth trajectory has ushered in economic prosperity. Over 13,400 individuals now find employment in the solar sector in New York. Additionally, as technologies and methodologies have improved, there’s been a notable 72% decrease in costs associated with solar energy, making it even more accessible.

The unveiling of Medline Industries’ largest rooftop solar installation is not merely a testament to New York State’s green ambitions; it’s a clarion call for other regions to intensify their renewable energy pursuits. As New York strengthens its renewable energy portfolio, its strategies and successes offer valuable insights for broader national and global adoption.

For stakeholders, investors, and the general public, there’s never been a more opportune time to delve deeper into the realm of solar energy. By understanding its intricacies and potential, one can contribute to and immensely benefit from the burgeoning solar sector.

 

 


 

 

Source   Happy Eco News

Masdar: Using technology to power a sustainable future

Masdar: Using technology to power a sustainable future
Renewable energy company Masdar has been making strides towards its sustainability goals by utilising the latest technology

As a global leader in renewable energy and green hydrogen, Masdar has pioneered commercially viable solutions in clean energy, sustainable real estate and clean technology in the UAE and around the world for over a decade.

Headquartered in Abu Dhabi, UAE, the business is currently developing large-scale renewable energy initiatives, in a bid to drive the progression of clean technologies and further grow technology in the renewable energy sector. In doing so, Masdar is focused on creating new long-term revenue streams for the UAE.

How is Masdar utilizing technology to boost sustainable energy?

Committed to advancing clean-tech innovation, Masdar utilises technology to enhance the renewable energy sector.

Masdar hosts a range of wind farms in its offshore project portfolio, including sites in London Array and the Dudgeon Offshore Wind Farm in the United Kingdom. The business has also partnered with Hywind Scotland, the world’s first floating offshore wind farm.

Additionally, Masdar deploys solar photovoltaic (PV) technology in utility-scale and off-grid solar power plants and rooftop systems, including monocrystalline silicon panels, polycrystalline silicon panels, and thin-film panels.

Depending on the solar potential, geographical location, and financial requirements of a specific solar PV project, a suitable PV system is implemented to meet the project’s needs.

Likewise, concentrated solar power (CSP) systems – which use mirrors to focus a large area of sunlight onto much smaller areas – are used to convert concentrated light into heat, to drive a heat engine connected to an electrical power generator. CSP systems have become known as a promising solar power technology for large-scale power generation.

When CSP and thermal energy storage (TES) are used together, it is capable of producing constant power for up to 24 hours a day.

Masdar’s sustainability commitments

With the aim of investing and actively supporting the development of young people, Masdar strives to help support the sustainability leaders of tomorrow through its Youth 4 Sustainability (Y4S).

His Highness Sheikh Khaled bin Mohamed bin Zayed Al Nahyan, Crown Prince of Abu Dhabi invested in the initiative, ensuring it aligned with the United Nations Sustainable Development Goals to bolster the nation’s sustainability efforts.

By 2030, Y4S aims to reach up to one million youth, creating awareness of the skills needed for future jobs in sustainability.

 

 


 

 

Source Sustainability

Baking Bread in a Solar Oven

Baking Bread in a Solar Oven

Since 2019, Lebennon has been facing an economic crisis. Following decades of corrupt government financial mismanagement, banks started to impose restrictions on withdrawals. They stopped giving short-term loans to businesses and no longer provided them with US dollars for imports. As a result, this reduced the country’s ability to pay for imports, including essentials such as wheat and oil.

Moreover, many of Lebannon’s bakeries rely on expensive diesel generators for electricity because the ongoing economic crisis has devastated its power grid. In 2021, the country’s two main power plants ran out of fuel and shut down. Most households only receive about one hour of electricity per day, and the cost of food increased by 350 percent in April 2023. Many people in the country cannot even afford basic foods like bread. In some cases, the cost of a loaf has increased seven times in the space of a month.

To help feed the country’s population, an inventor, Toufic Hamdan, created a commercial bakery to bake bread in solar ovens. The startup “Partners With Sun” has installed a solar convection oven on the bakery’s roof. The Solar Oven uses large silver mirrors to capture and magnify the sun’s rays to build heat.

The heat is transported by a transfer fluid which is then used to help operate a convection oven, allowing it to reach a baking temperature of between 300 and 400 Celsius. The heat is used directly in food and beverage production. They have successfully made milk loaf, French bread and anything that can be cooked at this temperature. The Solar Oven is designed for industrial use in the baking industry.

The Solar Oven is able to cut up to 80% of the bakery’s fuel bill and improve its production efficiency. As a result, it also reduces the amount of diesel the country would have to import. As a result, it will reduce the price of the bread bundle that reaches the customer. Moreover, each bakery would save at least around 10 tonnes of diesel a month. By 2030, Toufic hopes to completely eliminate the use of diesel ovens in bakeries and rely only on solar ovens.

Lebanon is also increasing the use of solar energy for individuals and businesses. The country went from generating zero solar power in 2010 to having 90 megawatts of solar capacity in 2020. An additional 100 megawatts were added in 2021 and 500 megawatts in 2022. This is a sustainable way for people to move away from diesel and has become a stand-in for both grid-supplied electricity and private diesel generators.

Although the switch towards relying on solar power in Lebanon is now a response to the economic crisis than a reaction to climate change and air pollution, it is an inspiring way to show how we can use the earth’s resources to help our societies in times of crisis. The country now has a target to source 30% of its electricity from renewables by 2030. This switch will help provide electricity and food at reduced costs to the people of Lebanon during this economic crisis.

 

 


 

 

Source  Happy Eco News 

Vortex Bladeless Turbine Wind Generator

Vortex Bladeless Turbine Wind Generator

How the Vortex Bladeless Turbine Works

The Vortex Bladeless Turbine is a pole-shaped structure that functions without rotating blades, but instead of rotating blades, it works off vibrations generated in the structure by vortices created when the wind passes around it. When the frequency of the vortices matches the resonance frequency of the structure, into which an alternator is integrated, the vibration energy can be transformed into electricity. In simpler terms, as the wind flows past the turbine, it creates a series of spinning whirlwinds, or vortices, that cause the rod-shaped turbine to vibrate. This vibration then converts the mechanical energy into electrical energy that can be used as a source of power.

One of the main differences between bladeless or motionless turbines and traditional wind turbines is that they can generate power at low wind speeds, which is significant because wind speeds in urban areas are typically lower than in rural areas. Traditional turbines require higher wind speeds, making them less effective in built-up areas.

Advantages of the Vortex Bladeless Turbine

One of the significant benefits of the Vortex Bladeless Turbine is that it’s more cost-effective than traditional turbines. It has fewer moving parts, which results in reduced manufacturing and maintenance costs. Also, it doesn’t require any oil or lubricants, making it a more environmentally friendly option.

The design of the Vortex Bladeless Turbine is more eco-friendly than traditional turbines because its pole-shaped structure does not pose any harm to birds and other animals that can come into contact with rotating blades. Furthermore, the device’s sleek design takes up less space than traditional wind turbines, making it adaptable to a wide range of environments.

Another benefit of the Vortex Bladeless Turbine is its flexibility. Its small size makes it the perfect choice for urban areas, where space is limited. They can be placed on the roofs of buildings or integrated into street furniture, providing an unobtrusive source of renewable energy. It can also be used to power individual homes or small communities that are off-grid, where running costs are a concern.

Applications of the Vortex Bladeless Turbine

One application of the Vortex Turbine is in urban environments. As mentioned earlier, these turbines can generate electricity at low wind speeds, making them a viable option for powering cities and towns. By placing them in strategic locations, they can capture the wind currents that flow through narrow streets, parks, and plazas.

Another application of the Vortex Bladeless Turbine is its potential to replace traditional turbines in remote locations. Traditional turbines are often used to provide power in areas where a connection to the electrical grid is not possible. However, their high manufacturing and maintenance costs make them less feasible in such instances. The Vortex Bladeless Turbine, being cost-effective and low maintenance, provides an alternative that can meet the power needs of those living in isolated areas.

The Vortex Bladeless Turbine is a revolutionary wind power generator that has the potential to transform the way we generate renewable energy. Its low manufacturing and maintenance costs, eco-friendly design, and flexibility make it an attractive option for powering urban areas and remote places alike. While there are some limitations, such as the amount of power generated compared to traditional turbines, and the need for further development to increase efficiency, the Vortex Bladeless Turbine is a step in the right direction towards a cleaner, more sustainable future. The device’s minimal environmental impact also makes it an excellent choice for environmentally conscious consumers and energy companies alike.

With renewable energy becoming more important in the fight against climate change, the development of innovative technologies like the Vortex Bladeless Turbine is crucial. As we continue to explore cleaner, more sustainable sources of energy, devices like these will become increasingly critical. And while there are still challenges to overcome and further research to be done, the potential benefits of the Vortex Bladeless Turbine make it a promising addition to our renewable energy toolkit.

Overall, the Vortex Bladeless Turbine is a fascinating innovation that could play a significant role in the future of wind power generation. Its eco-friendly design, low cost, and flexibility make it an exciting alternative to traditional wind turbines. It’s clear that as we move towards a more sustainable future, technologies like this will continue to be developed, offering us new and exciting ways to generate renewable energy and help protect our planet.

 

 


 

 

Source Happy Eco News 

 

Apple aims for 100% recycled cobalt in batteries by 2025

Apple aims for 100% recycled cobalt in batteries by 2025

Apple has unveiled plans to increase the use of recycled materials in its products, with a new target of using 100% recycled cobalt in all Apple-designed batteries by 2025.

The tech giant will also aim to use entirely recycled rare earth elements in magnets for its devices and 100% recycled tin soldering and gold plating in all Apple-designed printed circuit boards by the same year.

“Every day, Apple is innovating to make technology that enriches people’s lives, while protecting the planet we all share,” said Tim Cook, Apple’s CEO. “From the recycled materials in our products, to the clean energy that powers our operations, our environmental work is integral to everything we make and to who we are. So we’ll keep pressing forward in the belief that great technology should be great for our users, and for the environment.”

 

Reducing Apple’s carbon footprint

The announcement is part of Apple’s broader efforts to reduce its carbon footprint and become more environmentally friendly.

In 2022, the company significantly expanded its use of recycled metals, with over two-thirds of all aluminium, nearly three-quarters of all rare earth materials, and more than 95% of all tungsten in Apple products sourced from 100% recycled material.

Apple’s rapid progress in this area brings the company closer to its ultimate goal of making all products with only recycled and renewable materials and advances its aim to achieve carbon neutrality for every product by 2030.

“Our ambition to one day use 100% recycled and renewable materials in our products works hand in hand with Apple 2030: our goal to achieve carbon neutral products by 2030,” said Lisa Jackson, Apple’s vice president of Environment, Policy, and Social Initiatives. “We’re working toward both goals with urgency and advancing innovation across our entire industry in the process.”

If Apple is able to achieve this goal, it will show major steps towards achieving a more sustainable future for the company.

 

 


 

 

Source Sustainability