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Space-Based Solar Power Works!

Space-Based Solar Power Works!

The concept of space-based solar power (SBSP) has been around for over five decades, but it’s only now that scientists have achieved a major milestone in its development. In June 2023, scientists at the California Institute of Technology successfully transmitted solar power to Earth from space using a prototype spacecraft called Maple. This breakthrough could pave the way for energy to be sent to remote regions and areas affected by war or natural disasters where access to electricity is limited.

The idea of space-based solar power involves capturing the energy produced by the sun in space and transmitting it wirelessly to Earth using microwaves. The technology required to achieve this is complex, but the potential benefits are enormous. Since the sun shines 24 hours a day in space, space-based solar power would provide a constant source of renewable energy that’s not affected by weather conditions or time of day. It could also be used to power space missions and settlements.

The first engineering design for a solar power satellite was produced by Czech-born NASA engineer Peter Glaser in 1968 and published that year in the journal Science. Since then, there have been several attempts to develop the technology required for SBSP, but progress has been slow due to the high costs involved and technical challenges. However, recent advances in space technology and wireless power transmission have renewed interest in space-based solar power as a viable source of clean energy.

The Maple spacecraft launched into orbit in January 2023 was designed to test the technology required for SBSP. It consisted of two parts: a solar panel that captured sunlight and converted it into electricity, and a microwave transmitter that beamed the energy to a receiving station on Earth. The power was transmitted wirelessly over a distance of 1.2 miles, which may not seem like much, but it’s a significant achievement given the technical challenges involved.

One of the main challenges of space-based solar power is the need to transmit energy wirelessly over long distances without losing too much power. This is achieved using microwaves, which are similar to the waves used in microwave ovens but at a much higher frequency. Microwaves can travel through the atmosphere and are not affected by weather conditions, making them ideal for transmitting energy from space. However, they can also be dangerous if not properly contained, so safety measures need to be put in place.

Another challenge of Space-Based Solar Power is the cost involved in launching the necessary equipment into space. Solar panels and microwave transmitters are bulky and heavy, which makes launching them into space expensive. However, recent advances in space technology have made it possible to launch smaller and more efficient satellites at a lower cost. This could make SBSP more economically viable in the future.

The potential benefits of SBSP are numerous. Since it provides a constant source of renewable energy, it could help reduce our dependence on fossil fuels and reduce greenhouse gas emissions. It could also be used to power remote regions and areas affected by war or natural disasters where access to electricity is limited. In addition, it could be used to power space missions and settlements, making long-term space exploration more feasible.

However, there are also concerns about the potential drawbacks of SBSP. One concern is the environmental impact of launching large numbers of satellites into space. Space debris is already a major problem, and adding more satellites could exacerbate the problem. Another concern is the potential health risks of wireless energy transmission. Although microwaves are generally safe, there’s still some uncertainty about their long-term effects on human health.

Despite these concerns, the successful transmission of solar power from space to Earth using Maple is a major achievement that could pave the way for more research into SBSP and its development into a viable large-scale energy source. The next step is to scale up the technology and test it over longer distances.

While there are still challenges to overcome, the potential benefits of SBSP are enormous and could play a critical role in our transition to a low-carbon future.

 

 


 

 

Source  Happy Eco News

A solar power station in space? Here’s how it would work – and the benefits it could bring

A solar power station in space? Here’s how it would work – and the benefits it could bring

The UK government is reportedly considering a £16 billion proposal to build a solar power station in space.

Yes, you read that right. Space-based solar power is one of the technologies to feature in the government’s Net Zero Innovation Portfolio. It has been identified as a potential solution, alongside others, to enable the UK to achieve net zero by 2050.

But how would a solar power station in space work? What are the advantages and drawbacks to this technology?

Space-based solar power involves collecting solar energy in space and transferring it to Earth. While the idea itself is not new, recent technological advances have made this prospect more achievable.

The space-based solar power system involves a solar power satellite – an enormous spacecraft equipped with solar panels. These panels generate electricity, which is then wirelessly transmitted to Earth through high-frequency radio waves. A ground antenna, called a rectenna, is used to convert the radio waves into electricity, which is then delivered to the power grid.

A space-based solar power station in orbit is illuminated by the Sun 24 hours a day and could therefore generate electricity continuously. This represents an advantage over terrestrial solar power systems (systems on Earth), which can produce electricity only during the day and depend on the weather.

With global energy demand projected to increase by nearly 50% by 2050, space-based solar power could be key to helping meet the growing demand on the world’s energy sector and tackling global temperature rise.

 

Some challenges

A space-based solar power station is based on a modular design, where a large number of solar modules are assembled by robots in orbit. Transporting all these elements into space is difficult, costly, and will take a toll on the environment.

The weight of solar panels was identified as an early challenge. But this has been addressed through the development of ultra-light solar cells (a solar panel comprises smaller solar cells).

Space-based solar power is deemed to be technically feasible primarily because of advances in key technologies, including lightweight solar cells, wireless power transmission and space robotics.

Importantly, assembling even just one space-based solar power station will require many space shuttle launches. Although space-based solar power is designed to reduce carbon emissions in the long run, there are significant emissions associated with space launches, as well as costs.

Space shuttles are not currently reusable, though companies like Space X are working on changing this. Being able to reuse launch systems would significantly reduce the overall cost of space-based solar power.

 

Solar power systems on Earth can only produce energy during the daytime. Diyana Dimitrova/Shutterstock

 

If we manage to successfully build a space-based solar power station, its operation faces several practical challenges, too. Solar panels could be damaged by space debris. Further, panels in space are not shielded by Earth’s atmosphere. Being exposed to more intense solar radiation means they will degrade faster than those on Earth, which will reduce the power they are able to generate.

The efficiency of wireless power transmission is another issue. Transmitting energy across large distances – in this case from a solar satellite in space to the ground – is difficult. Based on the current technology, only a small fraction of collected solar energy would reach the Earth.

 

Pilot projects are already underway

The Space Solar Power Project in the US is developing high-efficiency solar cells as well as a conversion and transmission system optimised for use in space. The US Naval Research Laboratory tested a solar module and power conversion system in space in 2020. Meanwhile, China has announced progress on their Bishan space solar energy station, with the aim to have a functioning system by 2035.

In the UK, a £17 billion space-based solar power development is deemed to be a viable concept based on the recent Frazer-Nash Consultancy report. The project is expected to start with small trials, leading to an operational solar power station in 2040.

The solar power satellite would be 1.7km in diameter, weighing around 2,000 tonnes. The terrestrial antenna takes up a lot of space – roughly 6.7km by 13km. Given the use of land across the UK, it’s more likely to be placed offshore.

This satellite would deliver 2GW of power to the UK. While this is a substantial amount of power, it is a small contribution to the UK’s generation capacity, which is around 76GW.

With extremely high initial costs and slow return on investment, the project would need substantial governmental resources as well as investments from private companies.

But as technology advances, the cost of space launch and manufacturing will steadily decrease. And the scale of the project will allow for mass manufacturing, which should drive the cost down somewhat.

Whether space-based solar power can help us meet net zero by 2050 remains to be seen. Other technologies, like diverse and flexible energy storage, hydrogen and growth in renewable energy systems are better understood and can be more readily applied.

Despite the challenges, space-based solar power is a precursor for exciting research and development opportunities. In the future, the technology is likely to play an important role in the global energy supply.

 


 

Source The Conversation

UK government commissions space solar power stations research

UK government commissions space solar power stations research

 

The UK government has commissioned new research into space-based solar power (SBSP) systems that would use very large solar power satellites to collect solar energy, convert it into high-frequency radio waves, and safely beam it back to ground-based receivers connected to the electrical power grid.

It is an idea first conjured by science-fiction writer Isaac Asimov in 1941, and is now being studied by several nations because the lightweight solar panels and wireless power transmission technology is advancing rapidly. This, together with lower cost commercial space launch, may make the concept of solar power satellites more feasible and economically viable.

Now the UK in 2020 will explore whether this renewable technology could offer a resilient, safe and sustainable energy source.

 

Science Minister Amanda Solloway said:

Solar space stations may sound like science fiction, but they could be a game-changing new source of energy for the UK and the rest of the world.

This pioneering government-backed study will help shine a light on the possibilities for a space-based solar power system which, if successful, could play an important role in reducing our emissions and meeting the UK’s ambitious climate change targets.

 

The study, led by Frazer-Nash Consultancy, will consider the engineering and economics of such a system – whether it could deliver affordable energy for consumers, and the engineering and technology that would be required to build it. One of the biggest issues to overcome is assembling the massive satellites in orbit, which has not been done before at this scale.

 

Dr Graham Turnock, Chief Executive of the UK Space Agency, said:

The Sun never sets in space, so a space solar power system could supply renewable energy to anywhere on the planet, day or night, rain or shine. It is an idea that has existed for decades, but has always felt decades away.

The UK is growing its status as a global player in space and we have bold plans to launch small satellites in the coming years. Space solar could be another string to our bow, and this study will help establish whether it is right for the UK.

 

Historically, the cost of rocket launches and the weight that would be required for a project of this scale made the idea of space-based solar power unfeasible. But the emergence of privately-led space ventures has brought the cost of launch down dramatically in the last decade.

 

Martin Soltau, Space Business Manager at Frazer-Nash outlined what the study will involve:

Decarbonising our economy is vital. We need to explore new technologies to provide clean, affordable, secure and dependable energy for the nation. SBSP has the potential to contribute substantially to UK energy generation, and offers many benefits if it can be made practical and affordable.

Frazer-Nash is studying the leading international solar power satellite designs, and we will be drawing up the engineering plan to deploy an operational SBSP system by 2050. We are forming an expert panel, comprised of leading SBSP experts and space and energy organisations, to gain a range of industry views.

We will compare SBSP alongside other forms of renewable energy, to see how it would contribute as part of a future mix of clean energy technologies.

We have also partnered with Oxford Economics, who have significant experience in the space sector and who will provide additional insight to the economic assessment of the system, and the benefit to the UK economy.

 

As the effects of climate change become more pronounced, prominent research institutions and government agencies are focusing new money and attention on novel approaches to reduce global warming.

In 2019, Britain passed an important milestone, with more electricity generated from sources like wind, solar and nuclear power, that produce almost no carbon dioxide emissions, than from carbon-emitting fuels like natural gas and coal.

According to the World Resources Institute – a Washington-based non-profit that tracks climate change – Britain has reduced carbon dioxide generated in the country by about 40 per cent, which is more than any other major industrialised country.

As the National Space Council sets a new direction for our space policy, the UK Space Agency is committed to understanding the future opportunities space technologies open up.

 


 

From UK Space Agency and Department for Business, Energy & Industrial Strategy

Source Gov.UK