Study: Mars Subsurface Harbors Oceans of Liquid Water

FILE PHOTO: The planet Mars is shown in this NASA Hubble Space Telescope view taken May 12, 2016. NASA/Handout via Reuters
FILE PHOTO: The planet Mars is shown in this NASA Hubble Space Telescope view taken May 12, 2016. NASA/Handout via Reuters
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Study: Mars Subsurface Harbors Oceans of Liquid Water

FILE PHOTO: The planet Mars is shown in this NASA Hubble Space Telescope view taken May 12, 2016. NASA/Handout via Reuters
FILE PHOTO: The planet Mars is shown in this NASA Hubble Space Telescope view taken May 12, 2016. NASA/Handout via Reuters

A study released Monday shows evidence of liquid water far below the surface of the fourth planet, advancing the search for life there and showing what might have happened to Mars' ancient oceans.

NASA's Mars InSight lander, which has been on the Red Planet since 2018, measured seismic data over four years, examining how quakes shook the ground and determining what materials or substances were beneath the surface.

Based on that data, the researchers found liquid water was most likely present deep beneath the lander. Water is considered essential for life, and geological studies show the planet's surface had lakes, rivers and oceans more than 3 billion years ago.

"On Earth what we know is where it is wet enough and there are enough sources of energy, there is microbial life very deep in Earth’s subsurface," said one of the authors, Vashan Wright of the University of California San Diego's Scripps Institution of Oceanography. "The ingredients for life as we know it exist in the Martian subsurface if these interpretations are correct."

The study found that large reservoirs of liquid water in fractures 11.5 kilometers (7.15 miles) to 20km beneath the surface best explained the InSight measurements.
It notes that the volume of liquid water predicted beneath the surface is "more than the water volumes proposed to have filled hypothesized ancient Martian oceans."

"On Earth, groundwater infiltrated from the surface" to deep underground, Wright said. "We expect this process to have occurred on Mars as well when the upper crust was warmer than it is today."

It would take drills and other equipment to confirm the presence of water and seek out any potential signs of microbial life.
Although the InSight lander is no longer working, scientists continue to analyze the data collected from 2018 through 2022, in search of more information about Mars’ interior.
Wet almost all over more than 3 billion years ago, Mars is thought to have lost its surface water as its atmosphere thinned, turning the planet into the dry, dusty world known today. Scientists theorize much of this ancient water escaped out into space or remained buried below.

The study, whose other authors are Matthias Morzfeld of the Scripps Institution of Oceanography and Michael Manga of the University of California Berkeley, was published the week of Aug. 12 in the journal Proceedings of the National Academy of Sciences.
"I’m inspired and I hope the public is also inspired," Wright said. "Humans can work together to put instruments on a planet... and try to understand what’s going on there."



Sports Boulevard Foundation Wins King Salman Charter for Architecture, Urbanism Award

Sports Boulevard Foundation Wins King Salman Charter for Architecture, Urbanism Award
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Sports Boulevard Foundation Wins King Salman Charter for Architecture, Urbanism Award

Sports Boulevard Foundation Wins King Salman Charter for Architecture, Urbanism Award

The Sports Boulevard Foundation has won the prestigious King Salman Charter for Architecture and Urbanism Award, organized by the Architecture and Design Commission. The award recognizes the project’s excellence in embracing the principles and standards of the charter through the implementation of the design code for the Sports Boulevard.
CEO of the Architecture and Design Commission, Dr. Sumayah Al-Sulaiman, presented the award to CEO of the Sports Boulevard Foundation, Jayne McGivern, during the award's closing ceremony at the King Abdulaziz International Conference Center in Riyadh, SPA reported.
The Sports Boulevard Foundation won the award for its integration of a unique design code and its commitment to applying the code, which balances authenticity and modernity, showcasing innovative and distinct urban outputs.
The award seeks to celebrate and recognize projects that distinguish themselves by embodying the values of the King Salman Charter for Architecture and Urbanism. It aims to contribute to achieving the objectives of the charter and to encourage and motivate entities, practitioners, and students to incorporate the charter’s values into their work, fostering a competitive environment that produces a higher level of urban excellence.
The project applies local identity and Salmani architecture across its various elements, not just in buildings, and has gained the trust of a committee of 30 local and international experts in architecture and design. McGivern also mentioned that the Sports Boulevard project is designed to revolutionize urban planning in Riyadh. The project spans over 135 kilometers and includes more than 4.4 million square meters of green and open spaces, along with up to 50 multi-disciplinary sports facilities with integrated infrastructure.
In 2022, the Sports Boulevard Foundation launched the Design Code for all buildings located on Prince Mohammed bin Salman bin Abdulaziz Al Saud Road, emphasizing the importance of local identity and Salmani architecture, which embodies authenticity and modernity in design. The code aims to create a modern and sustainable environment that enhances the quality of life.
The Sports Boulevard is one of Riyadh’s mega projects launched by the Custodian of the Two Holy Mosques, King Salman bin Abdulaziz Al Saud, on March 19, 2019, and is chaired by Crown Prince Mohammed bin Salman bin Abdulaziz Al Saud. The project is committed to improving the quality of life for the city’s residents and visitors by offering integrated infrastructure, pedestrian pathways, cycling pathways, horse-riding trails, and more.