惯性聚合 高效追踪和阅读你感兴趣的博客、新闻、科技资讯
阅读原文 在惯性聚合中打开

推荐订阅源

A
Arctic Wolf
博客园 - 聂微东
F
Fortinet All Blogs
云风的 BLOG
云风的 BLOG
小众软件
小众软件
V
Visual Studio Blog
博客园 - 三生石上(FineUI控件)
OSCHINA 社区最新新闻
OSCHINA 社区最新新闻
Apple Machine Learning Research
Apple Machine Learning Research
freeCodeCamp Programming Tutorials: Python, JavaScript, Git & More
The Cloudflare Blog
H
Hackread – Cybersecurity News, Data Breaches, AI and More
The GitHub Blog
The GitHub Blog
Y
Y Combinator Blog
Cyber Security Advisories - MS-ISAC
Cyber Security Advisories - MS-ISAC
博客园_首页
L
LangChain Blog
A
About on SuperTechFans
阮一峰的网络日志
阮一峰的网络日志
I
Intezer
T
The Blog of Author Tim Ferriss
Security Latest
Security Latest
C
CXSECURITY Database RSS Feed - CXSecurity.com
Know Your Adversary
Know Your Adversary
Simon Willison's Weblog
Simon Willison's Weblog
cs.CL updates on arXiv.org
cs.CL updates on arXiv.org
P
Palo Alto Networks Blog
Scott Helme
Scott Helme
S
Secure Thoughts
Spread Privacy
Spread Privacy
T
Threat Research - Cisco Blogs
Attack and Defense Labs
Attack and Defense Labs
P
Privacy & Cybersecurity Law Blog
O
OpenAI News
H
Heimdal Security Blog
www.infosecurity-magazine.com
www.infosecurity-magazine.com
Help Net Security
Help Net Security
C
Cyber Attacks, Cyber Crime and Cyber Security
Blog — PlanetScale
Blog — PlanetScale
GbyAI
GbyAI
G
Google Developers Blog
博客园 - Franky
cs.AI updates on arXiv.org
cs.AI updates on arXiv.org
K
Kaspersky official blog
Recent Commits to openclaw:main
Recent Commits to openclaw:main
T
Tor Project blog
D
Darknet – Hacking Tools, Hacker News & Cyber Security
T
Tenable Blog
Google Online Security Blog
Google Online Security Blog
PCI Perspectives
PCI Perspectives

NASA Science

Cosmic Origins at AAS 248, June 2026 - NASA Science Cosmic Structure SIG Seminar, 30 April 2026 - NASA Science CMB SAG Meeting, 24 April 2026 - NASA Science BBX SAG Meeting, 30 April 2026 - NASA Science Early Career Investigator Program – Earth Science (ROSES A.11) - NASA Science XR SIG Seminar, 1 May 2026 - NASA Science Night and (Earth) Day - NASA SWERV: High-Impact Historical Case Study - NASA Science AAS Meeting 248, June 2026 - NASA Science Earth Day 2026: Posters and Virtual Backgrounds - NASA Science Advancing Earth Observation at NASA since Release of Earthrise Photo - NASA Science X-59 Adds Freedom 250 Logo - NASA Belts of Green in the Washington Suburbs - NASA Science Artemis II Mission Milestones: An Image and Video Recap Curiosity Blog, Sols 4867-4872: Sand Fill In Antofagasta Crater and Finding Our Next Drill Target NASA Invites Media to Jordan Artemis Accords Signing Ceremony New NASA Views of Earth, From (S)PACE - NASA Science Crew Studies Biotech on Tuesday to Advance Health and Space Economy NASA Invests in Small Businesses Innovating for Space and Earth NASA at SXSW: Johnson Director Vanessa Wyche on Why Artemis Changes Everything Researchers: How Would You Extract Meaningful Insights from Just Four Astronauts? BBX SAG Meeting, 23 April 2026 - NASA Science Thailand’s Krabi Coast - NASA Science AI/ML STIG Lecture Series, 20 April 2026 - NASA Science SWERV: Training Overview and Agenda - NASA Science SWERV: REAL-TIME CAPABILITIES AND IONOSPHERIC DISRUPTIONS OF COMMUNICATIONS - NASA Science SWERV: Operationally Significant Phenomena and Impacts for Ground Operations - NASA Science SWERV: Space Weather Impacts on Satellites - NASA Science SWERV: Space Weather Chain of Events - NASA Science CSDA Quality Assessment Report Evaluates Satellogic NewSat Data - NASA Science NASA Shuts Off Instrument on Voyager 1 to Keep Spacecraft Operating - NASA Science Webinar 4/29: NASA CSDA Program Vendor Focus- MDA Space - NASA Science Testing Begins for Katalyst-NASA Swift Boost Mission - NASA Science Robert Maiberger - NASA William Vantine - NASA Holly Stevens - NASA Dennis McSweeney - NASA Mark T. Vande Hei - NASA Nicole Stott - NASA William Shepherd - NASA Josef Schmid - NASA NASA, OPM Announce New NASA Force Website, Open Job Applications  - NASA Frank Groen - NASA Ginger Kerrick - NASA Daniel Heimerdinger - NASA Michael Greenfield - NASA Kevin Ford - NASA Charles Daniel - NASA Capt. Frank L. Culbertson, Jr., USN (Ret.) - NASA Spring Rains Saturate Michigan - NASA Science NASA CubeSat Begins Mission to Study Radio Waves in Space - NASA Correction to F.5 FINESST, SMD’s Graduate Student Research Opportunity - NASA Science Restoring NASA's Core Competencies - NASA Small Steps, Giant Leaps: Episode 171: How NASA's Pandora Mission Unboxes Distant Worlds - NASA Physics of the Cosmos PAG Meetings - NASA Science NASA Science Veg-06: How plants and beneficial bacteria work together in microgravity Virtual Engineering & Spacecraft Flight Applications (VESFA) - NASA NASA Heliophysics Spacecraft Witness Comet’s Demise - NASA Science BBX SAG Meeting, 16 April 2026 - NASA Science NASA Invites Media to Latvia Artemis Accords Signing Ceremony - NASA Weak Lensing  - NASA Science At the Edge of Light - NASA NASA’s Mobile Launcher Rolls Ahead of Artemis III Preparation - NASA XR SIG Meeting, 27 April 2026 - NASA Science CRN SIG Meeting, 27 April 2026 - NASA Science GW SIG Seminar, 28 April 2026 - NASA Science Eyeing the Richat Structure - NASA Science I Am Artemis: Rebekah Tolatovicz - NASA NASA Selects Voyager for Seventh Private Mission to Space Station - NASA NASA Launches Six CubeSats to International Space Station Odyssey Celebrates 25 Years - NASA Science Crew Begins New Space Research and Installs New Science Gear - NASA NASA’s X-59 Completes First Wheels-Up Flight 2026 NSTA Hyperwall Schedule - NASA Science Update: Artemis II Crew Comes Home - NASA GW SIG Seminar, 14 April 2026 - NASA Science GR SIG Seminar, 17 April 2026 - NASA Science NASA's Webb Redefines Dividing Line Between Planets, Stars - NASA Science Vianni Ricano Cadenas Super Typhoon Sinlaku - NASA Science DGCE SIG Seminar, 23 April 2026 - NASA Science AI/ML STIG Lecture Series, 13 April 2026 - NASA Science NASA Night-light Imagery Tracks US Energy Transition, Global Volatility - NASA Science Hubble Completion Study 2012 - NASA Science Hubble Spies an Active Spiral - NASA Science Science with the Hubble and James Webb Space Telescopes VIII: Enriching the Universe: From Primordial Megaberg Ends Its Long Odyssey at Sea - NASA Science Artemis II Astronauts Back in Houston, Reunite with Families  - NASA Cygnus XL Cargo Craft Solar Arrays Deploy Powering Flight to Station - NASA Cygnus XL Cargo Craft Launches to Resupply Expedition 74 Crew - NASA La NASA da la bienvenida a la Tierra a los exploradores lunares de Artemis II, quienes batieron récords - NASA NASA Science, Cargo Launch Aboard Northrop Grumman CRS-24 - NASA Artemis II Splashes Down - NASA Artemis II Flight Day 10: Crew Completes Final Burn Before Splashdown  - NASA NASA Welcomes Record-Setting Artemis II Moonfarers Back to Earth  - NASA Human Perception and Performance Laboratory - NASA Artemis II Splashdown and Recovery - NASA Crew Preps for Cygnus XL Cargo Mission Targeted for Saturday Launch - NASA New Perspective of Home - NASA Artemis II Flight Day 10: Crew Sets for Final Burn, Splashdown - NASA
The Harsh Environment of the Lunar South Pole - NASA
2026-05-27 · via NASA Science

NASA selected the lunar South Pole region as the site of the Moon Base because of its strategic, scientific, and long-term exploration potential. But the same conditions that make the region valuable also make it one of the most demanding environments humans have ever attempted to explore. Extreme temperatures, long periods of darkness, abrasive lunar dust, and rugged terrain all present major challenges for sustained surface operations. Establishing the Moon Base in this environment will require advanced technologies, resilient infrastructure, careful site planning, and new approaches to living and working beyond Earth.

The lunar South Pole region has a dramatically different lighting environment than the equatorial maria and highlands visited during Apollo. At the lunar South Pole, the Sun remains low on the horizon, casting dramatic shadows that can hinder solar electricity generation and subject systems to prolonged periods of extreme cold and dark. Systems, operational paradigms, and site plans must be robust to these conditions, including heating and power solutions that allow systems to survive the lunar night and operate in areas of permanent shadow. Operational planning must also account for new shadows cast by emplaced infrastructure as the Moon Base grows.

The South Pole region features a topography of extremes, including high mountains, deep craters, and steep slopes. Mobility systems will need to traverse rugged landscapes and descend into deep craters to access frozen volatiles in permanently shadowed regions. NASA and its partners must develop systems capable of climbing and descending these extreme slopes to collect scientific samples, search for resources, and enable in-situ resource utilization activities that support a sustained lunar presence.

Temperatures in the lunar South Pole region are extreme and will be a major consideration for the Moon Base. Some permanently shadowed regions have not seen sunlight in billions of years and can reach temperatures as low as minus 334°F (minus 203°C)—far colder than any temperature ever recorded in Antarctica. Meanwhile, nearby sunlit areas can climb to around 130°F (54°C). Designing systems capable of surviving these dramatic temperature extremes will be essential for sustaining long-duration human and robotic operations on the Moon.

Lunar dust, known as regolith, is one of the most persistent and challenging hazards of the lunar environment. While it may appear soft and powdery, lunar regolith is made of tiny, sharp-edged particles formed by billions of years of meteoroid impacts on the Moon’s surface. Without wind or water to wear these particles down, the dust remains highly abrasive and can damage spacesuits, seals, tools, vehicles, and other surface systems over time.

Constant exposure to solar radiation causes static electricity to build up on the lunar surface, making lunar dust cling stubbornly to surfaces. The dust can interfere with mechanical systems, degrade electronics, and even make its way inside living spaces during surface operations.

For a sustained human presence on the Moon, managing lunar dust will be essential. NASA and its partners are developing new materials, filtration systems, protective coatings, and dust-repelling technologies designed to help astronauts live and work safely in the harsh lunar environment.