@ChatPhysics

A collective set up by teachers to support physics teaching worldwide. Articles, chats & more for all involved in physics teaching. Come & #ChatPhysics with us!

Worldwide
Joined February 2019
Summer Holidays are here. Which can only mean one of 2 things. 1) Teachers discuss plans for new year and help develop resources and teaching tips or 2) CIVIL WAR!!! - fight about current teaching news and developments. Please go ahead and do BOTH and have fun!!
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Get a sneak peak at the Photoelectric Effect simulation being released soon, and learn more about what makes it so effective. Explore our free quantum sims on the PhET Website 🔗f.mtr.cool/yjlzporth9
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Sunrise, sunset 🏜️ To mark Curiosity’s 5,000th Martian day on the Red Planet, the rover’s team created this postcard. It combines two panoramas, with blue colors representing images taken in the morning, and yellow colors for the images taken at dusk. 1/2
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Just a piece of NSF–DOE Rubin Observatory's Ocean of Stars 🌊✨ This galaxy is MCG-06-33-009, and the blue knots in its spiral arms show where hot, young stars are forming. Rubin will capture billions of galaxies and enable scientists to study how galaxies grow and change 🌀
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Earth to Roman! 📡 Our team has deployed Roman’s high-data-rate dish antenna. This antenna will be used to send more than a terabyte of science data down from the observatory daily. science.nasa.gov/blogs/roman…
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NASA’s Nancy Grace @NASARoman Space Telescope is now in space and beginning the journey to its operating location near the Sun–Earth L2 Lagrange point, roughly 1.5 million kilometres, or just under one million miles, from Earth. Roman launched on August 30, 2026, aboard a @SpaceX Falcon Heavy from Kennedy Space Center, and separated successfully from the rocket about half an hour later. It will spend roughly three months travelling toward L2 while engineers gradually deploy, activate, test and calibrate its systems and instruments. On August 31, the spacecraft completed its first planned mid-course correction, a short engine burn that refined its trajectory toward L2. L2 is one of five Lagrange points produced by the gravitational interaction between the Sun and Earth. They are often described as places where gravitational forces “balance,” although physically the situation is a little more subtle: in the rotating Sun–Earth system, the combined gravitational acceleration of the Sun and Earth allows a spacecraft near L2 to orbit the Sun with the same angular period as Earth despite being farther from the Sun. Roman will therefore not remain motionless at L2. Like the James Webb Space Telescope, it will follow a large halo orbit around the L2 region and will occasionally perform small station-keeping manoeuvres to prevent its orbit from drifting. L1, L2 and L3 are dynamically unstable, while L4 and L5 are stable. For an astronomical observatory, L2 is an extremely useful environment. The Sun, Earth and Moon remain roughly in the same general direction from the spacecraft, making it easier to keep them away from the telescope’s observing direction and to maintain a relatively stable thermal environment. At the same time, Roman remains close enough to Earth for high-rate communications and receives essentially continuous sunlight for electrical power. These advantages are among the reasons JWST also operates around Sun–Earth L2. Once Roman is commissioned, its main strength will be its combination of Hubble-class angular resolution with an enormously larger field of view. Its 300-megapixel Wide Field Instrument will survey large areas of the infrared sky rapidly rather than concentrating primarily on individual targets. Roman is expected to return around 1.4 terabytes of data per day, allowing astronomers to study the distribution and evolution of galaxies across cosmic time on an unprecedented statistical scale. Those surveys are designed to investigate some of cosmology’s central problems, particularly the nature of dark energy, the distribution of dark matter, and the growth of large-scale structure. Roman will also conduct extensive exoplanet studies, including gravitational microlensing surveys capable of detecting planets that are difficult to find with transit or radial-velocity methods. The observatory also carries a Coronagraph Instrument, primarily a technology demonstration, that will suppress starlight sufficiently to directly image and characterize some giant exoplanets. The technologies demonstrated by this instrument are particularly important because more advanced versions could eventually contribute to missions such as the proposed Habitable Worlds Observatory, whose long-term objective includes directly imaging potentially Earth-like planets around nearby stars. Roman’s coronagraph therefore has scientific value of its own, but it is also an important technological step toward much more demanding future observations. Roman’s journey to L2 is consequently not simply a transfer from Earth to a distant fixed point. It is the beginning of an extended commissioning process in which the observatory is being configured and calibrated while travelling toward a carefully controlled orbit around L2. NASA expects the transfer and commissioning phase to take roughly three months, with the first public images anticipated in early 2027. What I find most interesting about Roman is that its real scientific advantage is not simply obtaining sharper or deeper individual images. Hubble and JWST already perform exceptionally well in that regime. Roman changes the scale of the experiment: it combines high-quality space-based imaging with surveys containing enormous numbers of galaxies and stars. For cosmology in particular, that statistical power is what makes it such an important mission.
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Thank you to all the Physics teachers out there who are about to start the Academic year. Whether it is your first year, or your 30th year, just remember how special you are! “In the beginning there was nothing, which exploded.” – Terry Pratchett
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Next stop, Mercury. After an eight-year journey, ESA/JAXA's BepiColombo is nearing arrival at its destination. Explore the key milestones, timeline and science behind the mission in our new media kit: esa.int/Science_Exploration/…
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One week to go till publication day!
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Confirmation from the Examiners Report that the last question on the AQA GCSE Physics Paper 2 Combined Science paper with the typo/error meant all students were awarded all 5 marks for that question regardless of if they attempted it or not.
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Think you’ve got what it takes to survey the sky? Control NSF–DOE Rubin Observatory's telescope and try to detect the most objects with our interactive, 60s game: Space Surveyors! 🎮 How many can you catch before the sun rises? Drop your score below👇 spacesurveyors.app
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Most asteroids pose no threat, but tracking the ones that could starts with knowing they exist at all. Over the next decade, NSF–DOE Rubin Observatory will reveal millions more, including ~90k near-Earth objects☄️ 🎥: NSF–DOE RubinObs/NOIRLab/SLAC/AURA/R. Proctor
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Planning to watch today's partial solar eclipse? ☀️ 🌑 🌍 Starting at 6:13pm in the UK, maximum eclipse will occur at 7.10pm with around 90-96% of the Sun being obscured. The eclipse will end at 8:03 pm. #SolarEclipse2026
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🤔What is a total solar eclipse? 🔜A total solar eclipse happens when the Moon passes directly between the Sun and Earth. The Moon blocks light from the Sun and casts a shadow on Earth. 🌑A total solar eclipse is visible from within the region of full shadow behind the Moon, called the ‘umbra’. 🌘A partial eclipse is visible from regions on Earth within the partial shadow - the ‘penumbra’. Find out more esa.int/Science_Exploration/… #EuropeanSolarEclipse
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This celestial butterfly might appear serene, but its “wings” are actually roiling cauldrons of gas heated to more than 36,000°F, spreading across space at more than 600,000 mph. You'd be able to go from Earth to the Moon in 24 minutes at that speed! #MondayMotivation
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On Wednesday, the UK will be treated to a partial solar eclipse. ☀️ 🌑 🌍 Starting at 6:13 pm UK time, maximum eclipse will occur at 7.10pm, with around 90-96% of the Sun being obscured. The eclipse will end at 8:03pm. Be sure to use speciality glasses to safely watch it. 🕶️
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No, your eyes aren't playing tricks on you! 🥞☀️ The setting Sun in this @NOIRLabAstro #ImageOfTheWeek of NSF–DOE Rubin Observatory looks flattened due to atmospheric refraction. The atmosphere also filters out bluer wavelengths, leaving just the orange colors you see here 🌅
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Today, NASA's Juno spacecraft celebrates 15 years in space! Launched on Aug 5, 2011, Juno has spent the last 10 years orbiting Jupiter and providing dazzling views and fresh understandings of the largest planet in our solar system, its rings, and its many moons. 📷 JunoCam image of Jupiter's south pole processed by citizen scientist Roman Tkachenko
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