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    "results": [
        {
            "id": 10771,
            "url": "https://svs.gsfc.nasa.gov/10771/",
            "result_type": "Produced Video",
            "release_date": "2011-08-23T00:00:00-04:00",
            "title": "A Pinch Of Salt From Space",
            "description": "NASA gave the command last week to power on its newest Earth-observing satellite, Aquarius. It may seem a somewhat peculiar measurement to make, but Aquarius, which launched in June 2011, will measure salinity across all the oceans every week. The data will undoubtedly help answer some of our most pressing questions about climate change. Why measure ocean salinity? The density of ocean water is determined by salinity and water temperature. Density drives the pattern of deep ocean currents, and ocean currents drive global climate. In recent decades, scientists have seen ocean salinity shift in ways that only climate change seems able to explain. Until now, salinity data came from slow-moving ships and a network of floating sensors that could only provide a limited global picture. Satellite technology changes that: From 400 miles (644 km) above Earth Aquarius' hypersensitive microwave radiometer can detect differences in ocean salinity to within a pinch of salt in a gallon of water. Let the science begin. || ",
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        {
            "id": 10709,
            "url": "https://svs.gsfc.nasa.gov/10709/",
            "result_type": "Produced Video",
            "release_date": "2011-05-10T00:00:00-04:00",
            "title": "Aquarius Water Cycle",
            "description": "Scientists need a breadth of information to understand the ocean's processes. That's where Aquarius comes in. The sensor will use advanced technologies to give NASA its first space-based measurements of sea surface salinity, helping scientists to improve predictions of future climate trends and events. || ",
            "hits": 82
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        {
            "id": 10710,
            "url": "https://svs.gsfc.nasa.gov/10710/",
            "result_type": "Produced Video",
            "release_date": "2011-05-10T00:00:00-04:00",
            "title": "Aquarius Ocean Circulation",
            "description": "Ocean circulation plays a key role in distributing solar energy and maintaining climate, by moving heat from Earth's equator to the poles. Aquarius salinity data, combined with data from other sensors that measure sea level, rainfall, temperature, ocean color, and winds, will give us a much clearer picture of how the ocean works. || ",
            "hits": 78
        },
        {
            "id": 10735,
            "url": "https://svs.gsfc.nasa.gov/10735/",
            "result_type": "Produced Video",
            "release_date": "2011-05-10T00:00:00-04:00",
            "title": "Aquarius Climate",
            "description": "Sea surface salinity has a massive influence on Earth's climate. With Aquarius, scientists will have a new way to measure that influence in a consistent way. With its unprecedented accurate and consistent salinity measurements, Aquarius will help climate modelers to better understand the ocean-atmosphere processes that are changing Earth's climate. || ",
            "hits": 22
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        {
            "id": 555,
            "url": "https://svs.gsfc.nasa.gov/555/",
            "result_type": "Visualization",
            "release_date": "1999-01-21T12:00:00-05:00",
            "title": "North Atlantic Ocean Current Velocity",
            "description": "Three-dimensional General Circulation Models divide the ocean into a rectangular grid with layered vertical columns.  This North Atlantic model uses a 1/6 degree grid with 37 layers.  It captured 30 years of velocity, sea-surface temperature, and salinity.  The model realistically separates the Gulf Stream from the Florida coast.  A feature as small as the Gulf Stream had not appeared in lower-resolution models. || ",
            "hits": 18
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        {
            "id": 329,
            "url": "https://svs.gsfc.nasa.gov/329/",
            "result_type": "Visualization",
            "release_date": "1998-10-23T12:00:00-04:00",
            "title": "Images of Earth and Space II",
            "description": "This videotape tours the Solar System and outer space using scientific visualizations from Goddard Space Flight Center, Jet Propulsion Laboratory, and the HPCC Earth and Space Sciences Project. At the Sun, simulations investigate processes that create magnetic field and release energetic particles. Earth science begins with the Pacific Ocean, studying the 1997-98 El Niño and Cyclone Susan. Crossing the globe, visualizations trace North America's East Coast and ocean currents in the North Atlantic Ocean. The lights of the world's cities then show human impact. Next, two models probe nearby-space phenomena, fluid behavior in microgravity conditions and an asteroid collision. A jaunt to Mars explores the mountains and trenches of its dry, rocky exterior. The video concludes at a binary neutron star system, where two city-sized objects with the Sun's mass merge in a titanic explosion. || ",
            "hits": 154
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        {
            "id": 251,
            "url": "https://svs.gsfc.nasa.gov/251/",
            "result_type": "Visualization",
            "release_date": "1997-11-01T12:00:00-05:00",
            "title": "Images of Earth and Space: SC97 Edition",
            "description": "The entire narrated Images video made for Supercomputing 97 || a000251_pre.jpg (320x238) [8.0 KB] || a000251_thm.png (80x40) [3.8 KB] || a000251_pre_searchweb.jpg (320x180) [45.9 KB] || preview_made_from_dv.00450_print.png (352x240) [104.0 KB] || a000251.webmhd.webm (960x540) [63.8 MB] || a000251.mpg (352x240) [156.0 MB] || ",
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}