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How Light Works: Waves, Speed, and Colors Explained
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Introductory Astronomy Complete University Course - How Light Works: Waves, Speed, and Colors Explained

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22 learners

What you'll learn

This course includes

  • 114.5 hours of video
  • Certificate of completion
  • Access on mobile and TV

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This video is part of a comprehensive series initially developed for William Paterson University and CUNY Hunter, aimed at supporting online classes and course materials for introductory astronomy. By engaging with all the videos within this series, you will effectively complete a full undergraduate course in astronomy, equipping yourself with the knowledge and skills necessary to navigate the night sky with confidence, learning all the basics and many advanced topics! Light, essential for vision, reaches us from various sources, not just our eyes. It’s electromagnetic radiation, energy that travels through space without physical contact. Energy transfer occurs through conduction (heat transfer through molecules), convection (heat transfer through fluids), and radiation (energy transfer through empty space). Light exhibits wave properties, with wavelength (distance between wave crests) and frequency (number of waves per second) defining its behavior. The speed of light in a vacuum is constant at approximately 299,792.458 kilometers per second. Historical methods for measuring its speed include astronomical observations and mechanical experiments. Light demonstrates diffraction (bending around objects) and interference patterns (constructive and destructive). The Doppler Effect describes the change in frequency and wavelength of a wave relative to an observer. For sound, it causes a change in pitch when a source moves. For light, objects moving towards the observer cause a blue shift, while those moving away cause a red shift. This phenomenon is useful in astronomy for observing celestial objects’ motion. There’s no absolute speed except for the speed of light. All other speeds are relative to an observer’s frame of reference. Practical examples include diffraction, where light and dark bands are formed by holding two fingers close together and looking at a light source, and prisms and rainbows, which demonstrate light spreading into its constituent colors. Color perception is a construct of the brain. Photoreceptors in the eye detect specific light wavelengths, and the brain interprets these signals as different colors. This biological basis means color perception can vary, as seen in cases of color blindness, where certain photoreceptors fail to distinguish specific wavelengths. #Light #ElectromagneticRadiation #Physics #Wavelengths #DopplerEffect #Spectroscopy #ScienceExplained #VisibleSpectrum #Optics #Astrophysics

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