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the effects of phones' radiations on your health ... #elonmusk Analytics Table
Income Estimates for the effects of phones' radiations on your health ... #elonmusk
Based on this YouTube video's total view count of 819K views and industry-standard rates, the estimated total earning is $573 - $1.64K through ad revenue. Historical data is not yet available to calculate daily, weekly, or monthly averages.
About the effects of phones' radiations on your health ... #elonmusk
Explore the effects of phones' radiations on your health ... #elonmusk with 819,280 views, 0 likes, and 1,569 comments. Experience the impact of this video content that has captured audience attention.
In this short Elon Musk describes the effects of phones radiations on human's health. Elon Reeve Musk (/ĖiĖlÉn/ EE-lon; born June 28, 1971) is a business magnate and investor. He is the founder, CEO and chief engineer of SpaceX; angel investor, CEO and product architect of Tesla, Inc.; owner, CTO and chairman of Twitter; founder of the Boring Company and X Corp.; co-founder of Neuralink and OpenAI; and president of the philanthropic Musk Foundation. Musk is the wealthiest person in the world according to the Bloomberg Billionaires Index, and second-wealthiest according to the Forbes's Real Time Billionaires list as of June 2023, primarily from his ownership stakes in Tesla and SpaceX, with an estimated net worth of around $205 billion according to Bloomberg and $211.4 billion according to Forbes. In physics, radiation is the emission or transmission of energy in the form of waves or particles through space or through a material medium.[1][2] This includes: electromagnetic radiation, such as radio waves, microwaves, infrared, visible light, ultraviolet, x-rays, and gamma radiation (γ) particle radiation, such as alpha radiation (α), beta radiation (β), proton radiation and neutron radiation (particles of non-zero rest energy) acoustic radiation, such as ultrasound, sound, and seismic waves (dependent on a physical transmission medium) gravitational radiation, that takes the form of gravitational waves, or ripples in the curvature of spacetime. Radiation is often categorized as either ionizing or non-ionizing depending on the energy of the radiated particles. Ionizing radiation carries more than 10 eV, which is enough to ionize atoms and molecules and break chemical bonds. This is an important distinction due to the large difference in harmfulness to living organisms. A common source of ionizing radiation is radioactive materials that emit α, β, or γ radiation, consisting of helium nuclei, electrons or positrons, and photons, respectively. Other sources include X-rays from medical radiography examinations and muons, mesons, positrons, neutrons and other particles that constitute the secondary cosmic rays that are produced after primary cosmic rays interact with Earth's atmosphere. Gamma rays, X-rays and the higher energy range of ultraviolet light constitute the ionizing part of the electromagnetic spectrum. The word "ionize" refers to the breaking of one or more electrons away from an atom, an action that requires the relatively high energies that these electromagnetic waves supply. Further down the spectrum, the non-ionizing lower energies of the lower ultraviolet spectrum cannot ionize atoms, but can disrupt the inter-atomic bonds which form molecules, thereby breaking down molecules rather than atoms; a good example of this is sunburn caused by long-wavelength solar ultraviolet. The waves of longer wavelength than UV in visible light, infrared and microwave frequencies cannot break bonds but can cause vibrations in the bonds which are sensed as heat. Radio wavelengths and below generally are not regarded as harmful to biological systems. These are not sharp delineations of the energies; there is some overlap in the effects of specific frequencies.[3] The word "radiation" arises from the phenomenon of waves radiating (i.e., traveling outward in all directions) from a source. This aspect leads to a system of measurements and physical units that are applicable to all types of radiation. Because such radiation expands as it passes through space, and as its energy is conserved (in vacuum), the intensity of all types of radiation from a point source follows an inverse-square law in relation to the distance from its source. Like any ideal law, the inverse-square law approximates a measured radiation intensity to the extent that the source approximates a geometric point. #shorts #joerogan #radiation #elonmusk
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