the higher the frequency, the higher the energy (or visa versa).
The relationship between the parasite and host is that they share they same body, with the parasite living off the hosts cells and energy etc.
There is no direct relationship between physics and economics. Physics attempts to describe in mathematical terms how matter and energy interact. Economics tries to understand the human systems of work, pay, investment, and value assessment.
The relationship between energy and power is that power is energy used over time!-Brandon Davis, Norwood MAAdditional AnswerPower is the rate at which energy is expended. In other words, power is energy divided by time. Power is measured in watts, while energy is measured in joules. So, the watt is equivalent to a joule per second. For the purpose of billing its customers, energy companies use the kilowatt hour, rather than the joule, kilojoule, or megajoule, to measure energy consumption. Since power is energy divided by time, then energy is power times time. If power is measured in kilowatts, and time in hours, then energy can be measured in kilowatts x hours, or kilowatt hours (kW.h).
You need oxygen to convert food into energy and this process is called cellular respiration
The Moeosphere However Receives No Energy From ThE sUN cAUSING iT tO bY vERY COlD
The relationship between frequency and energy in electromagnetic waves is that higher frequency waves have higher energy. This means that as the frequency of an electromagnetic wave increases, so does its energy.
the higher the frequency the higher the energy
The relationship between photon frequency and energy is direct and proportional. As the frequency of a photon increases, its energy also increases. This relationship is described by the equation E hf, where E is the energy of the photon, h is Planck's constant, and f is the frequency of the photon.
The energy of an electromagnetic wave is directly proportional to its frequency. This means that as the frequency of the wave increases, so does its energy.
The mathematical relationship between frequency and energy is given by the formula E = hf, where E is the energy of a photon, h is Planck's constant, and f is the frequency of the photon. This equation shows that the energy of a photon is directly proportional to its frequency.
Photon energy is directly proportional to frequency. This relationship is described by the equation E = hf, where E is the energy of the photon, h is Planck's constant, and f is the frequency of the photon. This means that as frequency increases, photon energy also increases.
In the wave equation, the energy of a wave is directly proportional to its frequency. This means that as the frequency of a wave increases, so does its energy.
In quantum mechanics, the relationship between energy (e) and frequency () is described by the equation e . This equation shows that energy is directly proportional to frequency, where is the reduced Planck's constant. This means that as the frequency of a quantum system increases, its energy also increases proportionally.
Wavelength and frequency are inversely proportional.
The energy of an electromagnetic wave is directly proportional to its frequency. This means that as the frequency of the wave increases, so does its energy. This relationship is described by Planck's equation E = h * f, where E is energy, h is Planck's constant, and f is frequency.
The relationship between wavelength and frequency in electromagnetic radiation is inverse - shorter wavelengths correspond to higher frequencies. Higher frequency radiation carries more energy, as energy is directly proportional to frequency in the electromagnetic spectrum.
The energy of an electromagnetic wave is directly proportional to its frequency and inversely proportional to its wavelength. Higher frequency waves carry more energy than lower frequency waves. This relationship is described by the equation E = hν, where E is energy, h is Planck's constant, and ν is frequency.