Answer:
Explanation:
The Doppler effect formula for an observer approaching a source is given by equation (1);
where is the frequency perceived by the observer, v is the actual velocity of the wave in air, is the velocity of the observer, is the velocity of the source and is the actual frequency of the wave.
The actual velocity v of light in air is . The relationship between velocity, frequency and wavelength is given by equation (2);
therefore;
We therefore use equation (3) to find the actual frequency of light emitted and the frequency perceived by Slick Willy.
Actual wavelength of light emitted is 678nm, hence actual frequency is
given by;
Also, the frequency perceived by Slick Willy is given thus;
The velocity of the source light is zero since the traffic light was stationary. Substituting all parameters into equation (1), we obtain the following;
We then simplify further to get
cancels out from both sides, so we obtain the following;
Hence;
Answer:
61578948 m/s
Explanation:
λ = λ
687 = 570
= 61578948 m/s
So Slick Willy was travelling at a speed of 61578948 m/s to observe this.
B. supernova.
C. black hole.
D. vacuum.
An IUPAC name for a covalent compound is ethane. For covalent compounds, IUPAC names are based on the composition and structure of the molecules. Covalent compounds typically consist of nonmetals or a combination of nonmetals and metalloids.
Ethane (C₂H₆) is a covalent compound that consists of two carbon atoms bonded to each other with single bonds, and each carbon atom is also bonded to three hydrogen atoms.
Other examples of IUPAC names for covalent compounds include:
Methane (CH₄)
Propane (C₃H₈)
Ethene (C₂H₄)
Nitrogen dioxide (NO₂)
These names are derived based on the IUPAC rules for naming covalent compounds, which consider the number and types of atoms present in the molecule.
To know more about covalent compounds:
#SPJ6
inertia is the answer haha i'm late