WorksheetsThe Four Fundamental Forces
Total questions: 5
Worksheet time: 21mins
The four fundamental forces act upon us every day, whether we realize it or not. From playing basketball, to launching a rocket into space, to sticking a magnet on your refrigerator - all the forces that all of us experience every day can be whittled down to a critical quartet: Gravity, the weak force, electromagnetism, and the strong force. These forces govern everything that happens in the universe.
What are the four fundamental forces mentioned in the passage?
Gravity, the weak force, electromagnetism, and the strong force
Gravity, friction, electromagnetism, and the strong force
Gravity, the weak force, electromagnetism, and friction
Gravity, the weak force, friction, and the strong force
Which of the following activities is NOT directly related to one of the four fundamental forces?
Playing basketball
Launching a rocket into space
Sticking a magnet on your refrigerator
Reading a book
How do the four fundamental forces affect our daily lives according to the passage?
They govern everything that happens in the universe
They only affect scientific experiments
They are only relevant in outer space
They are only important for technological advancements
Gravity
Gravity is the attraction between two objects that have mass or energy, whether this is seen in dropping a rock from a bridge, a planet orbiting a star or the moon causing ocean tides. Gravity is probably the most intuitive and familiar of the fundamental forces, but it's also been one of the most challenging to explain.
Isaac Newton was the first to propose the idea of gravity, supposedly inspired by an apple falling from a tree. He described gravity as a literal attraction between two objects. Centuries later, Albert Einstein suggested, through his theory of general relativity, that gravity is not an attraction or a force. Instead, it's a consequence of objects bending space-time. A large object works on space-time a bit like how a large ball placed in the middle of a sheet affects that material, deforming it and causing other, smaller objects on the sheet to fall toward the middle.
Though gravity holds planets, stars, solar systems and even galaxies together, it turns out to be the weakest of the fundamental forces, especially at the molecular and atomic scales. Think of it this way: How hard is it to lift a ball off the ground? Or to lift your foot? Or to jump? All of those actions are counteracting the gravity of the entire Earth. And at the molecular and atomic levels, gravity has almost no effect relative to the other fundamental forces.
What is gravity according to Isaac Newton?
A literal attraction between two objects
A consequence of objects bending space-time
The weakest of the fundamental forces
A force that only affects large objects
How did Albert Einstein's theory of general relativity change the understanding of gravity?
It described gravity as a literal attraction between two objects
It suggested gravity is a consequence of objects bending space-time
It stated gravity is the strongest of the fundamental forces
It proposed gravity only affects planets and stars
Which of the following is an example of gravity's effect?
A rock dropping from a bridge
A car accelerating on a highway
A plant growing towards sunlight
A magnet attracting iron filings
Why is gravity considered the weakest of the fundamental forces?
It has almost no effect at the molecular and atomic levels
It only affects objects with large mass
It can be easily counteracted by lifting objects
It does not hold galaxies together
The weak force
The weak force, also called the weak nuclear interaction, is responsible for particle decay. This is the literal change of one type of subatomic particle into another. So, for example, a neutrino that strays close to a neutron can turn the neutron into a proton while the neutrino becomes an electron.
Physicists describe this interaction through the exchange of force-carrying particles called bosons. Specific kinds of bosons are responsible for the weak force, electromagnetic force and strong force. In the weak force, the bosons are charged particles called W and Z bosons. When subatomic particles such as protons, neutrons and electrons come within 10^-18 meters, or 0.1% of the diameter of a proton, of one another, they can exchange these bosons. As a result, the subatomic particles decay into new particles, according to Georgia State University's HyperPhysics website.
The weak force is critical for the nuclear fusion reactions that power the sun and produce the energy needed for most life forms here on Earth. It's also why archaeologists can use carbon-14 to date ancient bone, wood and other formerly living artifacts. Carbon-14 has six protons and eight neutrons; one of those neutrons decays into a proton to make nitrogen-14, which has seven protons and seven neutrons. This decay happens at a predictable rate, allowing scientists to determine how old such artifacts are.
What is the weak force responsible for?
Particle decay
Nuclear fusion
Electromagnetic interactions
Gravitational pull
Which particles are exchanged in the weak force interaction?
W and Z bosons
Photons
Gluons
Neutrinos
How does the weak force contribute to carbon dating?
By causing neutron decay in carbon-14
By stabilizing carbon-14
By converting carbon-14 to carbon-12
By increasing the half-life of carbon-14
What happens when a neutrino comes close to a neutron?
The neutron turns into a proton
The neutron remains unchanged
The neutron turns into an electron
The neutron turns into a photon
Electromagnetic force
The electromagnetic force, also called the Lorentz force, acts between charged particles, like negatively charged electrons and positively charged protons. Opposite charges attract one another, while like charges repel. The greater the charge, the greater the force. And much like gravity, this force can be felt from an infinite distance (although the force would be very, very small at that distance).
As its name indicates, the electromagnetic force consists of two parts: the electric force and the magnetic force. At first, physicists described these forces as separate from one another, but researchers later realized that the two are components of the same force.
The electric component acts between charged particles whether they're moving or stationary, creating a field by which the charges can influence each other. But once set into motion, those charged particles begin to display the second component, the magnetic force. The particles create a magnetic field around them as they move. So when electrons zoom through a wire to charge your computer or phone or turn on your TV, for example, the wire becomes magnetic.
Electromagnetic forces are transferred between charged particles through the exchange of massless, force-carrying bosons called photons, which are also the particle components of light. The force-carrying photons that swap between charged particles, however, are a different manifestation of photons. They are virtual and undetectable, even though they are technically the same particles as the real and detectable version, according to the University of Tennessee, Knoxville.
The electromagnetic force is responsible for some of the most commonly experienced phenomena: friction, elasticity, the normal force and the force holding solids together in a given shape. It's even responsible for the drag that birds, planes and even Superman experience while flying. These actions can occur because of charged (or neutralized) particles interacting with one another. The normal force that keeps a book on top of a table (instead of gravity pulling the book through to the ground), for example, is a consequence of electrons in the table's atoms repelling electrons in the book's atoms.
What is another name for the electromagnetic force?
Lorentz force
Gravitational force
Nuclear force
Coulomb force
What happens when like charges interact according to the electromagnetic force?
They repel each other
They attract each other
They neutralize each other
They have no effect on each other
What are the two components of the electromagnetic force?
Electric force and magnetic force
Gravitational force and nuclear force
Strong force and weak force
Centripetal force and centrifugal force
How are electromagnetic forces transferred between charged particles?
Through the exchange of photons
Through the exchange of electrons
Through the exchange of protons
Through the exchange of neutrons
The strong nuclear force
The strong nuclear force, also called the strong nuclear interaction, is the strongest of the four fundamental forces of nature. It's 6 thousand trillion trillion trillion (that’s 39 zeroes after 6!) times stronger than the force of gravity, according to the HyperPhysics website. And that's because it binds the fundamental particles of matter together to form larger particles. It holds together the quarks that make up protons and neutrons, and part of the strong force also keeps the protons and neutrons of an atom's nucleus together.
Much like the weak force, the strong force operates only when subatomic particles are extremely close to one another. They have to be somewhere within 10^-15 meters from each other, or roughly within the diameter of a proton.
The strong force is odd, though, because unlike any of the other fundamental forces, it gets weaker as subatomic particles move closer together. It actually reaches maximum strength when the particles are farthest away from each other, according to Fermilab. Once within range, massless charged bosons called gluons transmit the strong force between quarks and keep them "glued" together. A tiny fraction of the strong force called the residual strong force acts between protons and neutrons. Protons in the nucleus repel one another because of their similar charge, but the residual strong force can overcome this repulsion, so the particles stay bound in an atom's nucleus.
What is the strong nuclear force also known as?
Strong nuclear interaction
Weak nuclear interaction
Electromagnetic force
Gravitational force
How much stronger is the strong nuclear force compared to gravity?
6 thousand trillion trillion trillion times
6 million times
6 billion times
6 trillion times
What particles does the strong nuclear force bind together?
Quarks
Electrons
Photons
Neutrinos
What is the range within which the strong force operates?
10^-15 meters
10^-10 meters
10^-5 meters
10^-20 meters
