What is the relationship between light and space?

In summary: But this traditional way of measuring distance is not the only way to do it.There are other ways to measure length, and one of these is to measure it along a curve in space-time. If you take a flat piece of paper and draw a straight line on it, then the distance between two points on the paper is the length of the line between those points. But if you want to measure the distance between two points on a curved piece of paper, you have to determine the arc length between those points.This is a problem because the arc length between two points on a curved piece of paper is
  • #1
Seminole Boy
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What is light doing to make us believe that space is boundless but also finite (if I have Einstein's thinking right)?

There's something tricky going on here.

Are there points (coordinates) in space that are not reached by light?
 
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  • #2
There is no reason to believe that space is finite. It might be, but it could be infinite as well.
There are good arguments to believe that space is boundless - space looks the same in all directions (in every part we can observe), and a bound would be a special region in space with strange effects.

Are there points (coordinates) in space that are not reached by light?
Every part can be reached by light emitted nearby. There are parts of space we can never reach with light sent towards them, as they are too far away and space is expanding too quickly in between.
 
  • #3
MFB:

So, yes, I see where you said that these parts of space are already far away, but your "space is expanding too quickly in between" seems to suggest that space is expanding faster than the speed of light. Please do explain further.
 
  • #4
seems to suggest that space is expanding faster than the speed of light.
The distance between us and objects far away is increasing faster than the speed of light, right*.
This is not a problem - relativity limits the speed of objects in space, not the expansion of space itself.

*strictly speaking, there is not just one unique way to define those distances - you can choose different coordinate systems, where this is not true.
 
  • #5
Are there points (coordinates) in space that are not reached by light?

So far as we know, relic radiation, that is electromagnetic radiation [light]from the big bang is everywhere in our universe. It's wavelength is getting longer as distances expand and so it is getting weaker...longer wavelength means less energy. It started out close to 3,000 K and is now under 3 degrees K.

So in the far distant future the universe will be cold, dark, dead...nothing will be happening if the expansion we believe exists continues as we believe it will...forever...
 
  • #6
seems to suggest that space is expanding faster than the speed of light.

In the sense that light from beyond about 16 billion light years distance will never reach us, yes.
 
  • #7
Seminole Boy said:
MFB:

So, yes, I see where you said that these parts of space are already far away, but your "space is expanding too quickly in between" seems to suggest that space is expanding faster than the speed of light. Please do explain further.

To elaborate a little bit on what has been said already:

Expansion is measured by a RATE, not a speed or velocity. What this means is that if you take a volume of space and choose any number of points within it, every point will get further away from every other point over time. For example, we could say that it takes X amount of time for any points within a volume of space to get twice as far away from each other. However we usually choose a point away from us and, knowing this expansion rate, say that any object at that point is receding from us at a given velocity.

For the universe, expansion results in an increase in the recession velocity of objects by about 67 km/s for every megaparsec in distance away from an observer. IE, an object at one megaparsec, which is 1 million parsecs, or about 3.26 million light-years, will be receding from us at about 67 km/s. Increase the distance to 2 megaparsecs and the recession velocity increases to 134 km/s. At 10 megaparsecs it's 670 km/s.

Now, light travels at about 300,000 km/s. That means that any object that at a distance greater than about 4500 megaparsecs, or about 14 billion light-years, is receding from us at a velocity GREATER than c. This does NOT violate the rule that nothing can travel faster than light. Why? Because that rule only applies to Special Relativity, not to General Relativity. GR allows the geometry of spacetime to cause objects to move away at ANY velocity. This is commonly explained as "Nothing can move THROUGH space faster than c, but expansion causes space itself to carry objects away".
 
  • #8
... seems to suggest that space is expanding faster than the speed of light. Please do explain further.

That's a difficult concept to wrap your mind around. The following complements Drakkith's post and is not intended to refute his explanation.

In the old thread #162727 in these forums,

There is a wonderful post by pervect, #90 about different models providing superluminal or sub luminal speeds, and clarifies for ‘non experts’ a difficulty of interpreting ‘distance’ in cosmology: [and hence velocity, energy,etc]

Measuring cosmological distance [including Hubble distance] includes the issue of along “what curve” to measure length. In the usual notion of distance, one separates space-time into space and time and then measures the distance over some hypersurface of constant [fixed, instantaneous] time.[In Minkowski space, such a ’curve’ is a straight line. [SEE the Wikipedia ‘metric distance illustration, page 45 in these notes] Unfortunately, the split of space-time into space and time is in general arbitrary and depends on the choice of coordinates.

The usual notion of distance in cosmology (“proper distance” measured at an instantaneous fixed and uniform cosmological time) defined in this manner (measuring the distance along a curve of constant cosmological time) does not actually measure the distance along a straight line (or the equivalent of a straight line in a curved space-time, a space-like geodesic). This is the convention used in Hubble Distance where v =HD.

A curve of constant cosmological time [along which we would like to measure a proper distance’] connecting two points in a FRW universe is not a “straight line”, i.e. it is not a geodesic [but it is the great circle curve in the balloon analogy].
Further, it turns out you can visualize 'expansion' via the SCALE FACTOR a[t] which results from the FLRW cosmological model, selected parameters, and the Einstein Field Equations.
Just visualize the scale factor a[t] as a coordinate distance between a pair of space time points.
For example, the scale factor for a matter-dominated universe, {an approximate expression, not exactly Lambda CDM} goes as

a(t) = (t/to)2/3 so as time t grows arbitrarily large, so does a[t]. This means separation distances grow faster than lightspeed...stuff becomes 'superluminal'...

[This is NOT a typical d = v[t] type measure so common in flat space.]

Leonard Susskind derives such expression in 'Youtube Susskind Cosmology' lecture #3...but it is awfully slow and that one lecture about 2 hours...
 
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Related to What is the relationship between light and space?

1. What is light?

Light is a form of electromagnetic radiation that is visible to the human eye. It is made up of particles called photons that travel in waves at a constant speed of approximately 299,792,458 meters per second.

2. How does light travel through space?

Light travels through space in straight lines at a constant speed until it reaches an object or is absorbed by a material. This is known as the law of rectilinear propagation.

3. How does light interact with space?

Light can interact with space in a variety of ways. It can be absorbed, reflected, or refracted by different objects and materials. It can also be affected by gravity, which can cause it to bend or warp.

4. How does light impact our understanding of space?

Light is a crucial tool for scientists to study and understand space. It allows us to observe distant objects and gather information about their composition, movement, and other characteristics. Without light, our understanding of space would be limited.

5. What is the relationship between light and the expansion of space?

The expansion of space is a phenomenon that describes the increasing distance between galaxies and other celestial objects. Light plays a crucial role in this process as it is the only way we can observe and measure the expansion of space. As the universe expands, the light from distant objects is stretched, causing it to appear redder, known as redshift.

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