Are astronomers waiting to see something in an image from a gravitational lens that they've already seen in an adjacent image? Unicorn Meta Zoo #1: Why another podcast? Announcing the arrival of Valued Associate #679: Cesar ManaraDoes gravitational lensing provide time evolution information?Examples of radio correlations over times much longer than interferometric baselines?What percent of planets are in the position that they could be viewed edge-on from Earth? (and thus able to undergo transits)Telescope in Sun's gravity lens focus - pointing, gain, distortionsWith gravitational lensing, is it possible to mathematically compute the correct image of the galaxy that is being distorted?Does CIBER Experiment from Caltech suggest that there can be lots of stars which are not in any galaxy?Could the Earth use gravitational lensing / bending of light to see it's own bottom?Is cosmic shear generally agreed to have been observed?Making sense of the lomb-scargle periodogramWithin a given image of a multiple-image producing gravitational lens, does Fermat's principle apply?

Married in secret, can marital status in passport be changed at a later date?

Retract an already submitted recommendation letter (written for an undergrad student)

How long can a nation maintain a technological edge over the rest of the world?

Writing a T-SQL stored procedure to receive 4 numbers and insert them into a table

Does using the Inspiration rules for character defects encourage My Guy Syndrome?

AI positioning circles within an arc at equal distances and heights

Are these square matrices always diagonalisable?

Function on the set of limit countable ordinals

Why did Israel vote against lifting the American embargo on Cuba?

How would you suggest I follow up with coworkers about our deadline that's today?

Is a self contained air-bullet cartridge feasible?

Raising a bilingual kid. When should we introduce the majority language?

How can I wire a 9-position switch so that each position turns on one more LED than the one before?

How to dissolve shared line segments together in QGIS?

yticklabels on the right side of yaxis

What was Apollo 13's "Little Jolt" after MECO?

Why isn't everyone flabbergasted about Bran's "gift"?

How to keep bees out of canned beverages?

Can gravitational waves pass through a black hole?

Book with legacy programming code on a space ship that the main character hacks to escape

Is it acceptable to use working hours to read general interest books?

Putting Ant-Man on house arrest

What's the difference between using dependency injection with a container and using a service locator?

Guitar neck keeps tilting down



Are astronomers waiting to see something in an image from a gravitational lens that they've already seen in an adjacent image?



Unicorn Meta Zoo #1: Why another podcast?
Announcing the arrival of Valued Associate #679: Cesar ManaraDoes gravitational lensing provide time evolution information?Examples of radio correlations over times much longer than interferometric baselines?What percent of planets are in the position that they could be viewed edge-on from Earth? (and thus able to undergo transits)Telescope in Sun's gravity lens focus - pointing, gain, distortionsWith gravitational lensing, is it possible to mathematically compute the correct image of the galaxy that is being distorted?Does CIBER Experiment from Caltech suggest that there can be lots of stars which are not in any galaxy?Could the Earth use gravitational lensing / bending of light to see it's own bottom?Is cosmic shear generally agreed to have been observed?Making sense of the lomb-scargle periodogramWithin a given image of a multiple-image producing gravitational lens, does Fermat's principle apply?










11












$begingroup$


@RobJeffries' answer to the question Does gravitational lensing provide time evolution information? points out that there can be a substantial different in arrival times of light from a given source seen in different images from a gravitational lens.



The linked paper there shows "$Delta t$" values of the order of 30 days, but it is hard for me to understand what the actual observable is.



What I'm asking for here is (ideally) if there is a well defined event that a lay person could understand, something blinking or disappearing or brightening substantially that has already been seen in one image produced by a gravitational lens that has not yet been seen in one of the other images, and is expected to be seen in the (presumably near) future.



If something like this does not exist, a substitute could be a case where this has happened, and the second sighting of the same event was predicted, waited for, and observed on time.



I have no idea if this happens all the time, or has never happened yet.










share|improve this question











$endgroup$







  • 1




    $begingroup$
    FWIW, this kind of thing is a bit easier in radio astronomy. I've been looking for a good relevant article, but without success, but I've only been looking for stuff on HTML pages, not PDF links. I read about it years ago, with the astronomer comparing tapes of radio data, with a time delay of several months, but I can't remember where I read it.
    $endgroup$
    – PM 2Ring
    Apr 5 at 10:59






  • 2




    $begingroup$
    I think the observable here is that you cross-correlate time-series observations, usually at radio wavelengths, to determine the delay. The "events" are just the general variability of the background quasar/AGN. I think there is an example where a type Ia supernova was seen in >1 image at different times.
    $endgroup$
    – Rob Jeffries
    Apr 5 at 11:09










  • $begingroup$
    @PM2Ring re the typo, next time feel free to just make an edit. It's pretty common in the more civil SE sties for people to edit each other's posts I think. As for radio, I'm not so interested in time correlations as I am "...a well defined event that a lay person could understand, something blinking or disappearing or brightening substantially..."
    $endgroup$
    – uhoh
    Apr 5 at 11:17











  • $begingroup$
    @RobJeffries ditto re "event". So a supernova would exactly fit the bill!
    $endgroup$
    – uhoh
    Apr 5 at 11:21







  • 1




    $begingroup$
    Optical observations may be easier for a lay person to relate to, but radio gives you a much more useful fingerprint / barcode. Bear in mind that the different paths mean that the signals experience different filtering & distortions, and the source isn't a point, so the images aren't of exactly the same thing, so it can be quite hard to even verify that they actually come from the same source.
    $endgroup$
    – PM 2Ring
    Apr 5 at 11:48















11












$begingroup$


@RobJeffries' answer to the question Does gravitational lensing provide time evolution information? points out that there can be a substantial different in arrival times of light from a given source seen in different images from a gravitational lens.



The linked paper there shows "$Delta t$" values of the order of 30 days, but it is hard for me to understand what the actual observable is.



What I'm asking for here is (ideally) if there is a well defined event that a lay person could understand, something blinking or disappearing or brightening substantially that has already been seen in one image produced by a gravitational lens that has not yet been seen in one of the other images, and is expected to be seen in the (presumably near) future.



If something like this does not exist, a substitute could be a case where this has happened, and the second sighting of the same event was predicted, waited for, and observed on time.



I have no idea if this happens all the time, or has never happened yet.










share|improve this question











$endgroup$







  • 1




    $begingroup$
    FWIW, this kind of thing is a bit easier in radio astronomy. I've been looking for a good relevant article, but without success, but I've only been looking for stuff on HTML pages, not PDF links. I read about it years ago, with the astronomer comparing tapes of radio data, with a time delay of several months, but I can't remember where I read it.
    $endgroup$
    – PM 2Ring
    Apr 5 at 10:59






  • 2




    $begingroup$
    I think the observable here is that you cross-correlate time-series observations, usually at radio wavelengths, to determine the delay. The "events" are just the general variability of the background quasar/AGN. I think there is an example where a type Ia supernova was seen in >1 image at different times.
    $endgroup$
    – Rob Jeffries
    Apr 5 at 11:09










  • $begingroup$
    @PM2Ring re the typo, next time feel free to just make an edit. It's pretty common in the more civil SE sties for people to edit each other's posts I think. As for radio, I'm not so interested in time correlations as I am "...a well defined event that a lay person could understand, something blinking or disappearing or brightening substantially..."
    $endgroup$
    – uhoh
    Apr 5 at 11:17











  • $begingroup$
    @RobJeffries ditto re "event". So a supernova would exactly fit the bill!
    $endgroup$
    – uhoh
    Apr 5 at 11:21







  • 1




    $begingroup$
    Optical observations may be easier for a lay person to relate to, but radio gives you a much more useful fingerprint / barcode. Bear in mind that the different paths mean that the signals experience different filtering & distortions, and the source isn't a point, so the images aren't of exactly the same thing, so it can be quite hard to even verify that they actually come from the same source.
    $endgroup$
    – PM 2Ring
    Apr 5 at 11:48













11












11








11


1



$begingroup$


@RobJeffries' answer to the question Does gravitational lensing provide time evolution information? points out that there can be a substantial different in arrival times of light from a given source seen in different images from a gravitational lens.



The linked paper there shows "$Delta t$" values of the order of 30 days, but it is hard for me to understand what the actual observable is.



What I'm asking for here is (ideally) if there is a well defined event that a lay person could understand, something blinking or disappearing or brightening substantially that has already been seen in one image produced by a gravitational lens that has not yet been seen in one of the other images, and is expected to be seen in the (presumably near) future.



If something like this does not exist, a substitute could be a case where this has happened, and the second sighting of the same event was predicted, waited for, and observed on time.



I have no idea if this happens all the time, or has never happened yet.










share|improve this question











$endgroup$




@RobJeffries' answer to the question Does gravitational lensing provide time evolution information? points out that there can be a substantial different in arrival times of light from a given source seen in different images from a gravitational lens.



The linked paper there shows "$Delta t$" values of the order of 30 days, but it is hard for me to understand what the actual observable is.



What I'm asking for here is (ideally) if there is a well defined event that a lay person could understand, something blinking or disappearing or brightening substantially that has already been seen in one image produced by a gravitational lens that has not yet been seen in one of the other images, and is expected to be seen in the (presumably near) future.



If something like this does not exist, a substitute could be a case where this has happened, and the second sighting of the same event was predicted, waited for, and observed on time.



I have no idea if this happens all the time, or has never happened yet.







observational-astronomy gravitational-lensing






share|improve this question















share|improve this question













share|improve this question




share|improve this question








edited Apr 5 at 11:07







uhoh

















asked Apr 5 at 10:20









uhohuhoh

7,74322275




7,74322275







  • 1




    $begingroup$
    FWIW, this kind of thing is a bit easier in radio astronomy. I've been looking for a good relevant article, but without success, but I've only been looking for stuff on HTML pages, not PDF links. I read about it years ago, with the astronomer comparing tapes of radio data, with a time delay of several months, but I can't remember where I read it.
    $endgroup$
    – PM 2Ring
    Apr 5 at 10:59






  • 2




    $begingroup$
    I think the observable here is that you cross-correlate time-series observations, usually at radio wavelengths, to determine the delay. The "events" are just the general variability of the background quasar/AGN. I think there is an example where a type Ia supernova was seen in >1 image at different times.
    $endgroup$
    – Rob Jeffries
    Apr 5 at 11:09










  • $begingroup$
    @PM2Ring re the typo, next time feel free to just make an edit. It's pretty common in the more civil SE sties for people to edit each other's posts I think. As for radio, I'm not so interested in time correlations as I am "...a well defined event that a lay person could understand, something blinking or disappearing or brightening substantially..."
    $endgroup$
    – uhoh
    Apr 5 at 11:17











  • $begingroup$
    @RobJeffries ditto re "event". So a supernova would exactly fit the bill!
    $endgroup$
    – uhoh
    Apr 5 at 11:21







  • 1




    $begingroup$
    Optical observations may be easier for a lay person to relate to, but radio gives you a much more useful fingerprint / barcode. Bear in mind that the different paths mean that the signals experience different filtering & distortions, and the source isn't a point, so the images aren't of exactly the same thing, so it can be quite hard to even verify that they actually come from the same source.
    $endgroup$
    – PM 2Ring
    Apr 5 at 11:48












  • 1




    $begingroup$
    FWIW, this kind of thing is a bit easier in radio astronomy. I've been looking for a good relevant article, but without success, but I've only been looking for stuff on HTML pages, not PDF links. I read about it years ago, with the astronomer comparing tapes of radio data, with a time delay of several months, but I can't remember where I read it.
    $endgroup$
    – PM 2Ring
    Apr 5 at 10:59






  • 2




    $begingroup$
    I think the observable here is that you cross-correlate time-series observations, usually at radio wavelengths, to determine the delay. The "events" are just the general variability of the background quasar/AGN. I think there is an example where a type Ia supernova was seen in >1 image at different times.
    $endgroup$
    – Rob Jeffries
    Apr 5 at 11:09










  • $begingroup$
    @PM2Ring re the typo, next time feel free to just make an edit. It's pretty common in the more civil SE sties for people to edit each other's posts I think. As for radio, I'm not so interested in time correlations as I am "...a well defined event that a lay person could understand, something blinking or disappearing or brightening substantially..."
    $endgroup$
    – uhoh
    Apr 5 at 11:17











  • $begingroup$
    @RobJeffries ditto re "event". So a supernova would exactly fit the bill!
    $endgroup$
    – uhoh
    Apr 5 at 11:21







  • 1




    $begingroup$
    Optical observations may be easier for a lay person to relate to, but radio gives you a much more useful fingerprint / barcode. Bear in mind that the different paths mean that the signals experience different filtering & distortions, and the source isn't a point, so the images aren't of exactly the same thing, so it can be quite hard to even verify that they actually come from the same source.
    $endgroup$
    – PM 2Ring
    Apr 5 at 11:48







1




1




$begingroup$
FWIW, this kind of thing is a bit easier in radio astronomy. I've been looking for a good relevant article, but without success, but I've only been looking for stuff on HTML pages, not PDF links. I read about it years ago, with the astronomer comparing tapes of radio data, with a time delay of several months, but I can't remember where I read it.
$endgroup$
– PM 2Ring
Apr 5 at 10:59




$begingroup$
FWIW, this kind of thing is a bit easier in radio astronomy. I've been looking for a good relevant article, but without success, but I've only been looking for stuff on HTML pages, not PDF links. I read about it years ago, with the astronomer comparing tapes of radio data, with a time delay of several months, but I can't remember where I read it.
$endgroup$
– PM 2Ring
Apr 5 at 10:59




2




2




$begingroup$
I think the observable here is that you cross-correlate time-series observations, usually at radio wavelengths, to determine the delay. The "events" are just the general variability of the background quasar/AGN. I think there is an example where a type Ia supernova was seen in >1 image at different times.
$endgroup$
– Rob Jeffries
Apr 5 at 11:09




$begingroup$
I think the observable here is that you cross-correlate time-series observations, usually at radio wavelengths, to determine the delay. The "events" are just the general variability of the background quasar/AGN. I think there is an example where a type Ia supernova was seen in >1 image at different times.
$endgroup$
– Rob Jeffries
Apr 5 at 11:09












$begingroup$
@PM2Ring re the typo, next time feel free to just make an edit. It's pretty common in the more civil SE sties for people to edit each other's posts I think. As for radio, I'm not so interested in time correlations as I am "...a well defined event that a lay person could understand, something blinking or disappearing or brightening substantially..."
$endgroup$
– uhoh
Apr 5 at 11:17





$begingroup$
@PM2Ring re the typo, next time feel free to just make an edit. It's pretty common in the more civil SE sties for people to edit each other's posts I think. As for radio, I'm not so interested in time correlations as I am "...a well defined event that a lay person could understand, something blinking or disappearing or brightening substantially..."
$endgroup$
– uhoh
Apr 5 at 11:17













$begingroup$
@RobJeffries ditto re "event". So a supernova would exactly fit the bill!
$endgroup$
– uhoh
Apr 5 at 11:21





$begingroup$
@RobJeffries ditto re "event". So a supernova would exactly fit the bill!
$endgroup$
– uhoh
Apr 5 at 11:21





1




1




$begingroup$
Optical observations may be easier for a lay person to relate to, but radio gives you a much more useful fingerprint / barcode. Bear in mind that the different paths mean that the signals experience different filtering & distortions, and the source isn't a point, so the images aren't of exactly the same thing, so it can be quite hard to even verify that they actually come from the same source.
$endgroup$
– PM 2Ring
Apr 5 at 11:48




$begingroup$
Optical observations may be easier for a lay person to relate to, but radio gives you a much more useful fingerprint / barcode. Bear in mind that the different paths mean that the signals experience different filtering & distortions, and the source isn't a point, so the images aren't of exactly the same thing, so it can be quite hard to even verify that they actually come from the same source.
$endgroup$
– PM 2Ring
Apr 5 at 11:48










1 Answer
1






active

oldest

votes


















15












$begingroup$

What you do is cross-correlate the observational datasets for the multiple sources and look for the "lag" that maximises the cross-correlation function. Generally speaking, the "events" are not really individual flares or dips, but the summation of all the time variability that is seen.



The variability in question usually comes about from the central portions of the "central engine" of a quasar or active galactic nucleus. For a supermassive black hole at the centre of a quasar, the innermost stable circular orbit is at 3 times the Schwarzschild radius ($= 6GM_rm BH/c^2$). This basically defines the inner edge of any accretion disk and if we divide this by $c$ then we get a a timescale for the most rapid variations in luminosity output. So this is very nearly the same formula as presented in the linked question
$$tau sim 3times 10^-5 left(fracM_rm BHM_odotright) rm sec, ,$$
except that the supermassive black holes are much less massive than entire foreground lensing galaxies (usually). This the timescale of variation is much shorter than the potential delay time due to gravitational lensing. It is this difference in timescales that means there is plenty of "structure" within the light curves that can be locked onto by the cross-correlation.



There is a notable example however of a type Ia supernova being seen in a multiply lensed image (Goobar et al. (2017), but the predicted delay in the light curves was $<35$ hours and the light curves are not good enough to measure this. This technique is an active area of research and a major bit of science that is exprected to be achieved by the Large Synoptic Survey Telescope (Huber et al. 2019).



Finally, the thing you are really looking for has happened in terms of SN "Refsdal". This was a type II supernova seen to "go off" in a multiply imaged galaxy, seen through/around a galaxy cluster. A prediction was made, based on a model for the cluster gravitational potential, that another image ought to appear within a year or two. This further image was then detected by Kelly et al. (2016) in a paper entitled "Deja vu all over again".




From Kelly et al. (2016) ("Deja vu all over again"). See "SX" in the third panel:



MACS J1149.5+2223 galaxy-cluster field taken with HST




Figure 1. Coadded WFC3-IR F125W and F160W exposures of the MACS J1149.5+2223 galaxy-cluster field taken with HST. The top panel shows images acquired in 2011 before the SN appeared in S1–S4 or SX. The middle panel displays images taken on 2015 April 20 when the four images forming the Einstein cross are close to maximum brightness, but no flux is evident at the position of SX. The bottom panel shows images taken on 2015 December 11 which reveal the new image SX of SN Refsdal. Images S1–S3 in the Einstein cross configuration remain visible in the 2015 December 11 coadded image (see Kelly et al. 2015a and Rodney et al. 2015b for analysis of the SN light curve).



Kelly, P. L., Brammer, G., Selsing, J., et al. 2015a, ApJ, submitted
(arXiv:1512.09093)



Rodney, S. A., Strolger, L.-G., Kelly, P. L., et al. 2015b, ApJ, in press
(arXiv:1512.05734)







share|improve this answer











$endgroup$












  • $begingroup$
    I've added Figure 1 from "Deja vu all over again". I hope you don't mind, it's just so cool!
    $endgroup$
    – uhoh
    Apr 5 at 11:55






  • 1




    $begingroup$
    Named after the gravitational lensing pioneer Sjur Refsdal.
    $endgroup$
    – PM 2Ring
    Apr 5 at 11:59











Your Answer








StackExchange.ready(function()
var channelOptions =
tags: "".split(" "),
id: "514"
;
initTagRenderer("".split(" "), "".split(" "), channelOptions);

StackExchange.using("externalEditor", function()
// Have to fire editor after snippets, if snippets enabled
if (StackExchange.settings.snippets.snippetsEnabled)
StackExchange.using("snippets", function()
createEditor();
);

else
createEditor();

);

function createEditor()
StackExchange.prepareEditor(
heartbeatType: 'answer',
autoActivateHeartbeat: false,
convertImagesToLinks: false,
noModals: true,
showLowRepImageUploadWarning: true,
reputationToPostImages: null,
bindNavPrevention: true,
postfix: "",
imageUploader:
brandingHtml: "Powered by u003ca class="icon-imgur-white" href="https://imgur.com/"u003eu003c/au003e",
contentPolicyHtml: "User contributions licensed under u003ca href="https://creativecommons.org/licenses/by-sa/3.0/"u003ecc by-sa 3.0 with attribution requiredu003c/au003e u003ca href="https://stackoverflow.com/legal/content-policy"u003e(content policy)u003c/au003e",
allowUrls: true
,
noCode: true, onDemand: true,
discardSelector: ".discard-answer"
,immediatelyShowMarkdownHelp:true
);



);













draft saved

draft discarded


















StackExchange.ready(
function ()
StackExchange.openid.initPostLogin('.new-post-login', 'https%3a%2f%2fastronomy.stackexchange.com%2fquestions%2f30243%2fare-astronomers-waiting-to-see-something-in-an-image-from-a-gravitational-lens-t%23new-answer', 'question_page');

);

Post as a guest















Required, but never shown

























1 Answer
1






active

oldest

votes








1 Answer
1






active

oldest

votes









active

oldest

votes






active

oldest

votes









15












$begingroup$

What you do is cross-correlate the observational datasets for the multiple sources and look for the "lag" that maximises the cross-correlation function. Generally speaking, the "events" are not really individual flares or dips, but the summation of all the time variability that is seen.



The variability in question usually comes about from the central portions of the "central engine" of a quasar or active galactic nucleus. For a supermassive black hole at the centre of a quasar, the innermost stable circular orbit is at 3 times the Schwarzschild radius ($= 6GM_rm BH/c^2$). This basically defines the inner edge of any accretion disk and if we divide this by $c$ then we get a a timescale for the most rapid variations in luminosity output. So this is very nearly the same formula as presented in the linked question
$$tau sim 3times 10^-5 left(fracM_rm BHM_odotright) rm sec, ,$$
except that the supermassive black holes are much less massive than entire foreground lensing galaxies (usually). This the timescale of variation is much shorter than the potential delay time due to gravitational lensing. It is this difference in timescales that means there is plenty of "structure" within the light curves that can be locked onto by the cross-correlation.



There is a notable example however of a type Ia supernova being seen in a multiply lensed image (Goobar et al. (2017), but the predicted delay in the light curves was $<35$ hours and the light curves are not good enough to measure this. This technique is an active area of research and a major bit of science that is exprected to be achieved by the Large Synoptic Survey Telescope (Huber et al. 2019).



Finally, the thing you are really looking for has happened in terms of SN "Refsdal". This was a type II supernova seen to "go off" in a multiply imaged galaxy, seen through/around a galaxy cluster. A prediction was made, based on a model for the cluster gravitational potential, that another image ought to appear within a year or two. This further image was then detected by Kelly et al. (2016) in a paper entitled "Deja vu all over again".




From Kelly et al. (2016) ("Deja vu all over again"). See "SX" in the third panel:



MACS J1149.5+2223 galaxy-cluster field taken with HST




Figure 1. Coadded WFC3-IR F125W and F160W exposures of the MACS J1149.5+2223 galaxy-cluster field taken with HST. The top panel shows images acquired in 2011 before the SN appeared in S1–S4 or SX. The middle panel displays images taken on 2015 April 20 when the four images forming the Einstein cross are close to maximum brightness, but no flux is evident at the position of SX. The bottom panel shows images taken on 2015 December 11 which reveal the new image SX of SN Refsdal. Images S1–S3 in the Einstein cross configuration remain visible in the 2015 December 11 coadded image (see Kelly et al. 2015a and Rodney et al. 2015b for analysis of the SN light curve).



Kelly, P. L., Brammer, G., Selsing, J., et al. 2015a, ApJ, submitted
(arXiv:1512.09093)



Rodney, S. A., Strolger, L.-G., Kelly, P. L., et al. 2015b, ApJ, in press
(arXiv:1512.05734)







share|improve this answer











$endgroup$












  • $begingroup$
    I've added Figure 1 from "Deja vu all over again". I hope you don't mind, it's just so cool!
    $endgroup$
    – uhoh
    Apr 5 at 11:55






  • 1




    $begingroup$
    Named after the gravitational lensing pioneer Sjur Refsdal.
    $endgroup$
    – PM 2Ring
    Apr 5 at 11:59















15












$begingroup$

What you do is cross-correlate the observational datasets for the multiple sources and look for the "lag" that maximises the cross-correlation function. Generally speaking, the "events" are not really individual flares or dips, but the summation of all the time variability that is seen.



The variability in question usually comes about from the central portions of the "central engine" of a quasar or active galactic nucleus. For a supermassive black hole at the centre of a quasar, the innermost stable circular orbit is at 3 times the Schwarzschild radius ($= 6GM_rm BH/c^2$). This basically defines the inner edge of any accretion disk and if we divide this by $c$ then we get a a timescale for the most rapid variations in luminosity output. So this is very nearly the same formula as presented in the linked question
$$tau sim 3times 10^-5 left(fracM_rm BHM_odotright) rm sec, ,$$
except that the supermassive black holes are much less massive than entire foreground lensing galaxies (usually). This the timescale of variation is much shorter than the potential delay time due to gravitational lensing. It is this difference in timescales that means there is plenty of "structure" within the light curves that can be locked onto by the cross-correlation.



There is a notable example however of a type Ia supernova being seen in a multiply lensed image (Goobar et al. (2017), but the predicted delay in the light curves was $<35$ hours and the light curves are not good enough to measure this. This technique is an active area of research and a major bit of science that is exprected to be achieved by the Large Synoptic Survey Telescope (Huber et al. 2019).



Finally, the thing you are really looking for has happened in terms of SN "Refsdal". This was a type II supernova seen to "go off" in a multiply imaged galaxy, seen through/around a galaxy cluster. A prediction was made, based on a model for the cluster gravitational potential, that another image ought to appear within a year or two. This further image was then detected by Kelly et al. (2016) in a paper entitled "Deja vu all over again".




From Kelly et al. (2016) ("Deja vu all over again"). See "SX" in the third panel:



MACS J1149.5+2223 galaxy-cluster field taken with HST




Figure 1. Coadded WFC3-IR F125W and F160W exposures of the MACS J1149.5+2223 galaxy-cluster field taken with HST. The top panel shows images acquired in 2011 before the SN appeared in S1–S4 or SX. The middle panel displays images taken on 2015 April 20 when the four images forming the Einstein cross are close to maximum brightness, but no flux is evident at the position of SX. The bottom panel shows images taken on 2015 December 11 which reveal the new image SX of SN Refsdal. Images S1–S3 in the Einstein cross configuration remain visible in the 2015 December 11 coadded image (see Kelly et al. 2015a and Rodney et al. 2015b for analysis of the SN light curve).



Kelly, P. L., Brammer, G., Selsing, J., et al. 2015a, ApJ, submitted
(arXiv:1512.09093)



Rodney, S. A., Strolger, L.-G., Kelly, P. L., et al. 2015b, ApJ, in press
(arXiv:1512.05734)







share|improve this answer











$endgroup$












  • $begingroup$
    I've added Figure 1 from "Deja vu all over again". I hope you don't mind, it's just so cool!
    $endgroup$
    – uhoh
    Apr 5 at 11:55






  • 1




    $begingroup$
    Named after the gravitational lensing pioneer Sjur Refsdal.
    $endgroup$
    – PM 2Ring
    Apr 5 at 11:59













15












15








15





$begingroup$

What you do is cross-correlate the observational datasets for the multiple sources and look for the "lag" that maximises the cross-correlation function. Generally speaking, the "events" are not really individual flares or dips, but the summation of all the time variability that is seen.



The variability in question usually comes about from the central portions of the "central engine" of a quasar or active galactic nucleus. For a supermassive black hole at the centre of a quasar, the innermost stable circular orbit is at 3 times the Schwarzschild radius ($= 6GM_rm BH/c^2$). This basically defines the inner edge of any accretion disk and if we divide this by $c$ then we get a a timescale for the most rapid variations in luminosity output. So this is very nearly the same formula as presented in the linked question
$$tau sim 3times 10^-5 left(fracM_rm BHM_odotright) rm sec, ,$$
except that the supermassive black holes are much less massive than entire foreground lensing galaxies (usually). This the timescale of variation is much shorter than the potential delay time due to gravitational lensing. It is this difference in timescales that means there is plenty of "structure" within the light curves that can be locked onto by the cross-correlation.



There is a notable example however of a type Ia supernova being seen in a multiply lensed image (Goobar et al. (2017), but the predicted delay in the light curves was $<35$ hours and the light curves are not good enough to measure this. This technique is an active area of research and a major bit of science that is exprected to be achieved by the Large Synoptic Survey Telescope (Huber et al. 2019).



Finally, the thing you are really looking for has happened in terms of SN "Refsdal". This was a type II supernova seen to "go off" in a multiply imaged galaxy, seen through/around a galaxy cluster. A prediction was made, based on a model for the cluster gravitational potential, that another image ought to appear within a year or two. This further image was then detected by Kelly et al. (2016) in a paper entitled "Deja vu all over again".




From Kelly et al. (2016) ("Deja vu all over again"). See "SX" in the third panel:



MACS J1149.5+2223 galaxy-cluster field taken with HST




Figure 1. Coadded WFC3-IR F125W and F160W exposures of the MACS J1149.5+2223 galaxy-cluster field taken with HST. The top panel shows images acquired in 2011 before the SN appeared in S1–S4 or SX. The middle panel displays images taken on 2015 April 20 when the four images forming the Einstein cross are close to maximum brightness, but no flux is evident at the position of SX. The bottom panel shows images taken on 2015 December 11 which reveal the new image SX of SN Refsdal. Images S1–S3 in the Einstein cross configuration remain visible in the 2015 December 11 coadded image (see Kelly et al. 2015a and Rodney et al. 2015b for analysis of the SN light curve).



Kelly, P. L., Brammer, G., Selsing, J., et al. 2015a, ApJ, submitted
(arXiv:1512.09093)



Rodney, S. A., Strolger, L.-G., Kelly, P. L., et al. 2015b, ApJ, in press
(arXiv:1512.05734)







share|improve this answer











$endgroup$



What you do is cross-correlate the observational datasets for the multiple sources and look for the "lag" that maximises the cross-correlation function. Generally speaking, the "events" are not really individual flares or dips, but the summation of all the time variability that is seen.



The variability in question usually comes about from the central portions of the "central engine" of a quasar or active galactic nucleus. For a supermassive black hole at the centre of a quasar, the innermost stable circular orbit is at 3 times the Schwarzschild radius ($= 6GM_rm BH/c^2$). This basically defines the inner edge of any accretion disk and if we divide this by $c$ then we get a a timescale for the most rapid variations in luminosity output. So this is very nearly the same formula as presented in the linked question
$$tau sim 3times 10^-5 left(fracM_rm BHM_odotright) rm sec, ,$$
except that the supermassive black holes are much less massive than entire foreground lensing galaxies (usually). This the timescale of variation is much shorter than the potential delay time due to gravitational lensing. It is this difference in timescales that means there is plenty of "structure" within the light curves that can be locked onto by the cross-correlation.



There is a notable example however of a type Ia supernova being seen in a multiply lensed image (Goobar et al. (2017), but the predicted delay in the light curves was $<35$ hours and the light curves are not good enough to measure this. This technique is an active area of research and a major bit of science that is exprected to be achieved by the Large Synoptic Survey Telescope (Huber et al. 2019).



Finally, the thing you are really looking for has happened in terms of SN "Refsdal". This was a type II supernova seen to "go off" in a multiply imaged galaxy, seen through/around a galaxy cluster. A prediction was made, based on a model for the cluster gravitational potential, that another image ought to appear within a year or two. This further image was then detected by Kelly et al. (2016) in a paper entitled "Deja vu all over again".




From Kelly et al. (2016) ("Deja vu all over again"). See "SX" in the third panel:



MACS J1149.5+2223 galaxy-cluster field taken with HST




Figure 1. Coadded WFC3-IR F125W and F160W exposures of the MACS J1149.5+2223 galaxy-cluster field taken with HST. The top panel shows images acquired in 2011 before the SN appeared in S1–S4 or SX. The middle panel displays images taken on 2015 April 20 when the four images forming the Einstein cross are close to maximum brightness, but no flux is evident at the position of SX. The bottom panel shows images taken on 2015 December 11 which reveal the new image SX of SN Refsdal. Images S1–S3 in the Einstein cross configuration remain visible in the 2015 December 11 coadded image (see Kelly et al. 2015a and Rodney et al. 2015b for analysis of the SN light curve).



Kelly, P. L., Brammer, G., Selsing, J., et al. 2015a, ApJ, submitted
(arXiv:1512.09093)



Rodney, S. A., Strolger, L.-G., Kelly, P. L., et al. 2015b, ApJ, in press
(arXiv:1512.05734)








share|improve this answer














share|improve this answer



share|improve this answer








edited Apr 5 at 11:54









uhoh

7,74322275




7,74322275










answered Apr 5 at 11:41









Rob JeffriesRob Jeffries

55.2k4114177




55.2k4114177











  • $begingroup$
    I've added Figure 1 from "Deja vu all over again". I hope you don't mind, it's just so cool!
    $endgroup$
    – uhoh
    Apr 5 at 11:55






  • 1




    $begingroup$
    Named after the gravitational lensing pioneer Sjur Refsdal.
    $endgroup$
    – PM 2Ring
    Apr 5 at 11:59
















  • $begingroup$
    I've added Figure 1 from "Deja vu all over again". I hope you don't mind, it's just so cool!
    $endgroup$
    – uhoh
    Apr 5 at 11:55






  • 1




    $begingroup$
    Named after the gravitational lensing pioneer Sjur Refsdal.
    $endgroup$
    – PM 2Ring
    Apr 5 at 11:59















$begingroup$
I've added Figure 1 from "Deja vu all over again". I hope you don't mind, it's just so cool!
$endgroup$
– uhoh
Apr 5 at 11:55




$begingroup$
I've added Figure 1 from "Deja vu all over again". I hope you don't mind, it's just so cool!
$endgroup$
– uhoh
Apr 5 at 11:55




1




1




$begingroup$
Named after the gravitational lensing pioneer Sjur Refsdal.
$endgroup$
– PM 2Ring
Apr 5 at 11:59




$begingroup$
Named after the gravitational lensing pioneer Sjur Refsdal.
$endgroup$
– PM 2Ring
Apr 5 at 11:59

















draft saved

draft discarded
















































Thanks for contributing an answer to Astronomy Stack Exchange!


  • Please be sure to answer the question. Provide details and share your research!

But avoid


  • Asking for help, clarification, or responding to other answers.

  • Making statements based on opinion; back them up with references or personal experience.

Use MathJax to format equations. MathJax reference.


To learn more, see our tips on writing great answers.




draft saved


draft discarded














StackExchange.ready(
function ()
StackExchange.openid.initPostLogin('.new-post-login', 'https%3a%2f%2fastronomy.stackexchange.com%2fquestions%2f30243%2fare-astronomers-waiting-to-see-something-in-an-image-from-a-gravitational-lens-t%23new-answer', 'question_page');

);

Post as a guest















Required, but never shown





















































Required, but never shown














Required, but never shown












Required, but never shown







Required, but never shown

































Required, but never shown














Required, but never shown












Required, but never shown







Required, but never shown







Popular posts from this blog

Adding axes to figuresAdding axes labels to LaTeX figuresLaTeX equivalent of ConTeXt buffersRotate a node but not its content: the case of the ellipse decorationHow to define the default vertical distance between nodes?TikZ scaling graphic and adjust node position and keep font sizeNumerical conditional within tikz keys?adding axes to shapesAlign axes across subfiguresAdding figures with a certain orderLine up nested tikz enviroments or how to get rid of themAdding axes labels to LaTeX figures

Luettelo Yhdysvaltain laivaston lentotukialuksista Lähteet | Navigointivalikko

Gary (muusikko) Sisällysluettelo Historia | Rockin' High | Lähteet | Aiheesta muualla | NavigointivalikkoInfobox OKTuomas "Gary" Keskinen Ancaran kitaristiksiProjekti Rockin' High