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I am looking for a bit of help, I need to know the flash duration of the safari lights at different outputs and configuration. if someone can give me this information I would be eternally grateful.
It's fairly complicated, with the flash duration varying dependent on both the power setting and the choice of output socket used.
On test, it produced what could be described as equivalent shutter speed figures (which are similar to t.1 times) What this means is that these figures are pretty much what you would get, in terms of action stopping potential, at similar shutter speed used with continuous lighting. These figures are probably more meaningful than either t.1 or t.5 times.
At full power (600Ws) from socket A the equivalent shutter speed is about 1/700th.
At minimum power (12.5Ws) from socket B the equivalent shutter speed is about 1/900th.
At various other settings, it ranged from around 1/500th - 1/1000th.
Garry might be worth clarifying those specs relate to the Classic and the Li-on is faster![]()
I always thought the t-values were integrals, i.e. t.5 was 50% of the energy put out. Not correct?Yes, pretty much Garry.
There's not really a problem getting incremental shutter speeds between full stop settings. I have the full sequences at one third stop increments, though they were not all published in the magazine because of space limitations.
The real problem is that making an assessment of how effective flash durations compare to shutter speeds is at least partly subjective due to the way flash actually works. You have to make a judgement on what 'it looks most similar to' in terms of shutter speeds.
In general terms, shutter speeds take a slice of time, and that's it - with sharp start and cut-off points. IGBT flash (hot-shoe guns) effectively works in much the same way, at least at lower power settings.
But studio heads are different. The total flash duration is always quite long, something like 1/100-1/200sec or thereabouts from start to complete extinction. But during that time, the brightness rises very quickly on firing to a peak, and then falls away much more gradually.
It's the duration and height of that peak that gives the action stopping. T.5 times measure peak duration (it's the length of time the flash stays above 50% brightness) but ignore the relative height. Personally, I think something like t.3 would be more realistic, but even that doesn't take into account the effect of the lower peak that occurs at lower power settings.
What we really need, and I've discussed this with Garry before, is something like a percentage peak time multiplied by the height of the peak above a certain threshold, but I don't see the industry making too many moves in that direction, because t.5 is pretty much universal and it tends to flatter their products. Not helped by the fact that some of the lesser brands appear to pluck their numbers from thin air LOL
I always thought the t-values were integrals, i.e. t.5 was 50% of the energy put out. Not correct?
Thanks for that, the diagramme makes it clear. If manufacturers stick to the t.5 figure, integrals would make more sense for comparison.No, though I guess the two would be very similar, but not quite. See diagram on page 10 of this link http://www.broncolor.com/fileadmin/pdf/broncolor/products/System_Catalogue/BRN_SYS_2011_LOW_ENG.pdf
It shows t.5 and t.1 times clearly, and also has a somewhat stylised indication (ie exagerated) of how colour changes.
Not shown on that diagram is how IGBT flash adjusts output, which is to always fire at full power and then cut off the pulse sharply once enough light has been delivered. That effectively cuts the duration in half with every stop reduction, ending up with incredibly short times like 1/40,000 sec at lowest settings.
Studio heads are different in that for lower powers the capacitors just dump a lower output/brightness. Therefore the total flash duration doesn't change much, but the peak is much lower.
Hope that makes sense![]()
Basically, manufacturers do stick to the t.5 figure - but as you can see from the chart, or from any other oscilloscope trace, the flash doesn't start life at full power, it takes a (short) time to reach full height, which means that integrals can't work in absolute terms.Thanks for that, the diagramme makes it clear. If manufacturers stick to the t.5 figure, integrals would make more sense for comparison.