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I'm trying to do a little javascript trick to fade out a div, replace its content, and fade it back in. The .html event is replacing the content before the fadeOut is complete...

$("#products").fadeOut(500)
              .delay(600)
              .html($("#productPage" + pageNum).html())
              .fadeIn(500);

It appears that the .html() is not being delayed by the .delay() method.

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3  
.delay() only works on animation events, so .delay() out of that context will do absolutely nothing for you. Frustrating, I know. –  Jeff Rupert Aug 13 '10 at 1:25

2 Answers 2

up vote 29 down vote accepted

delay will work for your case when used with the queue like this:

$("#products").fadeOut(500)
    .delay(600)
    .queue(function(n) {
        $(this).html("hahahhaha");
        n();
    }).fadeIn(500);​

Try it here: http://jsfiddle.net/n7j8Y/

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+1 my chain() was actually the queue()! ;) –  Frankie Aug 13 '10 at 1:38
    
+1 There's a jQuery for that. –  Peter Ajtai Aug 13 '10 at 1:48
    
Two things - Why doesn't .delay() work on .html() and what does n() do? –  Derek Adair Aug 13 '10 at 17:06
    
@DerekAdair - Not sure why this is necessary, but it seems to be. If you manually trigger an event like $('#example').trigger('click');, it doesn't work without the n(). It likely has to do with some sort of return value. –  DesignerGuy Oct 12 '12 at 17:56
1  
n() stands for 'next queue item', according to the docs on queue, this dequeue's the item and triggers the next animation item. –  Derek Adair Oct 12 '12 at 19:46

you could change it to make the change when the fadeOut is completed using the fcallback function parameter.

so it becomes:

$("#products").fadeOut(500, function() {
    $(this).html($("#productPage" + pageNum).html());
    $(this).fadeIn(500);
});
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