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I want to replace a div's content and then make it visible

$("#btn").click(function () {
$('#div01').load('about.php');
$("#div01").slideDown("slow");
});

But the div becomes visible before the content is changed, so user can see the previous content - which is not the idea.

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3 Answers 3

up vote 1 down vote accepted

The second parameter of the load() function can be used as a callback function. So the slideDown() only occurs when the load is complete:

$("#btn").click(function () {
    $('#div01').load('about.php', function(){
        $("#div01").slideDown("slow");
    });
});
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F4r-20 - Thanks a lot. it works. –  bonaca May 20 '13 at 10:34
    
Glad to have helped. –  George May 20 '13 at 10:35

Try this:

$("#btn").click(function () {
    $('#div01').load('about.php',function(){
        setTimeout(function(){$("#div01").slideDown("slow")},100);
    });
});
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.load() is an ajax function so try to get it after ajax completes with jQuery.ajaxComplete():

$("#btn").click(function () {
     $('#div01').load('about.php');
});

$.ajaxComplete(function(){
   $("#div01").slideDown("slow");
});
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