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How can I use .append() with effects like show('slow')

Having effects on append doesn't seem to work at all, and it give the same result as normal show(). No transitions, no animations.

How can I append one div to another, and have a slideDown or show('slow') effect on it?

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6 Answers

up vote 84 down vote accepted

Having effects on append won't work because the content the browser displays is updated as soon as the div is appended. So, to combine Mark B's and Steerpike's answers:

Style the div you're appending as hidden before you actually append it. You can do it with inline or external CSS script, or just create the div as

<div id="new_div" style="display: none;"> ... </div>

Then you can chain effects to your append (demo):

$('#new_div').appendTo('#original_div').show('slow');

Or (demo):

var $new = $('#new_div');
$('#original_div').append($new);
$new.show('slow');
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3  
was probably the inline style, adding a css class like "hidden" which equates to display: none is .. "classier" (baddoom tsh) ;) –  danp Jun 22 '10 at 15:09
23  
@danp: sadtrombone.com –  Matt Ball Sep 17 '10 at 1:03
1  
This won't work. When you use append, it will return the original_div not the newly appended element. So you are actually calling show on the container. –  Vic Jan 8 '13 at 0:35
    
@Vic as it happens .append() doesn't even take a selector string. The idea's still correct though. Thanks, updated. –  Matt Ball Jan 8 '13 at 0:39
    
The demo works perfectly, but it assumes the content exists - so it won't work if you are generating the content, eg. pulling an image's alt content to create a title or div... –  Drew Dello Stritto Jan 23 '13 at 6:50
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The essence is this:

  1. You're calling 'append' on the parent
  2. but you want to call 'show' on the new child

This works for me:

var new_item = $('<p>hello</p>').hide();
parent.append(new_item);
new_item.show('normal');

or:

$('<p>hello</p>').hide().appendTo(parent).show('normal');
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I realize this is 3.5 years old now, but it's such a slick answer I just had to vote it up and comment. Well done! –  praguian Jul 9 '13 at 14:45
    
I've tried both of these ways and it doesn't work. There is no smooth sliding effect on the appended content. –  Chris22 Nov 5 '13 at 8:51
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Another way when working with incoming data (like from an ajax call):

var new_div = $(data).hide();
$('#old_div').append(new_div);
new_div.slideDown();
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Set the appended div to be hidden initially through css visibility:hidden.

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Something like:

$('#test').append('<div id="newdiv">Hello</div>').hide().show('slow');

should do it?

Edit: sorry, mistake in code and took Matt's suggestion on board too.

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Not sure if that would do what he wants, but if so, you'd chain the functions: $('#divid').append('#newdiv').hide().show('slow'). –  Matt Ball Oct 5 '09 at 14:07
    
It does work; the #newdiv bit is wrong though and you're right, you can chain them. I've edited my answer now. –  Mark Bell Oct 5 '09 at 14:15
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I was in need of a similar kind of solution, wanted to add data on a wall like facebook, when posted,use prepend() to add the latest post on top, thought might be useful for others..

$("#statusupdate").submit( function () {    
          $.post(
           'ajax.php',
            $(this).serialize(),
            function(data){

                $("#box").prepend($(data).fadeIn('slow'));                  
                $("#status").val('');
            }
          );
           event.preventDefault();   
        });   

the code in ajax.php is

if (isset($_POST))
{

    $feed = $_POST['feed'];
    echo "<p id=\"result\" style=\"width:200px;height:50px;background-color:lightgray;display:none;\">$feed</p>";


}
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