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Look at this code...

var b = $('<div id="b" />');
$('#a').wrap(b);
b.css({ border: '5px solid red' });

jsFiddle.

The element stored under b will not have a border.

Is there any way to access b still once it has been used to wrap another element?

Or should I do b = $('#b') again?

Thanks.

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3 Answers 3

up vote 4 down vote accepted

I don't think jQuery actually uses the same instance of "b" to wrap it. You would need to overwrite "b" with the one that was created to do the wrap.

var b = $('<div id="b" />');

b = $('#a').wrap(b).parent();

b.css({ border: '5px solid red' });

I suppose the reason is that if a was a class instead of an ID, and there were several of them, you wouldn't be able to use the same element to individually wrap each .a.

So it must make a clone of b that it uses to do the wrap.

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Not, your code works because the second line "b" receive the element "b" from DOM. However, in the first line, the "b" refer to a memory. When you create element in memory, after you sent it to DOM your changes in element in memory doesn't affect DOM. This is the true reason. –  Gustavo Costa De Oliveira Feb 8 '11 at 4:08
    
@Gustavo: Changes made to an element "in memory" take effect whether or not it has been added to the DOM. Test an example. –  RightSaidFred Feb 8 '11 at 13:07
    
... here's the source for wrap(). Notice that it just calls wrapAll on each element. So here's the source for wrapAll() where it makes the clone of the element being used as the wrapper. –  RightSaidFred Feb 8 '11 at 13:19

var b = $('');

$('#a').wrap(b).css({ border: '5px solid red' });

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This adds the css style to #a and b doesn't contain an element to be used for the wrap. –  RightSaidFred Feb 8 '11 at 2:38

The b contain the element in memory, after DOM append, you send b to DOM at second line and before call css() by the element referenced by "b" and not by the DOM match.

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The Alexander and RightSaidFred's code restores the b from DOM and its these codes works. –  Gustavo Costa De Oliveira Feb 8 '11 at 2:39

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