$解:过点P作PG⊥EF ,垂足为点G ,如图所示$
$由题意得, AB//CD//PG$
$因为AB//PG$
$所以△PGD∽△ABD$
$所以\frac {PG}{AB}=\frac {DG}{DB}$
$因为CD//PG$
$所以△PGB∽△CDB,$
$所以\frac {PG}{CD}=\frac {GB}{DB}$
$因为\frac {DG}{DB}+\frac {GB}{DB}=\frac {DB}{DB}=1$
$所以\frac {PG}{AB}+\frac {PG}{CD}=1$
$因为AB=4m,CD=6m$
$所以\frac {PG}{4}+\frac {PG}{6}=1$
$所以PG=\frac {12}{5}m$
$答:交点P离地面的高度为\frac {12}{5}m$
