2006 CONCACAF Women's Gold Cup
The 2006 CONCACAF Women's Gold Cup was the seventh edition of the CONCACAF Women's Gold Cup, and also acted as a qualifier tournament for the 2007 FIFA Women's World Cup. The final tournament took place in the United States between November 19 and 27, 2006.[2] The United States and Canada received byes into the semi-finals of the tournament after contesting the final of the 2002 Gold Cup, while four other spots were determined through regional qualification. The United States won the competition with Canada, as the runner-up. Both teams automatically qualified for the 2007 Women's World Cup, while third place Mexico lost to AFC fourth-place finisher Japan in a play-off for a spot. Teams
QualificationUNCAF/NAFU QualifyingThe group winners qualified for the Gold Cup finals. Group A
Mexico
Mexico Group B
Estadio Rommel Fernández, Panama City, Panama CFU QualifyingAlso known as the Women's Caribbean Cup,[3] there were two spots available for the 22 teams taking part. Preliminary round
Antigua and Barbuda won 1–0 on aggregate. Netherlands Antilles won 3–1 on aggregate. US Virgin Islands won 8–1 on aggregate. First roundThe group winners, in bold, qualified for the final round. Haiti were unable to participate in group B, as they were denied entry to the hosting country Aruba, and thus a play-off between the winners of group B, Suriname, and Haiti was arranged. Haiti won the play-off, but Suriname qualified as best runners-up owing to goal difference, along with Bermuda.
Group A Group B Playoff Group C Group D
Final roundTrinidad & Tobago hosted the final round, consisting of two groups of three teams, between September 6 and 10.[5] The winner of each group, in bold, have qualified for the Gold Cup finals.
Final tournamentFirst roundSemifinalsWinners qualified for 2007 FIFA Women's World Cup.
Attendance: 6,128 Third place play-offWinner advanced to AFC–CONCACAF play-off. FinalAwards
References
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