1864 United States presidential election in Rhode Island
November 8, 1864
 
Nominee Abraham Lincoln George B. McClellan
Party National Union Democratic
Home state Illinois New Jersey
Running mate Andrew Johnson George H. Pendleton
Electoral vote 4 0
Popular vote 13,962 8,470
Percentage 62.24% 37.76%
County Results
Lincoln
  60-70%

President before election

Abraham Lincoln
Republican

 Elected President

Abraham Lincoln
National Union

The 1864 United States presidential election in Rhode Island took place on November 8, 1864, as part of the 1864 United States presidential election. Voters chose four representatives, or electors to the Electoral College, who voted for president and vice president.

Rhode Island voted for the National Union candidate, Abraham Lincoln, over the Democratic candidate, George B. McClellan. Lincoln won the state by a margin of 24.48%.

Results

1864 United States presidential election in Rhode Island[1]
Party Candidate Votes Percentage Electoral votes
National Union Abraham Lincoln (incumbent) 13,962 62.24% 4
Democratic George B. McClellan 8,470 37.76% 0
Totals 22,432 100.0% 4

See also

References

  1. โ†‘ "1864 Presidential General Election Results - Rhode Island".


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