1824 United States presidential election in Rhode Island
The 1824 United States presidential election in Rhode Island took place between October 26 and December 2, 1824, as part of the 1824 United States presidential election. Voters chose four representatives, or electors to the Electoral College, who voted for President and Vice President.
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| Elections in Rhode Island |
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During this election, the Democratic-Republican Party was the only major national party, and 4 different candidates from this party sought the Presidency. Rhode Island voted for John Quincy Adams over William H. Crawford, Henry Clay, and Andrew Jackson. Adams won Rhode Island by a margin of 82.94%.
Results
| 1824 United States presidential election in Rhode Island[1] | |||||
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| Party | Candidate | Votes | Percentage | Electoral votes | |
| Democratic-Republican | John Quincy Adams | 2,145 | 91.47% | 4 | |
| Democratic-Republican | William H. Crawford | 200 | 8.53% | 0 | |
| Totals | 2,345 | 100.0% | 4 | ||
References
- "1824 Presidential General Election Results - Rhode Island". U.S. Election Atlas. Retrieved 27 February 2013.
State and district results of the 1824 United States presidential election | ||
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