1928 United States presidential election in Rhode Island
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Elections in Rhode Island |
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The 1928 United States presidential election in Rhode Island took place on November 6, 1928, as part of the 1928 United States presidential election which was held throughout all contemporary 48 states. Voters chose five representatives, or electors to the Electoral College, who voted for president and vice president.
Rhode Island voted for the Democratic nominee, Governor Alfred E. Smith of New York, over the Republican nominee, former Secretary of Commerce Herbert Hoover of California. Smith's running mate was Senator Joseph Taylor Robinson of Arkansas, while Hoover's running mate was Senate Majority Leader Charles Curtis of Kansas.
Smith won Rhode Island by a very narrow margin of 0.61%, making him the first Democratic presidential candidate since Woodrow Wilson in 1912 to carry the state, as well as the first to win an absolute majority of the vote since Franklin Pierce in 1852. Although Hoover won more counties than Smith, key to Smith's victory was his appeal to "ethnic white" Roman Catholic voters in Providence County and Bristol County. Rhode Island was the only state save adjacent Massachusetts (another state with a large Catholic population) outside the Democratic "Solid South" that voted for Smith in 1928. This was the second of three times that the state voted differently than Minnesota, along with 1912 and 1984.
Despite winning in a landslide nationally, Hoover became the first Republican to ever win the presidency without carrying Rhode Island. Given the scale of Hoover's win, Rhode Island weighed in as 18 percentage points more Democratic than the United States at large. Hoover also became the first Republican to ever win without carrying Providence and Bristol counties. Beginning in 1928, Rhode Island would transition from a strongly Yankee Republican state into a Democratic-leaning state. Since then, Republicans have only carried the state four times, all in Republican landslide years: 1952, 1956, 1972, and 1984.
Results
[edit]1928 United States presidential election in Rhode Island[1] | ||||||||
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Party | Candidate | Running mate | Popular vote | Electoral vote | ||||
Count | % | Count | % | |||||
Democratic | Al Smith of New York | Joseph Taylor Robinson of Arkansas | 118,973 | 50.16% | 5 | 100.00% | ||
Republican | Herbert Hoover of California | Charles Curtis of Kansas | 117,522 | 49.55% | 0 | 0.00% | ||
Socialist Labor | Verne L. Reynolds of Michigan | Jeremiah D. Crowley of New York | 416 | 0.18% | 0 | 0.00% | ||
Communist | William Z. Foster of Massachusetts | Benjamin Gitlow of New York | 283 | 0.12% | 0 | 0.00% | ||
Total | 237,194 | 100.00% | 5 | 100.00% |
By county
[edit]1928 United States presidential election in Rhode Island (by county) [2] | ||||||||
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County | Al Smith
Democratic |
Herbert Hoover
Republican |
Other candidates
Various parties |
Total | ||||
% | # | % | # | % | # | # | ||
Bristol | 51.8% | 4,080 | 48.0% | 3,780 | 0.2% | 13 | 7,873 | |
Kent | 39.3% | 7,460 | 60.4% | 11,487 | 0.3% | 58 | 19,005 | |
Newport | 43.9% | 6,748 | 55.8% | 8,578 | 0.2% | 33 | 15,359 | |
Providence | 52.9% | 97,185 | 46.8% | 85,884 | 0.3% | 568 | 183,637 | |
Washington | 30.9% | 3,500 | 68.8% | 7,793 | 0.2% | 27 | 11,320 |
See also
[edit]References
[edit]- ^ "1928 Presidential General Election Results - Rhode Island". U.S. Election Atlas. Retrieved December 23, 2013.
- ^ "RI.gov: Election Results". www.ri.gov. Retrieved February 11, 2024.