1884 United States presidential election in Delaware

Main article: 1884 United States presidential election

1884 United States presidential election in Delaware

← 1880 November 4, 1884 1888 →

Nominee Grover Cleveland James G. Blaine Party Democratic Republican Home state New York Maine Running mate Thomas A. Hendricks John A. Logan Electoral vote 3 0 Popular vote 16,957 12,953 Percentage 56.55% 43.20%

County Results Cleveland   50-60%   60-70%

President before election Chester A. Arthur Republican Elected President Grover Cleveland Democratic

The 1884 United States presidential election in Delaware took place on November 4, 1884, as part of the 1884 United States presidential election. Voters chose three representatives, or electors to the Electoral College, who voted for president and vice president.

Delaware voted for the Democratic nominee, Grover Cleveland, over the Republican nominee, James G. Blaine. Cleveland won the state by a margin of 13.35%.

Results

1884 United States presidential election in Delaware[1]
Party		Candidate	Running mate	Popular vote		Electoral vote
				Count	%	Count	%
	Democratic	Grover Cleveland of New York	Thomas Andrews Hendricks of Indiana	16,957	56.55%	3	100.00%
	Republican	James Gillespie Blaine of Maine	John Alexander Logan of Illinois	12,953	43.20%	0	0.00%
	Prohibition	John Pierce St. John of Kansas	William Daniel of Maryland	64	0.21%	0	0.00%
	Greenback	Benjamin Franklin Butler of Massachusetts	Absolom Madden West of Mississippi	10	0.03%	0	0.00%
Total				29,984	100.00%	3	100.00%

See also

• United States presidential elections in Delaware

References

1. "1884 Presidential General Election Results - Delaware". U.S. Election Atlas. Retrieved 23 December 2013.