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*[[geophysical]] surveys (such as [[seismic refraction]] traverses, [[resistivity]] surveys, [[ground penetrating radar]] (GPR) surveys, [[magnetometer]] surveys, [[electromagnetic]] surveys, high-resolution sub-bottom profiling, and other geophysical methods); and  
*[[geophysical]] surveys (such as [[seismic refraction]] traverses, [[resistivity]] surveys, [[ground penetrating radar]] (GPR) surveys, [[magnetometer]] surveys, [[electromagnetic]] surveys, high-resolution sub-bottom profiling, and other geophysical methods); and  
*other methods.  
*other methods.  
The field work is typically culminated in analysis of the data and the preparation of an engineering geologic report, fault hazard  or seismic hazard report, geophysical report, [[ground water]] resource report or [[hydrogeology|hydrogeologic]] report. The engineering geologic report is often prepared in conjunction with a [[geotechnical engineering]] report by a geotechnical engineer. The report describes the objectives, methodology, references cited, tests performed, findings and recommendations. Engineering geologists provide geologic data on  topograpic maps, aerial photographs, geologic maps, [[Geographic Information System]] (GIS) maps, or other map bases.
The field work is typically culminated in analysis of the data and the preparation of an engineering geologic report, fault hazard  or seismic hazard report, geophysical report, [[ground water]] resource report or [[hydrogeology|hydrogeologic]] report. The engineering geologic report is often prepared in conjunction with a [[geotechnical engineering]] report by a geotechnical engineer. The report describes the objectives, methodology, references cited, tests performed, findings and recommendations. Engineering geologists provide geologic data on  topograpic maps, aerial photographs, geologic maps, [[Geographic_information_system|Geographic Information System]] (GIS) maps, or other map bases.


=='''See also'''==
=='''See also'''==

Revision as of 01:54, 5 December 2005

Engineering Geology is the application of the science of geology to the understanding of geologic phenomena and the engineering solution of geologic hazards and other geologic problems for society. Engineering geologic studies may be performed during the planning, environmental impact analysis, civil engineering design, value engineering and construction phases of public and private works projects, and during post-construction and forensic phases of projects. Engineering geologic studies are performed by a geologist or engineering geologist educated, professionally trained and skilled at the recognition and analysis of geologic hazards and adverse geologic conditions. Their overall objective is the protection of people and property against damage and the solution of geologic problems.

Engineering geologic studies may be performed


Geologic Hazards

Typical geologic hazards evaluated by an engineering geologist include

An engineering geologist or geophysicist may be called upon to evaluate the excavatability (i.e. rippability) of earth (rock) materials to assess the need for pre-blasting during earthwork construction, as well as associated impacts due to vibration during blasting on projects.

Methods and Reporting

The methods used by engineering geologists in their studies include

The field work is typically culminated in analysis of the data and the preparation of an engineering geologic report, fault hazard or seismic hazard report, geophysical report, ground water resource report or hydrogeologic report. The engineering geologic report is often prepared in conjunction with a geotechnical engineering report by a geotechnical engineer. The report describes the objectives, methodology, references cited, tests performed, findings and recommendations. Engineering geologists provide geologic data on topograpic maps, aerial photographs, geologic maps, Geographic Information System (GIS) maps, or other map bases.

See also

pt:Geologia de engenharia