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==Engineering Geology==
'''Engineering Geology''' is the application of the [[Geology|geologic sciences]] to engineering practice for the purpose of assuring that the geologic factors affecting the location, design, construction, operation and maintenance of engineering works are recognized and adequately provided for. [[Engineering geologists]] investigate and provide geologic and geotechnical recommendations, analysis, and design associated with human development. The realm of the engineering geologist is essentially in the area of earth-structure interactions, or investigation of how the earth or earth processes impact human made structures and human activities.
'''Bold text'''Engineering Geology'''Bold text''' 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 (EIR/EIS), 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]] 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 for residential, commercial and industrial developments; for governmental and military installations; for public works such as power plants, treatment plants, pipelines, [[tunnels]], canals, [[dams]], reservoirs, buildings, railroads, highways, airports and parks; for [[mine]] and [[quarry]] excavations and [[tunneling]]; for wetland and habitat restoration programs; for coastal, harbor and waterfront developments; for offshore outfalls, drilling platforms and sub-sea pipelines/cables; and for other types of facilities.  


'''Bold text'''Geologic Hazards'''Bold text'''. Typical [[geologic hazards]] evaluated by engineering geologists include fault rupture on seismically active [[faults]], [[seismic]] and [[earthquake]] hazards (ground shaking, liquefiable soils, lurching, lateral spreading, [[tsunamis]] and seiches; [[landslide]], [[mudflow]], [[rock fall]] and [[avalanche]] hazards; [[unstable slopes]]; [[erosion]]; [[slaking]] and [[heave]] of geologic formations; ground [[subsidence]] (such as due to [[ground water]] withdrawal, decomposition of organic soils and [[tectonic]] movement); [[volcanic]] hazards (volcanic [[eruptions]], [[debris flows]], [[earthquakes]] and ash falls); collapsible soils; shallow ground water/seepage; and other types of geologic constraints. Engineering geologists, often working in conjunction with a [[geophysicist]], may evaluate conditions such as the [[excavatability]] of rock and earth materials (known also as [rippability]) to assess the need for [[blasting]] during earthwork construction, as well as associated impacts due to [[vibration]] during blasting on projects.  
Engineering geologic studies may be performed during the planning, environmental impact analysis, civil or structural engineering design, value engineering and construction phases of public and private works projects, and during post-construction and forensic phases of projects. Works completed by engineering geologists include; [[geologic hazards]], [[geotechnical]], material properties, [[landslide]] and slope stability, [[erosion]], [[flooding]], [[dewatering]], and [[seismic]] investigations, etc. Engineering geologic studies are performed by a [[geologist]] or engineering geologist that is educated, trained and has obtained experience related to the recognition and interpretation of natural processes, the understanding of how these processes impact man-made structures (and visa-versa), and knowledge of methods by which to mitigate for hazards resulting for adverse natural or man-made conditions.  The principal objective of the engineering geologist is the protection of life and property against damage caused by geologic conditions.
{{?}}
Engineering geologic practice is also closely related to the practice of [[geological engineering]], [[geotechnical engineering]], [[soils engineering]], [[environmental geology]] and [[economic geology]]. If there is a difference in the content of the disciplines described, it mainly lies in the training or experience of the practitioner.


'''Bold text'''Methods and Report'''Bold text'''. The methods used by engineering geologists in their studies include geologic field [[mapping]] of geologic structures, geologic formations, soil units and hazards; the review of geologic literature, geologic maps, geotechnical reports, engineering plans, environmental reports, stereoscopic [[aerial photograph]], remote sensing data, topographic maps and [[satellite]] imagery; the excavation, sampling and logging of earth/rock materials in drilled [[borings]], backhoe test pits and trenches, and bulldozer pits; [[geophysical]] surveys (such as [[seismic refraction]] traverses, [[resistivity]] surveys, [[ground penetrating radar]] (GPR) surveys, magnetometer surveys, electromagnetic (EM) surveys, high-resolution [[sub-bottom profiling]], and other geophysical methods); and other methods. The field work is typically culminated in analysis of the data and the preparation of an engineering geologic report, fault or seismic hazard report, geophysical 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.
==History==
Although the science of [[geology]] has been around since the 1700s, at least in its modern form, the science and practice of engineering geology didn't begin as a recognized discipline until the  late 1800s and early 1900s.  The first book entitled Engineering Geology was published in 1880 by William Penning.  In the early 1900s Charles Berkey, and American trained geologist who was considered the first American [[engineering geologists]], worked on a number of water supply projects for New York City, then later work on the Hoover dam and a multitude of other engineering projects.  The first American engineering geology text book was written in 1914 by Ries and Watson.  In 1925, [[Karl Terzaghi]], an Austrian trained engineer and geologist, published the first text in Soil Mechanics (in German). Terzaghi is known as the father of soil mechanics, but also had great interest in geology; Terzaghi considered soil mechanics to be a sub-discipline of engineering geology. In 1929, Terzaghi, along with Redlich and Kampe, published their own Engineering Geology text (also in German).


'''Bold text'''Characteristics of Successful Engineering Geologists'''Bold text''':
The need for geologist on engineering works gained world wide attention in 1928 with the failure of the St. Francis dam in California and the loss of 426 lives.  More engineering failures which occurred the following years also prompted the requirement for engineering geologists to work on large engineering projects.
1.  Observation skills:  Ability to observe and understand the important physical features, as well as the small, subtle and seemingly unimportant features.  Ability to listen and take good notes.
2.  Spatial skills:  Ability to visualize and draw [[geologic structures]] (for example faults, bedding planes, landslides, jointing, etc.) in 3-dimensions.
3.  Problem solving:  Desire to analyze and solve problems.
4.  Scientific curiosity:  Desire to know the truth regardless of whether or not it agrees with your original idea about something.
5.  An open mind:  Ability to withhold your final judgment until all data has been gathered and analyzed. 
6.  Writing and communications:  Ability to write and communicate geologic and engineering ideas to other geologists, engineers, non-specialists and the public.
7.  Math and computer skills: Ability to quantify and analyze data and results.
8.  Team player:  Ability to work in teams and get along with others.
9.  Desire to work outdoors: The reason why many students become engineering geologists.


'''Bold text'''Tools of the Engineering Geologist:'''Bold text'''
In 1951, one of the earliest definitions of the "[[Engineering Geologist]]" or "Professional Engineering Geologist" was provided by the Executive Committee of the Division on Engineering Geology of the Geological Society of America.


1.  [[Brunton]] Compass
==The Practice==
2.  Geologic Pick
One of the most important roles of the [[engineering geologist]] is the interpretation of [[landforms]] and earth processes to identify potential geologic and related man-made hazards that may impact civil structures and human development.  Nearly all engineering geologists are initially trained and educated in [[geology]], primarily during their undergraduate education.  This background in geology provides the engineering geologist with an understanding of how the earth works, which is crucial in mitigating for earth related hazards.  Most engineering geologists also have graduate degrees where they have gained specialized education and training in [[soil mechanics]], [[rock mechanics]], [[geotechnics]], [[groundwater]], [[hydrology]], and civil design.  These two aspects of the engineering geologists' education provides them with a unique ability to understand and mitigate for hazards associated with earth-structure interactions.
3.  Topographic Maps
4.  Aerial Photographs
5.  Camera
6.  Drill Rigs, Backhoes, and Bulldozers – Typically rented with an operator
7.  Geophysical Instruments (Seismograph, Gravity Meter, Resistivity, Magnetometer, Electromagetic, Ground Penetrating Radar, High-Resolution Sub-Bottom Profiler, etc.)
8.  Calculators and Computers


==Scope of Studies==
Engineering geologic studies may be performed:
*for residential, commercial and industrial developments;
*for governmental and [[military]] installations;
*for public works such as a [[power plant]], [[wind turbine]], [[transmission line]], [[sewage treatment]] plant, [[water treatment]] plant, [[Pipeline_transport|pipeline]] ([[aqueduct]], [[sanitary sewer|sewer]], [[outfall]]), [[tunnel]], [[trenchless]] construction, [[canal]], [[dam]], [[reservoir (water)|reservoir]], building, [[railroad]], [[transit]], [[highway]], [[bridge]], [[seismic retrofit]], [[airport]] and park;
*for [[Mining|mine]] and [[quarry]] excavations, [[mine tailing dam]], [[mine reclamation]] and mine [[tunneling]];
*for [[wetland]] and [[habitat restoration]] programs;
*for [[coastal]] engineering, [[sand replenishment]], [[bluff]] or [[sea cliff]]  stability, [[harbor]], [[pier]] and waterfront development;
*for offshore [[outfall]], [[drilling platform]] and [[sub-sea pipeline]], sub-sea cable; and
*for other types of facilities.


'''Bold text'''Education:'''Bold text'''
==Geohazards and adverse geo-conditions==
Typical [[geologic hazards]] or other adverse conditions evaluated and mitigated by an [[engineering geologist]] include:  
*[[Earthquake#Shaking and ground rupture|fault rupture]] on seismically active [[faults]] ;
*[[seismic]] and [[earthquake]] hazards (ground shaking, [[liquefaction]], [[lurching]],[[lateral spreading]], [[tsunami]] and [[seiche]] events);
*[[landslide]], [[mudflow]], [[rockfall]], [[debris flow]], and [[avalanche]] hazards ;
*[[unstable slopes]] and [[slope stability]];
*[[erosion]];
*[[slaking]] and [[heave]] of geologic formations;
*ground [[subsidence]] (such as due to [[ground water]] withdrawal, [[sinkhole]] collapse, [[cave]] collapse, decomposition of organic soils, and [[tectonic]] movement);
*[[volcanic]] hazards ([[volcanic eruption]]s, [[hot springs]], [[pyroclastic flows]], [[debris flow]], [[debris avalanche]], [[gas emissions]], volcanic [[earthquakes]]);
*[[non-rippable]] or [[marginally rippable]] rock requiring heavy ripping or [[blasting]];
*weak and collapsible soils, foundation bearing failures;
*shallow ground water/seepage; and
*other types of geologic constraints.


Education of Engineering Geologists requires a college degree, such as a Bachelors, Masters in [[Geology]], or [[Geological Engineering]]. Course work in [[Geophysics]], [[Seismology]], [[Hydrogeology]], [[Soil Mechanics]], and [[Geotechnical Engineering]] is also helpful. A PhD is required for certain university teaching and research positions and certain governmental positions.
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 [[oscillation|vibration]] during blasting on projects.


By Greg Farrand, CEG, San Diego, California
==Soil and Rock Mechanics==
{{main|Soil mechanics|Rock mechanics}}
[[Soil mechanics]] is a discipline that applies principles of engineering mechanics, e.g. kinematics, dynamics, fluid mechanics, and mechanics of material, to predict the mechanical behavior of soils.  [[Rock mechanics]] is the theoretical and applied science of the mechanical behaviour of rock and rock masses; it is that branch of mechanics concerned with the response of rock and rock masses to the force fields of their physical environment.  Together, soil and rock mechanics are the basis for solving many engineering geologic problems.
 
==Methods and reporting==
The methods used by [[engineering geologist]]s in their studies include
*[[Geologic map|geologic field mapping]] of geologic structures, geologic formations, soil units and hazards;
*the review of geologic literature, geologic maps, geotechnical reports, engineering plans, environmental reports, stereoscopic [[aerial photograph]]s, remote sensing data, [[Global Positioning System]] (GPS) data, topographic maps and [[satellite]] imagery;
*the excavation, sampling and logging of earth/rock materials in drilled borings, backhoe test pits and trenches, fault trenching, and bulldozer pits;
*[[geophysical]] surveys (such as [[seismic refraction]] traverses, [[resistivity]] surveys, [[ground penetrating radar]] (GPR) surveys, [[magnetometer]] surveys, [[Electromagnetism|electromagnetic]] surveys, high-resolution sub-bottom profiling, and other geophysical methods); 
*[[Deformation_Monitoring|deformation monitoring]] as the systematic measurement and tracking of the alteration in the shape or dimensions of an object as a result of the application of stress to it manually or with an [[Automatic_Deformation_Monitoring_System|automatic deformation monitoring system]]; and
*other methods.
The field work is typically culminated in analysis of the data and the preparation of an engineering geologic report, geotechnical 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 report, but commonly provide geotechnical analysis and design recommendations independent of a geotechnical report. An engineering geologic report describes the objectives, methodology, references cited, tests performed, findings and recommendations for development. Engineering geologists also provide geologic data on topograpic maps, aerial photographs, geologic maps, [[Geographic_information_system|Geographic Information System]] (GIS) maps, or other map bases.
 
==See also==
* [[Earthquake engineering]]
* [[Geotechnics]]
* [[Geotechnical engineering]]
* [[Geotechnical investigation]]
* [[List of publications in geology#Engineering geology| Important publications in engineering geology]]
* [[Engineering geology]]
 
== References ==
* Bates and Jackson, 1980, Glossary of Geology: American Geological Institute.
* The Heritage of Engineering Geology: The First Hundred Years: GSA Centennial Special Volume 3, 1991
* Price, David George, ''Engineering Geology: Principles and Practice'', Springer, 2008 ISBN 3540292497
 
[[Category:Geology]]
[[Category:Geotechnical engineering]]

Latest revision as of 19:01, 5 November 2010

Engineering Geology is the application of the geologic sciences to engineering practice for the purpose of assuring that the geologic factors affecting the location, design, construction, operation and maintenance of engineering works are recognized and adequately provided for. Engineering geologists investigate and provide geologic and geotechnical recommendations, analysis, and design associated with human development. The realm of the engineering geologist is essentially in the area of earth-structure interactions, or investigation of how the earth or earth processes impact human made structures and human activities.

Engineering geologic studies may be performed during the planning, environmental impact analysis, civil or structural engineering design, value engineering and construction phases of public and private works projects, and during post-construction and forensic phases of projects. Works completed by engineering geologists include; geologic hazards, geotechnical, material properties, landslide and slope stability, erosion, flooding, dewatering, and seismic investigations, etc. Engineering geologic studies are performed by a geologist or engineering geologist that is educated, trained and has obtained experience related to the recognition and interpretation of natural processes, the understanding of how these processes impact man-made structures (and visa-versa), and knowledge of methods by which to mitigate for hazards resulting for adverse natural or man-made conditions. The principal objective of the engineering geologist is the protection of life and property against damage caused by geologic conditions. ? Engineering geologic practice is also closely related to the practice of geological engineering, geotechnical engineering, soils engineering, environmental geology and economic geology. If there is a difference in the content of the disciplines described, it mainly lies in the training or experience of the practitioner.

History

Although the science of geology has been around since the 1700s, at least in its modern form, the science and practice of engineering geology didn't begin as a recognized discipline until the late 1800s and early 1900s. The first book entitled Engineering Geology was published in 1880 by William Penning. In the early 1900s Charles Berkey, and American trained geologist who was considered the first American engineering geologists, worked on a number of water supply projects for New York City, then later work on the Hoover dam and a multitude of other engineering projects. The first American engineering geology text book was written in 1914 by Ries and Watson. In 1925, Karl Terzaghi, an Austrian trained engineer and geologist, published the first text in Soil Mechanics (in German). Terzaghi is known as the father of soil mechanics, but also had great interest in geology; Terzaghi considered soil mechanics to be a sub-discipline of engineering geology. In 1929, Terzaghi, along with Redlich and Kampe, published their own Engineering Geology text (also in German).

The need for geologist on engineering works gained world wide attention in 1928 with the failure of the St. Francis dam in California and the loss of 426 lives. More engineering failures which occurred the following years also prompted the requirement for engineering geologists to work on large engineering projects.

In 1951, one of the earliest definitions of the "Engineering Geologist" or "Professional Engineering Geologist" was provided by the Executive Committee of the Division on Engineering Geology of the Geological Society of America.

The Practice

One of the most important roles of the engineering geologist is the interpretation of landforms and earth processes to identify potential geologic and related man-made hazards that may impact civil structures and human development. Nearly all engineering geologists are initially trained and educated in geology, primarily during their undergraduate education. This background in geology provides the engineering geologist with an understanding of how the earth works, which is crucial in mitigating for earth related hazards. Most engineering geologists also have graduate degrees where they have gained specialized education and training in soil mechanics, rock mechanics, geotechnics, groundwater, hydrology, and civil design. These two aspects of the engineering geologists' education provides them with a unique ability to understand and mitigate for hazards associated with earth-structure interactions.

Scope of Studies

Engineering geologic studies may be performed:

Geohazards and adverse geo-conditions

Typical geologic hazards or other adverse conditions evaluated and mitigated 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.

Soil and Rock Mechanics

Soil mechanics

Soil mechanics is a discipline that applies principles of engineering mechanics, e.g. kinematics, dynamics, fluid mechanics, and mechanics of material, to predict the mechanical behavior of soils. Rock mechanics is the theoretical and applied science of the mechanical behaviour of rock and rock masses; it is that branch of mechanics concerned with the response of rock and rock masses to the force fields of their physical environment. Together, soil and rock mechanics are the basis for solving many engineering geologic problems.

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, geotechnical 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 report, but commonly provide geotechnical analysis and design recommendations independent of a geotechnical report. An engineering geologic report describes the objectives, methodology, references cited, tests performed, findings and recommendations for development. Engineering geologists also provide geologic data on topograpic maps, aerial photographs, geologic maps, Geographic Information System (GIS) maps, or other map bases.

See also

References

  • Bates and Jackson, 1980, Glossary of Geology: American Geological Institute.
  • The Heritage of Engineering Geology: The First Hundred Years: GSA Centennial Special Volume 3, 1991
  • Price, David George, Engineering Geology: Principles and Practice, Springer, 2008 ISBN 3540292497