ENGINEERING GEOLOGY 1
Lecture #6
 Horris K. Nangulama (MSc., BSc. Civil Eng.)
Department of Mining Engineering, Malawi University of Business and Applied
                                Sciences
      hnangulama@poly.ac.mw; 0885271934; at 201 Engineering Bldg
Site Investigation
Outline
   a)   Introduction
   b)   Desk Study and Preliminary Reconnaissance
   c)   Site Exploration – Direct Methods
   d)   In Situ Testing
   e)   Field Instrumentation
   f)   Geophysical Methods: Indirect Site Exploration
   g)   Maps for Engineering Purposes
   h)   Geographical Information Systems
Site Investigation:
Field Instrumentation
               Field Instrumentation
❖ When some degree of risk is involved in construction, some type of
  field instrumentation may be required in order to provide a
  continual check on the stability of the structure during its life span.
❖ Furthermore, field observations of both the magnitude and rate of
  subsurface ground movements are needed in connection with deep
  excavations, slope stability and earth and rockfill dam construction.
❖ Such instrumentation needs to assess the pore water pressure,
  deformation and stress and strain in the ground.
❖ However, an instrumentation programme does not usually
  constitute part of a site investigation.
            Field Instrumentation
❖ Surface deformation either in the form of settlements or
  horizontal movements can be monitored by precise surveying
  methods, the use of electronic distance measurement, EDM,
  or laser equipment providing particularly accurate results.
❖ Settlement, for example, can be recorded by positioning
  reference marks on the structures concerned and readings
  being taken by precise surveying methods. The observations
  are related to nearby bench marks. Vertical movements also
  can be determined by settlement tubes or by water-level or
  mercury-filled gauges.
                      Field Instrumentation
❖ Borehole extensometers are used to measure the vertical displacement of
  the ground at different depths.
❖ A single-rod extensometer is anchored in a borehole, and movement
  between the anchor and the reference tube is monitored.
❖ Multiple-rod installations monitor displacements at various depths using rods
  of various lengths.
❖ Each rod is isolated by a close-fitting plastic sleeve and the complete
  assembly is grouted into place, fixing the anchors to the ground while
  allowing free movement of each rod within its sleeve
       Field Instrumentation
❖A       precise      borehole
 extensometer consists of
 circular magnets embedded
 in the ground, which act as
 markers, and reed switch
 sensors move in a central
 access tube to locate the
 positions of the magnets
                   Figure: (a) Multiple rod extensometer.
                   (b) Magnetic probe extensometer.
               Field Instrumentation
❖ An inclinometer is used to measure horizontal movements below
  ground and relies on the measurement of the angle a pendulum
  makes with the vertical at given positions in a specially cased
  borehole.
❖ The gravity-operated pendulum transmits electrical signals to a
  recorder, and a vertical profile thereby is obtained.
❖ Sets of readings over a period of time enable both the magnitude
  and rate of horizontal movement to be determined.
                Field Instrumentation
❖A strain cell is required to move
 with the soil without causing it to
 be reinforced. In order to record
 strain, it is necessary to monitor
 the relative movements of two
 fixed points at either end of a
 gauge length.
                Figure: Borehole inclinometer
          Site Investigation:
Geophysical Methods: Indirect Site Exploration
Geophysical Methods: Indirect Site Exploration
     ❖ A geophysical exploration may be included in
       a site investigation for an important
       engineering project in order to provide
       subsurface information over a large area at
       reasonable cost.
   Geophysical Methods: Indirect Site Exploration
❖ The information obtained may help eliminate less favourable alternative
  sites, may aid the location of test holes in critical areas and may prevent
  unnecessary repetitive boring or drilling in fairly uniform ground.
❖ A geophysical survey not only helps to locate the position of boreholes or
  drillholes but also detects variations in subsurface conditions between
  them.
❖ Boreholes and drillholes provide information about the strata where they
  are sunk but provide no information about the ground in between.
❖ Nonetheless, boreholes or drillholes to aid interpretation and correlation of
  the geophysical measurements are an essential part of any geophysical
  survey.
❖ Therefore, an appropriate combination of direct and indirect methods often
  can yield a high standard of results.
          Geophysical Methods: Indirect Site Exploration
❖Geophysical methods are used to determine the geological sequence and structure of
 subsurface rocks by the measurement of certain physical properties or forces.
❖The properties that are made most use of in geophysical exploration are density,
 elasticity, electrical conductivity, magnetic susceptibility and gravitational attraction.
❖In other words, seismic and resistivity methods record the artificial fields of force
 applied to the area under investigation, while magnetic and gravitational methods
 measure natural fields of force.
❖The former techniques have the advantage over the latter in that the depth to which the
 forces are applied can be controlled.
❖By contrast, the natural fields of force are fixed and can only be observed and not
 controlled.
❖Seismic and resistivity methods are more applicable to the determination of horizontal
 or near horizontal changes or contacts, whereas magnetic and gravimetric methods
 generally are used to delineate lateral changes or vertical structures.
                        Seismic Methods
❖ The sudden release of energy from the detonation of an explosive charge in
  the ground or the mechanical pounding of the surface generates shock
  waves that radiate out in a hemispherical wave front from the point of
  release.
❖ The waves generated are compressional, P, dilational shear, S, and surface
  waves.
❖ The velocities of the shock waves generally increase with depth below the
  surface since the elastic moduli increase with depth.
❖ The compressional waves travel faster, and are generated and recorded
  more easily than shear waves.
❖ They are therefore used almost exclusively in seismic exploration.
                    Seismic Methods
❖ The shock wave velocity depends on many variables, including
  rock fabric, mineralogy and pore water.
❖ In general, velocities in crystalline rocks are high to very high.
❖ Velocities in sedimentary rocks increase with amount of
  consolidation and decrease in pore fluids and with increase in the
  degree of cementation and diagenesis.
❖ Unconsolidated sedimentary deposits have maximum velocities
  varying as a function of the volume of voids, either air filled or
  water filled, mineralogy and grain size.
            Seismic Methods
Velocities of compressional waves of some common rocks
                           Resistivity Methods
❖ The resistivity of rocks and soils varies within a wide range. Since most of
  the principal rock forming minerals are practically insulators, the
  resistivity of rocks and soils is determined by the amount of conducting
  mineral constituents and the content of mineralized water in the pores.
❖ The latter condition is by far the dominant factor, and in fact, most rocks
  and soils conduct an electric current only because they contain water.
❖ The widely differing resistivity values of the various types of
  impregnating water can cause variations in the resistivity of rocks ranging
  from a few tenths of an ohm-metre to hundreds of ohm-metres (W m)
                   Resistivity Methods
❖ In the resistivity method, an electric current is introduced
  into the ground by means of two current electrodes and the
  potential difference between two potential electrodes is
  measured.
❖ It is preferable to measure the potential drop or apparent
  resistance directly in ohms rather than observe both current
  and voltage.
❖ The ohms value is converted to apparent resistivity by use of
  a factor that depends on the particular electrode
  configuration in use
            Resistivity Methods
Resistivity of some types of natural water
          Resistivity Methods
Resistivity values of some common rock types
                     Electromagnetic Methods
❖ A wide variety of electromagnetic survey methods are available, each involving the
  measurement of one or more electric or magnetic field components induced in the
  ground by a primary field.
❖ A primary field is produced by a natural (transient) current source or an alternating
  current artificial source, and this field spreads out in space above and below the
  ground, inducing currents in subsurface conductors. Secondary electromagnetic
  fields are produced by these currents that distort the primary field.
❖ The resultant field differs from the primary field in intensity, phase and direction,
  and so can be detected by a suitable receiving coil.
❖ The secondary field induced in the subsurface conductor fades gradually when a
  transient primary field is switched off, fading being slower in media of higher
  conductivity.
❖ Hence, measurement of the rate at which the secondary currents fade and their
  field offers a means of detecting anomalously conducting bodies
                  Magnetic Methods
❖ All rocks, mineral and ore deposits are magnetized to a lesser or
  greater extent by the Earth’s magnetic field.
❖
❖ As a consequence, in magnetic surveying, accurate
  measurements are made of the anomalies produced in the local
  geomagnetic field by this magnetization.
❖ The intensity of magnetization and hence the amount by which
  the Earth’s magnetic field is changed locally depend on the
  magnetic susceptibility of the material concerned.
❖ In addition to the magnetism induced by the Earth’s field, rocks
  possess a permanent magnetism that depends on their history.
                             Gravity Methods
❖ The Earth’s gravity field varies according to the density of the subsurface rocks, but
  at any particular locality, its magnitude also is influenced by latitude, elevation,
  neighbouring topographical features and the tidal deformation of the Earth’s crust.
❖ The effects of these latter factors have to be eliminated in any gravity survey, where
  the object is to measure the variations in acceleration due to gravity precisely.
❖ This information then can be used to construct a contoured gravity map. In survey
  work, modern practice is to measure anomalies in gravity units (g.u. = 10-6 m s-2).
❖ Modern gravity meters used in exploration measure not the absolute value of the
  acceleration due to gravity but the small differences in this value between one place
  and the next.
                      Drillhole Logging Techniques
❖ Drillhole logging techniques can be used to identify some of the physical
  properties of rocks.
❖ For example, the electrical resistivity method makes use of various electrode
  configurations down-the-hole.
❖ As the instrument is raised from the bottom to the top of the hole, it
  provides a continuous record of the variations in resistivity of the wall rock.
❖ In the normal or standard resistivity configuration, there are two potential
  electrodes and one current electrode in the sonde.
❖ The depth of penetration of the electric current from the drillhole is
  influenced by the electrode spacing.
❖ In a short normal resistivity survey, spacing is about 400 mm, whereas in a
  long normal survey, spacing generally is between 1.5 and 1.75 m.
                        Cross-Hole Methods
❖ The cross-hole seismic method is based on the transmission of seismic
  energy between drillholes.
❖ In its simplest form, cross-hole seismic measurements are made
  between a seismic source in one drillhole (i.e. a small explosive charge,
  an air gun, a drillhole hammer, or an electrical sparker) and a receiver at
  the same depth in an adjacent drillhole.
❖ The receiver can either be a three-component geophone array clamped
  to the drillhole wall or a hydrophone in a liquid-filled drillhole to receive
  signals from an electric sparker in another drillhole similarly filled with
  liquid.
❖ The choice of source and receiver is a function of the distance between
  the drillholes, the required resolution and the properties of the rock
  mass.
                         Groundwater Investigation
❖ Groundwater exploration is the investigation of underground formations to understand
  the hydrologic cycle, know the groundwater quality, and identify the nature, number
  and type of aquifers.
❖ There are different groundwater exploration methods. Surface geophysical method is
  one of the groundwater investigation methods.
❖ One of the surface geophysical methods is therefore the vertical electrical sounding
  method.
❖ Vertical electrical sounding (VES) is one to provide valuable information regarding the
  vertical successions of subsurface geo-materials in terms of their individual thicknesses
  and corresponding resistivity values.
❖ It is rapid and much effective in estimating aquifer thickness of an area and is cost
  effective technique for groundwater study
   Site Investigation:
Maps for Engineering Purposes
              Maps for Engineering Purposes
❖ One of the important ways by which the geologist can be of service is by
  producing maps to aid the engineer, planner and others who are concerned
  with the development of land.
❖ A variety of maps can be produced from engineering geomorphological,
  environmental geological and engineering geological to geotechnical maps. The
  distinction between these different types of maps is not always clear cut.
❖ Be that as it may, maps represent a means of storing and transmitting
  information, in particular, of conveying specific information about the spatial
  distribution of given factors or conditions.
❖ In addition, a map represents a simplified model of the facts, and the
  complexity of various geological factors can never be portrayed in its entirety.
❖ The amount of simplification required is governed principally by the purpose
  and scale of the map, the relative importance of particular geological factors or
  relationships, the accuracy of the data and on the techniques of representation
  employed.
                   Engineering geomorphological maps
❖ The purpose of engineering geomorphological maps is to portray the surface form and
  the nature and properties of the materials of which the surface is composed, and to
  indicate the type and magnitude of the processes in operation.
❖ Surface form and pattern of geomorphological processes often influence the choice of
  a site. Hence, geomorphological maps give a rapid appreciation of the nature of the
  ground and thereby help the design of more detailed investigations, as well as focusing
  attention on problem areas.
❖ Such maps recognize landforms along with their delimitation in terms of size and
  shape.
❖ Engineering geomorphological maps therefore should show how surface expression
  will influence an engineering project and should provide an indication of the general
  environmental relationship of the site concerned.
❖ If engineers are to obtain maximum advantage from a geomorphological survey, then
  derivative maps should be compiled from the geomorphological sheets.
❖ Such derivative maps generally are concerned with some aspect of ground conditions,
  such as landslip areas or areas prone to flooding or over which sand dunes migrate.
                   Engineering geomorphological maps
❖ The principal object during an engineering geomorphological survey is the classification
  of every component of the land surface in relation to its origin, present evolution and
  likely material properties.
❖ In other words, a survey should identify the general characteristics of the terrain of an
  area, thereby providing a basis for evaluation of alternative locations and avoidance of
  the worst hazard areas.
❖ What is more, an understanding of the past and present development of an area is
  likely to aid prediction of its behaviour during and after construction operations.
❖ In addition, factors outside the site that may influence it, such as mass movement,
  should be identified and a synopsis of geomorphological development should be
  provided.
❖ Obtaining such information should facilitate the planning of a subsequent site
  investigation.
❖ For instance, it should aid the location of boreholes, and these hopefully will confirm
  what has been discovered by the geomorphological survey.
                            Environmental geology maps
❖ Environmental geology maps have been produced to meet the needs of planners. It is
  important that geological information should be understood readily by the planner and
  those involved in development.
❖ Unfortunately, conventional geological maps often are inadequate for the needs of such
  individuals.
❖ Consequently, maps incorporating geological data are now being produced for planning
  and land-use purposes. Such maps are essentially simple and provide some indication of
  those areas where there are least geological constraints on development, and so they can
  be used by the planner or engineer at the feasibility stage of a project.
❖ The location of exploitable mineral resources also is of interest to planners.
❖ The obvious reason for presenting geological data in a way that can be understood by
  planners, administrators and engineers is that they then can seek appropriate professional
  advice and, in this way, bring about safer and more cost effective development and design
  of land, especially in relation to urban growth and redevelopment.
❖ In fact, two versions of environmental geology maps may be produced, one for the
  specialist and the other for the non-specialist.
               Environmental geology maps
❖ Topics that are included on environmental geology maps vary, but
  may include solid geology, unconsolidated deposits, landslides,
  hydrogeology, mineral resources, contamination, shallow
  undermining and opencast workings, floodplain hazards, etc.
❖ Each aspect of geology can be presented as a separate theme on a
  basic or element map.
❖ Environmental potential maps are compiled from basic data maps.
❖ They present, in general terms, the constraints on development.
❖ They also can present those resources with respect to mineral,
  groundwater, or agricultural potential that might be used in
  development or that should not be sterilized by building over
                Engineering geological maps
❖ Engineering geological maps and plans provide engineers and planners
  with information that will assist them in the planning of land use and in
  the location and construction of engineering structures of all types.
❖ Such maps usually are produced on the scale of 1:10,000 or smaller,
  whereas engineering geological plans, being produced for a particular
  engineering purpose, have a larger scale.
❖ Engineering geological maps may serve a special purpose or a
  multipurpose.
❖ Special-purpose maps provide information on one specific aspect of
  engineering geology, for example, the engineering geological conditions
  at a dam site or along a routeway or for zoning for land use in urban
  development.
❖ Multipurpose maps cover various aspects of engineering geology.
                        Engineering geological maps
❖ Engineering geological maps should be accompanied by cross sections, and
  explanatory texts and legends.
❖ Detailed engineering geological information can be given, in tabular form, on
  the reverse side of the map.
❖ For example, a table of rock and soil characteristics summarizing the various
  rock and soil groups, listing their mode of occurrence, their thickness, their
  structure and their hydrogeological and geotechnical properties, may be
  provided.
❖ More than one map of an area may be required to record all the information
  that has been collected during a survey. In such instances a series of overlays
  or an atlas of maps can be produced.
❖ Preparation of a series of engineering geological maps can reduce the amount
  of effort involved in the preliminary stages of a site investigation, and may
  indeed allow site investigations to be designed for the most economical
  confirmation of the ground conditions.
                        Geotechnical maps
❖ Geotechnical maps and plans indicate the distribution of units, defined in
  terms of engineering properties.
❖ For instance, they can be produced in terms of index properties, rock quality
  or grade of weathering. A plan for a foundation could be made in terms of
  design parameters. The unit boundaries then are drawn for changes in the
  particular property.
❖ Frequently, the boundaries of such units coincide with stratigraphical
  boundaries. In other instances, as for example, where rocks are deeply
  weathered, they may bear no relation to geological boundaries.
❖ Unfortunately, one of the fundamental difficulties in preparing geotechnical
  maps arises from the fact that changes in physical properties of rocks and
  soils frequently are gradational.
❖ As a consequence, regular checking of visual observations by in situ testing
  or sampling is essential to produce a map based on engineering properties.
     Site Investigation:
Geographical Information Systems
   Geographical Information Systems
❖ One means by which the power, potential and flexibility of
  mapping may be increased is by developing a geographical
  information system.
❖ Geographical information systems (GIS) represent a form of
  technology that is capable of capturing, storing, retrieving,
  editing, analyzing, comparing and displaying spatial
  information.
❖ A geographical information system consists of four
  fundamental components, namely, data acquisition and
  verification, data storage and manipulation, data
  transformation and analysis, and data output and
  presentation.
❖ The GIS software is designed to manipulate spatial data in
  order to produce maps, tabular reports or data files for
  interfacing with numerical models.
              Geographical Information Systems
Advantages and disadvantages of GIS
          Geographical Information Systems
❖ An important feature of a GIS is the ability to generate new information
  by the integration of existing diverse data sets sharing a compatible
  referencing system.
❖ Data can be obtained from remote sensing imagery, aerial photographs,
  aeromagnetometry, gravimetry, and various types of maps.
❖ This data is recorded in a systematic manner in a computer database.
❖ Each type of data input refers to the characteristics of recognizable
  point, linear or spacial geographical features.
❖ Details of the features usually are stored in either vector (points, lines
  and polygons) or raster (grid cell) formats.
❖ The manipulation and analysis of data allows it to be combined in
  various ways to evaluate what will happen in certain situations.
    Geographical Information Systems
❖ Currently, there are many different geographical
  information systems available, ranging from public
  domain software for PCs to very expensive systems for
  mainframe computers.
❖ Since most data sets required in environmental or
  engineering geology data processing are still relatively
  small, they can be accommodated readily by inexpensive
  PC based GIS applications
             Geographical Information Systems
❖ An ideal GIS for many engineering geological situations combines
  conventional GIS procedures with image processing capabilities and a
  relational database.
❖ Because frequent map overlaying, modelling and integration with scanned
  aerial photographs and satellite images are required, a raster system is
  preferred.
❖ The system should be able to perform spatial analysis on multiple-input maps
  and connected attribute data tables.
❖ Necessary GIS functions include map overlay, reclassification and a variety of
  other spatial functions incorporating logical, arithmetic, conditional and
  neighbourhood operations.
❖ In many cases, modelling requires the iterative application of similar analyses
  using different parameters.
❖ Consequently, the GIS should allow for the use of batch files and macros to
  assist in performing these iterations.
End of Lecture #6
  Thank You!
Assignment #2
                                           Due Date: 9 March, 2023
Group Assignment: Class Presentations
      ❖ Each group member should write one paged
        summery of his/her contribution
GROUP 1
Elucidate on the following geological materials as used in construction
            1. Building or Dimension Stone
            2. Roofing and Facing Materials
            3. Armourstone
            4. Crushed Rock: Concrete Aggregate
GROUP 2
Elucidate on the following geological materials as used in construction
             1. Road Aggregate
             2. Gravels and Sands
             3. Lime, Cement and Plaster
             4. Clays and Clay Products