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CEGR 493
Design
Week 5
geotechnical
Geotechnical Design Office
Capstone II dashboard

Geotechnical Design Development

Design foundations, earth-retaining systems and slopes with bearing, settlement and stability checks.

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Geotechnical Engineering · Soil properties, foundation selection, bearing, settlement, earth pressure and slope stability.

Deliverable: Geotechnical design package

Minimum tables, figures and equations for Geotechnical Design Development

Tables — at least 7

  • Table — trial sections or sizes considered, with the capacity of each and the selection decision
  • Table — final selected geometry for every element: dimensions, thickness, grade, spacing, elevation
  • Table — bearing capacity and footing or pile size at each location
  • Table — ultimate limit state check summary: demand, capacity, ratio, pass or fail, governing clause
  • Table — serviceability check summary: deflection, crack width, settlement, freeboard or velocity against its limit
  • Table — factors of safety achieved against the factor required, per failure mode
  • Table — settlement (immediate and consolidation) against the tolerable limit

Figures — at least 4

  • Figure — free body diagram of each isolated element, fully labelled with loads, reactions, dimensions and axes
  • Figure — shear and moment (or pressure and velocity) diagrams for each force-carrying element
  • Figure — dimensioned section or plan of each designed element
  • Figure — capacity versus demand plot, interaction diagram, or rating curve as applicable

Equations — at least 8

  • Equation — equilibrium equations written out for each free body (sum of forces and sum of moments, or continuity and energy)
  • Equation — the internal force relations V(x) and M(x), or the momentum/thrust relation, used to compute each element's demand
  • Equation — the resulting demand at the critical section of each element, with numeric substitution
  • Equation — the capacity expression for each element type, shown with full numeric substitution and units
  • Equation — the sizing criterion that sets the final dimension (for example required area, depth or diameter)
  • Equation — each limit state check written as demand over capacity with numbers substituted
  • Equation — the factor of safety calculation for each failure mode checked
  • Equation — sliding, overturning, bearing and global stability factors of safety

Number every table and figure (Table 4.x, Figure 4.x), caption it, and refer to it by number in your text. Number displayed equations and show the substitution with units. These counts are minimums — add whatever else your design needs.

Engineering documentation standard — required in every Chapter 4 subsection

These rules are graded on every subsection. Work that misses them is capped on technical accuracy, exhibits, codes and communication, whatever the quality of the prose.

Code and standard references

  • Every requirement, factor, coefficient, limit and allowable you apply cites the governing document AND the exact section, article or sub-article number — e.g. ACI 318-19 §22.5.5.1, AISC 360-22 Chapter J, Section J3.6, AASHTO LRFD 10th Ed. Article 3.6.1.2.2, ASCE 7-22 §12.8.1, ASTM D2487, state DOT manual section, local stormwater manual chapter.
  • Give the edition or year of every document the first time it appears, then use a consistent short form.
  • Where a code equation is used, quote the equation number (e.g. Eq. 22.5.5.1) next to your displayed equation.
  • Where you depart from a code provision, state the clause you are departing from and the engineering justification.
  • List every code, standard and manual actually used in a Codes and Standards table at the start of the subsection.

Citations for statements

  • Every statement of fact, value taken from elsewhere, material property, soil parameter, rainfall depth, unit cost or published method carries an in-text citation (APA) to its source.
  • Field and lab data cite the report, boring log, gauge, survey file or test number and its date.
  • Manufacturer data cites the product literature and revision date; software results cite the program, version and model file name.
  • Uncited assertions are treated as assumptions and must appear in the assumptions table with a justification.
  • Every in-text citation resolves to a full entry in the reference list.

Step-by-step calculations

  • Structure every calculation the same way: (1) objective, (2) governing code clause, (3) equation in symbolic form with the equation number, (4) definition of each symbol, (5) numerical substitution, (6) result with units, (7) comparison against the limit and the pass/fail statement.
  • Show the substitution line — never jump from the formula to the answer.
  • Number displayed equations sequentially (Eq. 4.1, 4.2, …) and refer to them by number in the text.
  • State the load or flow combination governing each calculation by name.
  • Carry consistent significant figures and round only at the reported result; state the rounding convention once.
  • Present repetitive element checks in a calculation table with one row per element and the same column order throughout.

Free body diagrams and figures

  • Draw a separate free body diagram for each isolated element — no combined sketches standing in for several members.
  • Dimension every FBD: span, depth, thickness, cover, eccentricity, embedment, slope, pipe diameter, wall height — with the dimension lines and values shown.
  • Label every force, pressure, reaction and moment with its symbol, magnitude and units, and show the sign convention and coordinate axes.
  • Show supports and boundary conditions explicitly (pin, roller, fixed, elastic, buoyant, hydrostatic).
  • Accompany each FBD with its shear, moment, thrust, pressure or hydraulic grade diagram at the same scale reference.
  • Number and caption every figure (Figure 4.x) and refer to it by number in the narrative; add a scale or north arrow to plans.

Units and notation

  • Every number in text, tables, figures and equations carries its unit — no bare numbers.
  • Use one unit system throughout (US customary or SI); if both appear, give the converted value in parentheses consistently.
  • Check dimensional homogeneity of each equation and say so — the units of both sides must match.
  • Provide a nomenclature table defining every symbol with its unit.

Checking and verification

  • Every calculation is checked by an independent route — hand check against software, alternative method, order-of-magnitude estimate, or a published worked example — and the check is shown, not just claimed.
  • Report demand-to-capacity ratios and factors of safety against the required values, with the source clause for each required value.
  • Include a verification/checking table: item, method of check, expected, obtained, difference, accept or revise.
  • Sanity-check every result (magnitude, direction, plausibility) and state the conclusion.
  • Record who checked the work and on what date; flag anything still unverified as an open item.
  • State limitations and the range over which the result is valid.

How to complete this section

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Do this next: Read the Geotechnical Design Development lecture and the worked example so you know what "Geotechnical design package" has to contain.

Not sure how to start or how much depth is expected? Read the fully written model example for this deliverable first — it shows the structure, tables and level of justification your advisor grades against.

Geotechnical Design Office — what this workspace teaches

Soil properties, foundation selection, bearing, settlement, earth pressure and slope stability.

  • Reading boring logs and building a design soil profile
  • Soil classification, index properties and strength parameters
  • Shallow foundation bearing capacity (Terzaghi, Meyerhof) and factors of safety
  • Immediate, consolidation and secondary settlement
  • Lateral earth pressure: at-rest, active, passive; Rankine and Coulomb
  • Retaining wall stability: sliding, overturning, bearing, global
  • Deep foundations: pile capacity, skin friction, end bearing, group effects
  • Slope stability methods and required factors of safety
  • Ground improvement and groundwater control

End-of-term milestones

  • Tuesday, November 17, 2026 — Poster printed and ready. 36 in × 48 in poster finalized and printed one week before the November 24 showcase.
  • Wednesday, November 18, 2026 — Final document package uploaded for scoring. Chapters 4–5, calculation package, drawings and appendices uploaded in the app for advisor scoring.
  • Wednesday, November 18, 2026 — Poster presentation to faculty and industry. Wednesday poster session — printed 36 in × 48 in poster presented in person; industry reviewers score communication and impact.
  • Wednesday, November 25, 2026 — Oral presentation and defense (scored). Scored oral presentation and defense held on Wednesday, November 25.
Week 5
geotechnical
Design Development

Geotechnical Design Development

Design foundations, earth-retaining systems and slopes with bearing, settlement and stability checks.

Section B

Engineering story

A real project situation that frames this module

Week 5: geotechnical design development is the item standing between the team and a reviewable subsurface interpretation and foundation recommendation. Design foundations, earth-retaining systems and slopes with bearing, settlement and stability checks. Review stalls on a single line: the team cannot show the record behind apply the approved Capstone I methodology to geotechnical design development.

All inputs traceable to data, code or the approved proposal. Because document assumptions, governing standards and units for every decision, the error does not stay local: it is carried into the design of record that drawings, quantities and cost are generated from, and every downstream product inherits it before anyone notices.

Adjacent property owners, excavation crews and the geotechnical engineer of record carry the consequence. On this module specifically, the exposure runs through produce evidence an advisor can verify independently, and the cost of correction rises every week the subsurface interpretation and foundation recommendation moves closer to issue.

Decisions the engineer must make

  • What record establishes apply the approved Capstone I methodology to geotechnical design development, and is that record in the project data inventory?
  • Which adopted document governs this decision, and who confirmed it applies in this jurisdiction?
  • What is the acceptance criterion for document assumptions, governing standards and units for every decision, and was it written before the result was known?
  • Is the documented procedure valid for the conditions this project actually presents?
  • If the check fails, does the team revise the subsurface interpretation and foundation recommendation or raise a change request against the locked baseline?
Truck-mounted drill rig taking a soil boring beside a bridge, with sample jars in the foreground.

Photo 1. Subsurface investigation: SPT samples and the boring log that every geotechnical number traces back to.

Capstone Studio instructional photograph

Section C

Why this matters

Professional

Geotechnical Design Development is judged on whether an independent engineer can follow your reasoning to the same conclusion. Your geotechnical design package is the evidence that they can.

Technical

Apply the approved Capstone I methodology to geotechnical design development controls the numbers this module hands forward. Document assumptions, governing standards and units for every decision determines whether those numbers remain valid once conditions change.

Safety

The failure mode this module guards against is settlement, bearing failure or slope instability below the finished grade. It reaches people through produce evidence an advisor can verify independently, which is why the safety check is recorded explicitly here rather than inferred from a passing strength or performance check.

Economic

The design of record that drawings, quantities and cost are generated from is priced from this work. Quantities, unit costs and schedule float all trace to apply the approved Capstone I methodology to geotechnical design development; a late correction here is paid for as a change order, not a redline.

Environmental

Environmentally, this module fixes spoil handling, dewatering discharge and groundwater drawdown near the site. Choosing conservatively without justification is not free — the excess shows up as material, energy and land that the project consumes for no measurable gain.

Community

Neighbors whose structures, utilities and streets sit within the zone of influence inherit whatever this module decides — performance, accessibility, cost of ownership and resilience are set here, not at the ribbon-cutting.

Section D

Learning objectives

By the end of this module you will be able to:

  1. 1.Explain apply the approved Capstone I methodology to geotechnical design development, using this project's own conditions rather than a textbook case.
  2. 2.Evaluate document assumptions, governing standards and units for every decision, using this project's own conditions rather than a textbook case.
  3. 3.Interpret produce evidence an advisor can verify independently, using this project's own conditions rather than a textbook case.
  4. 4.Produce geotechnical design package at a standard the geotechnical reviewer for the owner would accept without a second revision cycle.

Section E

Instructional content

Full lecture notes with figures and governing equations

Reading geotechnical design development as a practising engineer

Design foundations, earth-retaining systems and slopes with bearing, settlement and stability checks. That single sentence hides the substance of the module: apply the approved Capstone I methodology to geotechnical design development, and document assumptions, governing standards and units for every decision. Both must be established from project evidence before anything downstream is credible.

In geotechnical engineering, this work is the input to the subsurface interpretation and foundation recommendation. Produce evidence an advisor can verify independently — which is why this page asks you to record the source of every quantity, not just its value. The design of record that drawings, quantities and cost are generated from depends on it.

  • Apply the approved Capstone I methodology to geotechnical design development.
  • Document assumptions, governing standards and units for every decision.
  • Produce evidence an advisor can verify independently.
FIGURE 1FillSand, SPT N=18Soft clay, su=600 psfDense sand / bedrock
Figure 1. Geotechnical Design Development — annotated engineering schematic showing the governing quantities carried through this module.Read this figure alongside the theory block: every labelled quantity must appear in your calculation package with a unit and a source.
Truck-mounted drill rig taking a soil boring beside a bridge, with sample jars in the foreground.

Photo 1. Reading geotechnical design development as a practising engineer in practice — Subsurface investigation: SPT samples and the boring log that every geotechnical number traces back to.

Capstone Studio instructional photograph

Decision logic: the procedure that replaces a closed-form solution

Geotechnical Design Development is governed by a documented procedure rather than a single expression, so the decision logic is the deliverable: what you accept, what you reject, and on what evidence. Apply the approved Capstone I methodology to geotechnical design development.

Write the acceptance criterion before you look at the result. Document assumptions, governing standards and units for every decision — recording the criterion afterwards lets it be shaped to fit the number you happened to get.

Truck-mounted drill rig taking a soil boring beside a bridge, with sample jars in the foreground.

Photo 2. Decision logic: the procedure that replaces a closed-form solution in practice — Subsurface investigation: SPT samples and the boring log that every geotechnical number traces back to.

Capstone Studio instructional photograph

Constraints, adopted standards and the safety case for geotechnical design development

No single code section governs this module, so the constraint set comes from the approved proposal, the owner's requirements and professional practice. Write those constraints down; an unwritten constraint is not enforceable at review.

The safety case is explicit here. The failure mode is settlement, bearing failure or slope instability below the finished grade; the people exposed are adjacent property owners, excavation crews and the geotechnical engineer of record; the control that prevents it is produce evidence an advisor can verify independently together with an independent check by someone who did not perform the work.

  • Controlling criterion for this module: apply the approved Capstone I methodology to geotechnical design development.
  • Adopted reference: confirm with the jurisdiction before you rely on it.
  • Failure mode guarded: settlement, bearing failure or slope instability below the finished grade.
  • Evidence produced: Geotechnical design package.
FIGURE 2Confirm inputs and sourcesSelect governing standardAnalyze / designCheck units and equilibriumIndependent checkAccept or revise
Figure 2. Geotechnical Design Development — professional workflow from inputs through acceptance.The revise loop is normal. Reviewers expect to see it in your version history.
Truck-mounted drill rig taking a soil boring beside a bridge, with sample jars in the foreground.

Photo 3. Constraints, adopted standards and the safety case for geotechnical design development in practice — Subsurface investigation: SPT samples and the boring log that every geotechnical number traces back to.

Capstone Studio instructional photograph

Where this method stops being valid

Every method has a domain of validity. State the range of geometry, loading, material behaviour or flow regime over which your approach holds, and state what you would do instead beyond it.

For this project, the boundary you are most likely to push is produce evidence an advisor can verify independently. If you cross it, say so in writing, bound the error, and carry the limitation into your results chapter. A disclosed limitation is professional practice; a silent extrapolation is not.

Truck-mounted drill rig taking a soil boring beside a bridge, with sample jars in the foreground.

Photo 4. Where this method stops being valid in practice — Subsurface investigation: SPT samples and the boring log that every geotechnical number traces back to.

Capstone Studio instructional photograph

Section F

Engineering workflow

Steps

  1. 1. Assemble the inputs this module needs — apply the approved Capstone I methodology to geotechnical design development; document assumptions, governing standards and units for every decision — each with a unit and a source record.
  2. 2. Confirm which document governs, and record who verified that it applies here.
  3. 3. State the assumptions and the acceptance criterion for apply the approved Capstone I methodology to geotechnical design development.
  4. 4. Execute the documented procedure, recording each judgement and the evidence behind it.
  5. 5. Test the result against produce evidence an advisor can verify independently.
  6. 6. Audit units and run an order-of-magnitude check by hand before the number leaves your desk.
  7. 7. Obtain an independent check from a teammate who did not perform the work, and record their name and date.
  8. 8. Assemble geotechnical design package and submit it to the geotechnical reviewer for the owner for review.

Decision points

  • Is every input behind apply the approved Capstone I methodology to geotechnical design development traceable? If not — stop and collect the record.
  • Does the result satisfy document assumptions, governing standards and units for every decision? If not — revise the work, never the criterion.
  • Would the correction change the design of record that drawings, quantities and cost are generated from? If yes — raise a change-control request before proceeding.
  • Have you ruled out the most common error on this module — all inputs traceable to data, code or the approved proposal?

Quality checklist

  • Documented: apply the approved Capstone I methodology to geotechnical design development
  • Documented: document assumptions, governing standards and units for every decision
  • Documented: produce evidence an advisor can verify independently
  • Governing document cited
  • Procedure steps recorded in order with evidence
  • Acceptance criterion recorded before the result
  • Independent check signed and dated
  • Geotechnical design package attached and named per the course convention

Section H

Interactive visualization

Geotechnical Design Development — step-through

Advance one frame at a time. Each frame adds one engineering decision to the previous state.

Stepwise reveal

Step 1 of 6

Start from the confirmed inputs: geometry, materials, loads or flows, each with a source.

Section I

Applicable codes and standards

Section J

Worked examples

Full engineering solution format

Section K

Common mistakes and how to avoid them

  • All inputs traceable to data, code or the approved proposal
  • Units consistent and dimensionally verified
  • Governing code or standard cited with clause number
  • Independent check performed and initialed
  • Deliverable file attached and named to convention
  • Treating apply the approved Capstone I methodology to geotechnical design development as a given instead of establishing it from a project record.
  • Producing geotechnical design package without showing how document assumptions, governing standards and units for every decision was satisfied.
  • Recording the outcome of this module without recording the judgement and evidence that produced it.
  • Missing produce evidence an advisor can verify independently, which is exactly the path to settlement, bearing failure or slope instability below the finished grade.
  • Designing to the average condition when the governing condition is the controlling one.
  • Freezing a design before the constructability and access review that would have changed it.
  • Ignoring constructability: a design that cannot be built safely is not a completed design.
  • Omitting the safety check because the strength check passed.
  • Referencing figures, tables, or sources that never appear in the reference list.

Section L

Industry case study

Documented failure related to geotechnical design development

A constructed civil works project where this module's decision was made incorrectly or skipped.

Official findings

  • Published investigation identified a breakdown between analysis assumption and constructed condition.

Field observations

  • The controlling assumption was documented nowhere in the design record.
  • No independent check existed at the stage where the error entered the work.

Engineering interpretation

  • Interpretation below is student analysis for instructional purposes, not an official finding.
  • Map the failure to a step in your own workflow and state where your process would have caught it.

Lessons learned

  • Document the assumption, then have someone else check it before it becomes construction.

Source: Summarize the published investigation; cite it in your reference list. Do not reproduce copyrighted report text.

Section M

FE Civil exam connection

Handbook FE Reference Handbook — geotechnical engineering section (record the section number from your handbook edition).

Exam topics

Geotechnical — bearing capacity and settlement

Handbook formulas

    Weak results here feed your FE Civil Academy weak-area queue for targeted practice.

    Question 1 of 2

    Score: 0/2

    In geotechnical design development, which item must be established BEFORE the analysis is run?

    Section N

    Apply it to your project — Geotechnical Design Development

    Complete this using your own capstone project data. Every field is saved to your project record and routed to your advisor with this module's submission.

    Inputs and sources

    Every value needs a traceable source.

    QuantityValueUnitSource / record

    Assumptions and consequences

    AssumptionBasisConsequence if wrong

    Self-check before submission

    Section O

    Design challenge

    Consulting challenge — Geotechnical Design Development

    Your firm has been retained to deliver the geotechnical design development scope for a municipal client on a compressed schedule. Produce the technical position your firm would defend at a public meeting.

    Client request: The client wants a defensible recommendation, the basis of design, and an honest statement of what remains unresolved.

    Constraints

    • Adopted local code edition governs; no exceptions without written variance.
    • Budget and schedule are fixed; scope changes require change control.
    • Public safety and accessibility requirements are non-negotiable.

    Deliverables

    • One-page basis of design
    • Supporting calculation extract
    • Risk and limitation statement

    Evaluation

    • Technical correctness
    • Standard compliance
    • Clarity of engineering judgment
    • Honest treatment of uncertainty

    Section P

    Documentation workspace

    Write the report section for this module in the academic editor

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    Section Q

    File uploads

    Accepted: PDF, DOCX, XLSX, CSV, PNG, JPG, ZIP

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    Section R

    Deliverable and advisor review

    Geotechnical design package

    Engineering design
    Technical analysis
    Code compliance
    Calculation quality
    Drawings

    Submissions route to your assigned faculty advisor and are scored independently by faculty and administrator rubrics.

    Reflection

    What was the hardest engineering judgment in this module, and how did you resolve it?

    Section S

    ABET outcome mapping

    SO 1
    reinforced

    Geotechnical design package with advisor review and dual scoring.

    Assessment: Faculty rubric score and administrator rubric score on this module's submission.

    Rubric: Engineering design · Target: 70% of students at or above 'meets expectations'.

    SO 2
    reinforced

    Geotechnical design package with advisor review and dual scoring.

    Assessment: Faculty rubric score and administrator rubric score on this module's submission.

    Rubric: Engineering design · Target: 70% of students at or above 'meets expectations'.

    Section T

    References and further study

    template

    Geotechnical Design Development — instructor design procedure

    Course template for the calculation package format expected in the final report appendix.

    manual

    NCEES FE Reference Handbook

    Locate the equations used here and note the handbook section for exam recall.

    template

    Advisor meeting agenda item

    Bring the unresolved decision from this module to your next weekly advisor meeting.

    Week 5 · Geotechnical design package
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