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Nepal Engineering Council Β· Registration ExaminationAItE Β· Ch 10
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10

Chapter 10

Project Planning, Design and Implementation

AALL10Β·6 Sub-topicsΒ·60 MCQs
10.1

Engineering Drawings and its Concepts

AALL1001
1
Engineering drawing is the universal graphical language of engineers, used to precisely convey the shape, size, dimensions, and specifications of an object or structure. It provides a common language understood by engineers worldwide regardless of spoken language.
2
Standard Sheet Sizes follow the ISO A-series: A0 (largest, 841Γ—1189 mm) β†’ A1 β†’ A2 β†’ A3 β†’ A4 (210Γ—297 mm, most common). Each smaller size is exactly half the area of the previous (fold an A0 in half to get A1, etc.).
3
Scale on a drawing indicates the ratio of drawing size to actual object size. 1:1 = full size (drawing equals object). 1:2 = reducing scale (drawing is half the object β€” object is larger). 2:1 = enlarging scale (drawing is twice the object β€” object is smaller, e.g., microchip).
4
Line Types: Continuous thick lines = visible edges and outlines. Dashed/hidden lines = edges hidden from the current view. Chain lines (dash-dot) = centre lines and axes of symmetry. Dimension lines = show the measured extent of a feature with arrowheads and figures.
5
Dimensioning communicates precise sizes β€” includes dimension lines, extension lines (project from the object), and dimension figures (the actual measurement). Following standards ensures unambiguous fabrication.
6
Orthographic Projection β€” the standard engineering drawing method. Projects 2D views (front/top/side) onto mutually perpendicular planes, showing true dimensions. Multiple views together describe the complete 3D object. First-angle projection (used in Nepal, Europe, India): the object is between the viewer and the projection plane. Third-angle projection (used in USA, Canada): the projection plane is between the viewer and the object.
7
Isometric Projection β€” a pictorial (3D-looking) drawing where all three principal axes are drawn at 120Β° to each other. Equal foreshortening along all axes (scale factor β‰ˆ 0.816). Gives a 3D impression in a single view but does not show true dimensions. Useful for assembly instructions and product visualisation.
8
Sectional View β€” a cut-away view obtained by imagining the object sliced along a cutting plane. Reveals internal features (holes, cavities, wall thickness) that would otherwise be hidden. Cut surfaces are indicated by hatching (diagonal lines). Particularly important for complex internal structures.
9
Pictorial Projections (oblique, isometric, perspective) show the object in a 3D-like single view, giving a realistic impression β€” useful for non-technical audiences. Isometric is the most common pictorial type in engineering.
10.2

Engineering Economics

AALL1002
1
Engineering Economics applies economic principles to evaluate and compare engineering projects, helping engineers make sound financial decisions. Key focus: choosing among alternatives based on cost, benefit, and time value of money.
2
Time Value of Money β€” a rupee today is worth more than a rupee in the future because money can earn interest. This is the foundation of all engineering economics analysis. Simple interest = PΒ·iΒ·n (P = principal, i = interest rate, n = periods). Compound interest future value: F = P(1 + i)ⁿ β€” interest earns interest; grows exponentially.
3
Discount rate (interest rate) converts future cash flows to their present value. Cash flow diagram β€” a timeline showing all monetary inflows and outflows over the project life.
4
NPV (Net Present Value) β€” sum of all discounted (present value) cash flows over the project life. Decision rule: Accept if NPV > 0 (benefits exceed costs in present value terms); reject if NPV < 0. NPV = 0 means just break even.
5
IRR (Internal Rate of Return) β€” the discount rate at which NPV = 0 (project just breaks even in present value terms). Decision rule: Accept if IRR > MARR. MARR (Minimum Acceptable Rate of Return) β€” the minimum return a project must earn (the 'hurdle rate'); set by management based on cost of capital and risk.
6
Payback Period β€” the time required to recover the initial investment from project cash flows. Simple and easy to understand but ignores time value of money. Discounted Payback β€” payback using discounted cash flows (accounts for time value).
7
B/C Ratio (Benefit-Cost Ratio) β€” ratio of present value of benefits to present value of costs. Accept if B/C > 1 (benefits exceed costs). Used extensively in public project evaluation.
8
Depreciation β€” the reduction in an asset's value over time due to wear, obsolescence, or age. Straight-Line (SL) = (Cost βˆ’ Salvage value) / Useful life β€” equal annual depreciation. Declining Balance (DB) = fixed rate Γ— book value β€” more depreciation early. Sum-of-Years-Digits (SYD) β€” accelerated depreciation.
9
Taxation β€” income tax, VAT (Value Added Tax), and customs duties apply to engineering projects in Nepal and affect project cash flows. Tax benefits from depreciation (depreciation tax shield) reduce taxable income.
10.3

Project Planning and Scheduling

AALL1003
1
A project is a temporary endeavour with a defined start and end, undertaken to create a unique product, service, or result. Project Life Cycle phases: Initiation (define the project, feasibility) β†’ Planning (scope, schedule, cost, risk) β†’ Execution (carry out the work) β†’ Monitoring & Controlling (track progress, manage changes) β†’ Closure (formal completion, lessons learned).
2
Work Breakdown Structure (WBS) β€” a hierarchical decomposition of the total project scope into smaller, manageable work packages. Each level provides more detail. WBS is the foundation for scheduling, cost estimation, and resource planning.
3
Gantt Chart (Bar Chart) β€” a horizontal bar chart where each bar represents a task, showing its start date, end date, and duration on a timeline. Simple, visual, and easy to understand. Shows task dependencies through linking. Does not explicitly show the critical path.
4
CPM (Critical Path Method) β€” a deterministic scheduling technique using single-point time estimates for each activity. Builds a network diagram (AON or AOA), calculates earliest/latest start and finish times, and identifies the Critical Path β€” the longest path through the network, which determines the minimum project duration. Activities on the critical path have zero float (slack).
5
Float (Slack) = total float = the amount of time an activity can be delayed without delaying the project completion date. Free float = delay without affecting the earliest start of successor activities. Critical path activities have zero total float.
6
PERT (Program Evaluation and Review Technique) β€” a probabilistic scheduling technique that uses three time estimates per activity: Optimistic (O) β€” best case, Most Likely (M) β€” expected case, Pessimistic (P) β€” worst case. PERT expected time = (O + 4M + P) / 6 (weighted average, weighting most-likely Γ— 4). Useful when activity durations are uncertain.
7
Resource Levelling β€” adjusts the project schedule to smooth out peaks and troughs in resource demand, keeping resource usage at or below a set limit. May extend the project duration. Resource Smoothing β€” adjusts within the available float only, preserving the project end date.
8
Project Crashing β€” reducing the duration of critical path activities by adding resources (cost–time trade-off). Fast-tracking β€” performing activities in parallel that were originally planned sequentially (increases risk).
10.4

Project Management

AALL1004
1
Project Management applies knowledge, skills, tools, and techniques to project activities to meet requirements β€” completing the project within defined scope, time, cost, and quality constraints.
2
Triple Constraint (Iron Triangle): Scope (what the project delivers) + Time/Schedule (when it will be done) + Cost/Budget (how much it will cost) β€” with Quality at the centre. Changing one constraint typically affects the others. The project manager must balance all three.
3
Risk Management β€” systematic process to identify, analyse, and respond to project risks. Steps: Identify (find potential risks β€” risk register) β†’ Analyse (qualitative: probability Γ— impact matrix; quantitative: expected monetary value) β†’ Respond (strategies: Avoid β€” eliminate the risk; Transfer β€” shift to another party e.g. insurance; Mitigate β€” reduce probability/impact; Accept β€” acknowledge and deal with if it occurs) β†’ Monitor (track risks throughout project).
4
Tender β€” a formal invitation to contractors to submit offers (bids) for a project or supply of goods/services. Bidding process: contractor submits price and technical proposal. Tender Process: Notice/Advertisement β†’ Document Issue β†’ Bid Preparation & Submission β†’ Evaluation β†’ Award.
5
Contract β€” a legally binding agreement between client (owner) and contractor specifying the work, price, timeline, and responsibilities. Types: Lump-sum (Fixed Price) β€” contractor paid a fixed total price regardless of actual costs (contractor bears cost risk). Unit-Rate (Item-Rate) β€” paid per unit of completed work (e.g., per metre of road). Cost-Plus β€” contractor reimbursed for actual costs plus an agreed fee or percentage (client bears cost risk).
6
Project Financing β€” arranging the funds needed to execute a project. Sources: Equity (owner's own funds), Debt (loans/bonds), Grants/Aid (government or international). Financial modelling determines project viability.
7
Information System for Project Management β€” software tools (MS Project, Primavera, Jira) track project progress, costs, schedules, resources, and risks. Provides dashboards and reports for stakeholders.
8
Stakeholder Management β€” identifying all parties affected by the project (clients, users, community, regulators) and managing their expectations and engagement throughout the project lifecycle.
10.5

Engineering Professional Practice

AALL1005
1
Professional Practice covers the ethical, legal, and social responsibilities within which engineers operate. Engineers must balance technical excellence with duties to the public, clients, employers, and the profession.
2
Engineering Ethics β€” the moral principles governing engineers' professional conduct. Core ethical duties: Hold public safety, health, and welfare PARAMOUNT (the highest obligation). Act with honesty, integrity, competence, and objectivity. Practise only within your area of competence. Avoid conflicts of interest. Maintain confidentiality. Avoid bribery and corruption. Give proper credit (do not take credit for others' work).
3
Code of Ethics β€” a formal set of principles published by professional bodies. Engineers must adhere to it. Violations can lead to disciplinary action including suspension or removal of registration.
4
Sustainable Development β€” defined as 'development that meets the needs of the present without compromising the ability of future generations to meet their own needs' (Brundtland Commission, 1987). Engineers must design systems that minimise environmental impact and use resources responsibly.
5
EIA (Environmental Impact Assessment) β€” a systematic process to identify, predict, and evaluate the potential environmental effects of a proposed project or development before approval. Required by law for major projects in Nepal. EIA reports guide decision-making and propose mitigation measures.
6
OHS (Occupational Health and Safety) β€” the field concerned with the safety, health, and welfare of people at work. Engineers must design workplaces and processes that minimise physical hazards, chemical exposure, ergonomic risk, and accidents.
7
NEA (Nepal Engineers' Association) β€” a voluntary professional association (not statutory) representing engineers' professional interests, welfare, and development. Promotes ethical practice, provides networking, and advocates for the profession.
8
Engineers' responsibilities extend in four directions: to the profession (uphold standards), to employers (provide competent service), to clients (fulfil their needs faithfully), and to the public and society (protect safety and welfare).
10.6

Engineering Regulatory Body β€” NEC Acts & Regulations

AALL1006
1
The Nepal Engineering Council (NEC) is the statutory regulatory body established under the Nepal Engineering Council Act, 2055 (1999). It is the government-mandated authority governing engineering education and professional practice in Nepal.
2
NEC Functions: register engineers, maintain professional standards, recognise engineering qualifications (accredit engineering colleges), regulate professional conduct, and conduct the registration (licence) examination for engineering graduates.
3
Registration with NEC is mandatory to legally practise as an engineer in Nepal. NEC issues the Professional Engineer (PE) or Registered Engineer licence after the candidate passes the NEC examination and fulfils experience requirements.
4
NEC vs NEA: NEC = statutory regulator (created by NEC Act 2055; registers, licenses, and disciplines engineers; government body). NEA (Nepal Engineers' Association) = voluntary professional association (promotes engineers' welfare, networking, advocacy; not a statutory body). An engineer may join NEA voluntarily but must register with NEC to practise.
5
NEC Code of Ethics and Conduct β€” the code binds all NEC-registered engineers. Violations (e.g., professional negligence, malpractice, bribery) are investigated and can result in suspension or cancellation of registration. This protects the public by holding engineers accountable.
6
NEC Acts and Regulations define: membership categories, registration procedures, the licensing examination, continuing professional development (CPD) requirements, the code of ethics, and disciplinary procedures. Engineers must stay current with these regulations.
7
Continuing Professional Development (CPD) β€” ongoing learning to maintain and enhance competence. NEC may require engineers to demonstrate CPD for licence renewal. Reflects the dynamic nature of engineering knowledge.
8
Historical context: NEC was established in 1999 (B.S. 2055) to professionalise engineering in Nepal, raise standards, and align with international practice β€” following the model of engineering councils in the UK (Engineering Council), India (Council of Engineering), and other countries.