| name | value-engineering |
| description | Value engineering (VE) — function analysis (FAST diagram, primary/secondary/basic functions), value index V = F/C, 40 inventive principles (TRIZ), job plan phases (information, function analysis, creative, evaluation, development, presentation), Pareto analysis for cost reduction targets, tear-down analysis, should-cost modeling, design-to-cost (DTC), value stream mapping, and aerospace/automotive/construction VE applications. |
| metadata | {"priority":7,"promptSignals":{"phrases":["value engineering","value analysis","FAST diagram","function analysis","design to cost","TRIZ"],"minScore":3}} |
Value Engineering (VE) — Complete Skill
Value Engineering Fundamentals
Definition and Value Concept
Value Engineering (VE): systematic method to improve the value of products and services by examining function relative to cost
Originated: Lawrence Miles, GE, 1947 (originally "Value Analysis" for purchased materials)
Value definition:
V = F / C [Value = Function delivered / Cost of providing it; maximize V]
Where Function = performance the customer actually needs; Cost = total lifecycle cost (not just purchase)
Types of value:
Use value: functions or services enabling product to work
Esteem value: properties making product desirable (aesthetics, prestige)
Exchange value: money or other goods for which product can be traded
Cost value: sum of labor, material, overhead to produce
Value equation:
V ↑ can be achieved by: increasing F with same C; maintaining F while reducing C; increasing F faster than C; or reducing C faster than F decreases
Common Value Problems ("Unnecessary Costs")
Value mismatches to find:
Over-engineering: more performance than needed (tolerance too tight, grade too high, factor of safety too large)
Under-function identification: functions the customer doesn't value but pays for
Wrong process: expensive process when cheaper achieves same function
Lack of standardization: custom parts where standard would work
Poor supplier leverage: single-source when alternatives exist
Over-specification: military-spec tolerances on commercial products
FAST Diagram (Function Analysis System Technique)
Construction
FAST diagram: logical map of functions organized by how/why questions
Left-to-right: "How is function achieved?" → lower-level functions
Right-to-left: "Why is this function performed?" → higher-level functions
Function categories:
Basic function: primary reason product exists; cannot be eliminated without destroying product purpose
Secondary function: supports basic function; potentially eliminable or replaceable
Aesthetic function: improves appeal; customer may or may not value
FAST template:
Higher-order function ← Basic function ← [How?] Supporting functions ← [How?] Detailed functions
Example: FAST for a bolted joint:
Why? → Maintain assembly [higher-order]
Basic function: Transfer load; Prevent separation
Secondary: Align components; Distribute load; Resist corrosion; Provide access
Aesthetic: Improve appearance (chrome plating)
Function verbalization rule: two-word function: Active verb + Measurable noun
Good: "Transfer force"; "Seal fluid"; "Conduct electricity"; "Provide stiffness"
Bad: "Bolt assembly" (noun + noun); "Strong" (not a function)
VE Job Plan (SAVE International 6-Phase)
Phase 1: Information
Objective: understand product, function, cost breakdown, customer requirements
Activities:
- Obtain cost model: material, labor, overhead by component
- Determine function of each component: complete function analysis worksheet
- Identify "worth" (minimum cost to provide function): estimate from first principles
- Calculate value index = worth / cost; low VI = high VE potential
Should-cost model:
Estimate what a component should cost based on materials + direct labor + standard overhead
Compare to actual cost: difference = potential VE savings
Example: Sheet metal bracket actual cost = $4.20; should-cost = $1.80; gap = $2.40/unit → VE target
Pareto analysis:
Plot components by cost: top 20% of components typically represent 80% of cost → focus VE on these
Also: plot by function gap (VI < 0.5) → functionally poor value deserves attention
Phase 2: Function Analysis
Complete function analysis for all components:
Component → Function → Classification (Basic/Secondary) → Cost → Worth → Value Index
| Component | Function | Type | Cost [$] | Worth [$] | VI |
|---|
| Housing | Enclose mechanism | Secondary | 8.50 | 3.20 | 0.38 |
| Shaft | Transmit torque | Basic | 2.10 | 1.80 | 0.86 |
| Bearing | Support rotation | Basic | 4.20 | 3.50 | 0.83 |
| Cover | Protect components | Secondary | 5.10 | 0.80 | 0.16 |
→ Cover (VI = 0.16) and Housing (VI = 0.38) are priority VE targets
Phase 3: Creative (Idea Generation)
Brainstorming rules: no criticism during idea generation; quantity over quality; build on ideas
TRIZ (Theory of Inventive Problem Solving) — 40 Inventive Principles:
Key principles relevant to mechanical engineering:
- Segmentation: divide into independent parts; make interchangeable; increase fragmentation
- Taking out (Extraction): extract only necessary part
- Local quality: non-homogeneous structure/function; different conditions per zone
- Asymmetry: use asymmetry instead of symmetry if not fully symmetric
- Merging: bring objects/operations closer in space or time; combine parallel parts
- Universality: multi-function object eliminates need for others
- Nesting: place one object inside another
- Counterweight: compensate for weight or force with another
- Preliminary action: carry out required changes in advance; pre-arrange for convenient action
- Spheroidality-curvature: use curves, spheres, rotations
- Dynamism: make characteristics adaptable; divide into moving parts; increase flexibility
- Convert harm into benefit: use harmful factors to positive effects
- Cheap short-living: replace expensive durable object with cheaper short-life collection
- Mechanics substitution: replace mechanical means with optical, acoustic, thermal, olfactory
- Parameter changes: change state, concentration, flexibility, temperature
Contradiction matrix (TRIZ): identify technical contradiction (improving X worsens Y) → look up matrix cell → suggests inventive principles
Phase 4: Evaluation
Weighted criteria matrix:
List evaluation criteria: function achievement, cost, weight, manufacturability, reliability, risk
Assign weights (sum = 100%): cost 30%, function 25%, reliability 20%, weight 15%, risk 10%
Score each VE idea against each criterion (1–10)
Weighted score = Σ (weight × score)
Select ideas with highest weighted score and within risk tolerance
Rough-order-of-magnitude (ROM) cost estimate for top ideas:
Material cost + labor cost estimate from process analysis
Cross-check: should-cost model for proposed alternative design
Phase 5: Development
Detailed engineering analysis of top VE alternatives:
FEA/CFD analysis to verify function not compromised
Tolerancing review: ensure manufacturing is achievable at lower cost
Supplier identification: alternative materials, processes, vendors
Risk assessment: technical risk, schedule risk, supplier risk
Value Change Analysis:
Savings: unit cost reduction × annual volume × product life
Investment: engineering, tooling, qualification testing
Payback = Investment / Annual savings; target < 12 months for manufacturing VE
Phase 6: Presentation
VE report contents:
Executive summary: total savings potential [$]; implementation priority
Function model (FAST): with cost overlaid
Top VE ideas (10–20): function preserved, cost reduced, implementation risk
Implementation plan: phasing, resource requirements, ownership, timing
Lifecycle cost comparison: current vs. proposed (not just unit cost)
Design-to-Cost (DTC)
Design-to-cost (DoD/aerospace): set cost as design constraint equal to performance
Cost target set from: competitive price, should-cost model, market analysis
DTC process:
- Establish total program target cost (life cycle or unit production)
- Allocate to subsystems/components
- Track cost during design vs. allocated target (cost estimating relationships, CERs)
- VE/trade studies when actual exceeds target
- Cost tracking integrated with design reviews (PDR, CDR)
Should-cost modeling:
Material cost = weight × $/kg for each material
Labor cost = operation time × rate
Overhead = labor × factor
Profit = (material + labor + overhead) × margin
Compare to vendor quote → identify discrepancy for negotiation or VE
Value Stream Mapping (Manufacturing VE)
VSM: map current-state process from customer order to delivery
Identify: value-added steps (customer pays for); non-value-added (waste)
7 wastes (TIMWOOD): Transportation, Inventory, Motion, Waiting, Overprocessing, Overproduction, Defects
Future-state map: eliminate waste; reduce lead time; continuous flow
Lead time ratio: VAT/total lead time; benchmark: 5–25% typical; target > 50% with lean
Standards and References
| Standard/Reference | Scope |
|---|
| SAVE International | VE methodology; Value Methodology Standard 2015 |
| SAE AS9100D | Quality management in aerospace (VE integration) |
| DOD 5000.4-M | Cost analysis guidance (DTC) |
| Altschuller "Creativity as an Exact Science" | TRIZ foundation |
| Miles "Techniques of Value Analysis and Engineering" | Original VE reference |
Output
Provide: product/system description (product; annual volume; current unit cost [$]; key functions served; customer value drivers), cost breakdown (Pareto of cost by component/subassembly; top 5 cost drivers [$ and %]; identify VI < 0.5 targets), FAST function analysis (key functions; basic vs. secondary classification; component-function-cost matrix; VI for each), VE target identification (components with VI < 0.5; should-cost gap [$]; total opportunity [$ × annual volume]), creative ideas (5–10 VE ideas per target component: alternative material/process/geometry/supplier; how function is preserved), evaluation (weighted score matrix; top 3 ideas advancing to development), development (estimated cost of top idea [$]; FEA/testing needed; tooling investment [$]; qualification risk; payback period [months]), lifecycle comparison (current lifecycle cost vs. proposed [$]; sensitivity to volume), implementation roadmap (phase 1/2/3 changes; who owns each; estimated completion; expected savings per year), and applicable reference (SAVE International standard; Miles for methodology; TRIZ principles for idea generation).