Module 4: Combined Stresses in Timber and Connections
Learning Objectives
- Evaluate timber members subjected to combined axial force and bending using the applicable NSCP interaction provisions.
- Determine bearing resistance at an angle to grain using Hankinson-type interpolation where applicable.
- Identify fastener, member, and connection-group failure modes before selecting a connection.
- Detail bolts, nails, screws, plates, and hangers with appropriate spacing, edge/end distance, and grain-direction awareness.
- Trace lateral forces through wood diaphragms, chords, collectors, shear walls, hold-downs, and foundations.
- Coordinate structural connections with architectural exposure, moisture, fire, tolerances, and erection sequence.
NSCP Code Basis
Combined-stress member checks are governed principally by NSCP Section 616. Timber connectors and fasteners are governed by Section 619. Architectural timber systems also rely on the framing, sheathing, floor/deck, connection, diaphragm, and shear-wall provisions in Sections 607–614.
Prepare the Adjusted Inputs Before the Interaction Equation
Combined-stress equations are only as correct as the adjusted values placed in them.
For sawn lumber ASD, establish the required chains first:
- tension: ;
- compression pre-stability: , then determine and ;
- bending stability input: form the beam-stability using the factors required by NDS 3.3.3 before calculating ;
- stability modulus: .
Use the factor set for the actual product and design method. A combined-action equation must not silently mix an adjusted value from one load combination with demand from another.
Combined Axial Force and Bending
Columns in frames, posts supporting eccentric beams, truss members with connection eccentricity, and members subjected to wind can carry axial force and bending simultaneously. The interaction equation depends on whether the axial force is tension or compression and, for compression, must reflect stability and second-order effects as required by the governing provision.
A simple linear stress sum can be useful for intuition but must not replace the actual NSCP interaction equation when the code requires a more complete form.
Tension plus bending
For uniaxial bending with axial tension, the NDS-family interaction requires both checks:
and
In this combined-tension check, is the reference bending design value multiplied by all applicable adjustment factors except , while is the reference bending design value multiplied by all applicable adjustment factors except the glulam volume factor . This combined-loading definition must not be confused with the beam-stability intermediate value in NDS 3.3.3, where the stability calculation excludes , , and from its input. For biaxial bending, include the bending contribution about both principal axes as required.
Compression plus bending
For bending about one or both principal axes with axial compression, use the full stability interaction:
The interaction equation is not the only stability condition. Apply the companion NDS 2015 requirements for the actual bending case:
for uniaxial edgewise bending or biaxial bending,
for uniaxial flatwise bending or biaxial bending, and
for biaxial bending. For biaxial bending, also satisfy the independent stability inequality
The denominators in the main interaction equation are stability/moment-amplification terms, so they must remain positive. Check both column axes, beam stability where applicable, and all eccentricity/second-order demand. Eccentric compression creates additional bending and must be included in the applied moment; where eccentric compression governs, follow the applicable eccentric-loading provisions rather than treating as the only required check.
Combined-Action Visualization
Change compression force, eccentricity, member length, section dimensions, and the problem-defined material limits. Use the Isometric, Elevation, Member axis, and Section cutaway presets to inspect the same deterministic model from different views. Toggle the deformed shape, stress contours, neutral axis, section cut, and failure overlay; the deformation is labeled with a fixed visual exaggeration while the reported deflection remains physical. With positive compression, an eccentricity near one-sixth of the depth moves the opposite edge through zero stress and then into tension. The elastic stress field is a mechanics explanation, not the NSCP interaction or second-order check. In the grain-angle explorer below, compare the curve at 0°, 45°, and 90° with its endpoint properties rather than assuming linear interpolation.
Controls
View presets
The opposite edge is in tension because the eccentricity exceeds approximately d/6.
The neutral axis lies inside the section and is shown in purple when the overlay is enabled.
Stress distribution through depth
The chart is normalized only as a graph; its edge values come directly from the member field.
Interaction Ratio Interpretation
An interaction value exactly equal to the code limit only satisfies the mathematical boundary of the check; it does not represent extra reserve. Report the governing utilization and avoid describing a ratio of exactly 1.00 as having a safety margin.
Bearing at an Angle to Grain
Connection forces are often neither perfectly parallel nor perfectly perpendicular to grain. Hankinson-type interpolation provides a rational transition between the two directional strengths for applicable wood-bearing or dowel-bearing properties.
Hankinson Formula
Directional interpolation between parallel- and perpendicular-to-grain resistance for an applicable wood property.
Variables
| Symbol | Description | Unit |
|---|---|---|
| Property parallel to grain. | - | |
| Property perpendicular to grain. | - | |
| Angle between load direction and the grain. | - | |
| Interpolated property at angle theta. | - |
Interactive Exploration
Rotate the force relative to grain and compare the interpolated property with the parallel- and perpendicular-to-grain anchors. Use the visual only for properties where the governing timber provision permits Hankinson interpolation.
Controls
Connection Design Is a System of Limit States
A timber connection can be controlled by fastener yielding, wood bearing, net-section tension, row tear-out, group tear-out, splitting, tension perpendicular to grain, withdrawal, connection eccentricity, plate yielding, or local crushing. The exact set depends on connection type and loading.
Do not size a connection by dividing load by a single fastener capacity and stopping there.
Connection design values and adjustment factors
For a dowel-type fastener carrying lateral load in ASD, the 2015 NDS-family connection framework uses a reference lateral design value and applies only the factors permitted for that fastener and condition. The governing applicability table includes factors such as:
The basic bookkeeping form is therefore connection-specific, for example
For ASD,
For LRFD, the corresponding chain replaces with the connection format-conversion, resistance, and time-effect factors:
Use only the factors that actually apply to the selected dowel-type lateral connection. Withdrawal connections and split-ring, shear-plate, timber-rivet, or other connector families use different applicability chains.
For the NDS 2015 LRFD framework, the general format-conversion and resistance factors for connection design values are and , together with the applicable time-effect factor . Do not substitute member resistance factors such as or into a connection calculation.
and are particularly important in multi-fastener layouts: adding fasteners does not guarantee capacity proportional to fastener count, and reduced end distance/spacing can reduce the reference lateral value. Use the governing NSCP/NDS tables or equations rather than assigning these factors from appearance.
Quantitative connection workflow
Use NSCP Section 619 or an approved product report for the numerical values rather than inventing a generic capacity for a bolt, nail, screw, or hanger.
Spacing and Edge Distance Are Capacity Inputs
Minimum spacing, end distance, and edge distance are structural variables. Every worked connection should either provide these dimensions or state that they were verified from the adopted NSCP table.
Connection and Lateral-Load Workflow
The workflow separates member interaction, fastener action, surrounding-wood failure paths, hardware, and building-system force transfer. Do not approve a connection from a per-fastener capacity alone.
Timber Combined-Action and Connection Workflow
Member interaction, fastener, surrounding-wood, and lateral-system checks for timber connections.
Resolve force path, grain, member actions, and geometry → Combined axial force and bending?; Combined axial force and bending? — Tension + M → Tension + bending: form Ft′, Fb*, Fb** and check interaction; Combined axial force and bending? — Compression + M → Compression + bending: interaction + stability checks; Combined axial force and bending? — Single action → Single action: verify uncoupled tension, compression, or beam limit states; Tension + bending: form Ft′, Fb*, Fb** and check interaction → Connection action?; Compression + bending: interaction + stability checks → Connection action?; Single action: verify uncoupled tension, compression, or beam limit states → Connection action?; Connection action? — Lateral → Lateral fasteners: determine yield modes, group action, and geometry; Connection action? — Withdrawal → Withdrawal: verify model, penetration, and grain condition; Connection action? — Combined → Combined lateral + withdrawal: apply the governing interaction provision; Lateral fasteners: determine yield modes, group action, and geometry → Check net section, splitting, tear-out, bearing, and cross-grain tension; Withdrawal: verify model, penetration, and grain condition → Check net section, splitting, tear-out, bearing, and cross-grain tension; Combined lateral + withdrawal: apply the governing interaction provision → Check net section, splitting, tear-out, bearing, and cross-grain tension; Check net section, splitting, tear-out, bearing, and cross-grain tension → Check hardware, eccentricity, proprietary ratings, and constructability; Check hardware, eccentricity, proprietary ratings, and constructability → Part of diaphragm/shear-wall load path?; Part of diaphragm/shear-wall load path? — Yes → Trace sheathing, chords, collectors, hold-downs, anchors, and foundation; Part of diaphragm/shear-wall load path? — No → Complete member + connection + system load path adequate?; Trace sheathing, chords, collectors, hold-downs, anchors, and foundation → Complete member + connection + system load path adequate?; Complete member + connection + system load path adequate? — Yes → Document governing interaction and connection limit state; Complete member + connection + system load path adequate? — No → Revise member, fastener group, connection detail, or lateral system; Revise member, fastener group, connection detail, or lateral system → Resolve force path, grain, member actions, and geometry
- Resolve force path, grain, member actions, and geometry: terminator
- Combined axial force and bending?: decision
- Tension + bending: form Ft′, Fb*, Fb** and check interaction: process
- Compression + bending: interaction + stability checks: subprocess
- Single action: verify uncoupled tension, compression, or beam limit states: process
- Connection action?: decision
- Lateral fasteners: determine yield modes, group action, and geometry: subprocess
- Withdrawal: verify model, penetration, and grain condition: process
- Combined lateral + withdrawal: apply the governing interaction provision: process
- Check net section, splitting, tear-out, bearing, and cross-grain tension: subprocess
- Check hardware, eccentricity, proprietary ratings, and constructability: process
- Part of diaphragm/shear-wall load path?: decision
- Trace sheathing, chords, collectors, hold-downs, anchors, and foundation: process
- Complete member + connection + system load path adequate?: decision
- Revise member, fastener group, connection detail, or lateral system: process
- Document governing interaction and connection limit state: terminator
Fastener Geometry
Spacing, end distance, edge distance, row spacing, penetration, hole size, and grain direction are structural variables. Tight spacing may reduce group effectiveness or trigger splitting even when the sum of individual fastener capacities appears adequate.
For bolts and dowel-type fasteners, use the NSCP Section 619 geometry and strength provisions applicable to the fastener and connection configuration.
Architectural Connection Detailing
Exposed timber connections should answer these questions before they reach construction documents:
- Where does the force enter and leave the timber?
- Is there adequate wood beyond the fastener group to prevent splitting and tear-out?
- Can bolts actually be installed and tightened?
- Can hidden steel plates drain and dry if moisture enters?
- Will concealed metal heat faster than the surrounding timber in fire?
- Are tolerances realistic for prefabricated or CNC-cut members?
- Does the detail allow shrinkage without unintentionally restraining cross-grain movement?
Connection aesthetics should emerge from a credible force-transfer mechanism.
Diaphragm
A horizontal or sloped structural system that collects and transfers in-plane lateral forces to vertical resisting elements such as shear walls or frames.
Wood Diaphragm Load Path
Roof and floor sheathing can act as a diaphragm only when the panels, fasteners, boundary elements, chords, collectors, and supporting vertical system create a continuous load path. Large atria, stairs, skylights, courtyards, and façade setbacks can interrupt this path and create collector or transfer demands.
Architecture students should identify diaphragm boundaries and major openings at schematic-design stage rather than after the plan is fixed.
Wood shear wall
A vertical lateral-force-resisting assembly in which sheathing and fasteners transfer story shear while boundary members and hold-downs resist overturning actions.
Shear Walls, Chords, Collectors, and Hold-Downs
A shear wall is not just a sheathed partition. Its load path requires adequate panel nailing/fastening, chords or boundary framing, collectors where forces must be dragged around openings, anchorage for sliding, and hold-down action for overturning where required.
Door and window openings, short wall segments, irregular plans, and stacked openings are therefore architectural decisions with structural consequences.
Post-and-Beam and Floor/Roof Framing
NSCP Chapter 6 also contains framing and sheathing provisions because member design and system detailing are inseparable. Joists, rafters, beams, posts, hangers, blocking, sheathing, and wall lines must work together. A beam that is adequate in bending may still create an incomplete load path if the diaphragm, hanger, collector, or support detail is unresolved.
- Combined axial and bending checks must use the applicable NSCP interaction provisions, not a convenient stress sum when the code requires more.
- The Hankinson formula provides the required directional interpolation for applicable properties at an angle to grain.
- Timber connections are governed by multiple fastener, member, and group limit states; spacing and grain direction are structural variables.
- Sections 607–614 make wood framing, sheathing, diaphragms, and shear walls essential parts of an architecture-focused timber course.
- Architectural openings and exposed connection aesthetics must be coordinated with a complete structural load path.
References
- Association of Structural Engineers of the Philippines (ASEP) — National Structural Code of the Philippines, C101-15, Volume I, Seventh Edition (2015) — Governing course reference for timber combined loading, fasteners, connections, framing, diaphragms, and shear-wall load paths; consult the official licensed code for complete provisions and detailing requirements.