Adhesive-and Metal-Free Assembly Techniques for Prefabricated Multi-Layer Engineered Wood Products: A Review on Wooden Connectors
Abstract
:1. Background
2. Joining Multi-Layer Timber with Wooden Dowels
2.1. General Fundamentals of Wooden-Dowel Assembly Techniques
2.1.1. Untreated Hardwood Dowel
2.1.2. Thermo-Hydro-Mechanical (THM) Densified Wooden Dowel
2.1.3. Rotary Welding of Wooden Dowels
2.2. Dowel-Laminated-Timber (DLT)
2.2.1. DLTs Assembled with Untreated Wooden Dowel
2.2.2. DLTs Assembled with THM-Densified Wooden Dowels
- (1)
- Namari et al. [108] carried compression, tension, bending, embedment, yield moment, push-out shear, and impact tests to evaluate the mechanical properties of THM-densified wood and the results provide important information which engineers can use for further application of THM-densified wood in load-bearing elements and wood-based connectors for use in timber structures. THM-densification significantly improved the strength and stiffness properties of low-density softwoods such as pine and spruce. Densified wood dowels showed a higher yield moment capacity than beech or oak dowels.
- (2)
- Timber–connection applications (beam–beam, beam–column connections) made from GLT, or DLT fastened by steel or densified wooden dowels and reinforcement plates were tested [109,110,111,112]. The mean failure load and rotational stiffness of the densified dowel connections was about 20% lower than the values for equivalent steel connections, but compared to un-densified wooden dowels and plates, this was a high-strength performance. Thanks to the high shear strength of densified wooden dowels, and the improved bending and embedment properties of the reinforcement plate compared to those of the undensified wood, the test results indicated that increasing number of densified dowels and increasing the thickness of the densified reinforcement plates increases the moment-carrying capacity but leads to brittle failure of the joint.
- (3)
- El-Houjeyri et al. [94] manufactured three-layer DLT beams of Norway spruce lamellae with undensified European oak or densified Norway spruce dowels. Densified wooden dowels showed a greater strength, stiffness, and ductility than the un-densified oak dowels during monotonic push-out shear tests. Under four-point bending, reference GLT beams exhibited twice the stiffness and a 30% higher load-carrying capacity than the DLT beams. Nevertheless, the DLT beams exhibited higher ductility than the GLT beams because of the dowel shearing which involves high-energy dissipation.
- (4)
- Sotayo et al. [86] tested DLT beams and DCLT made of Scots pine lamellae with densified Norway spruce, Scots pine, or European beech dowels. In the four-point bending test, there were various failure modes of DLT beams and DCLT including tensile failure in the bottom layer, fractures around inherent knots, and the propagation of damage along the pre-drilled holes. No visible damage to the dowels themselves was observed. The stiffness and strength of DLT beams and DCLT were significantly lower than those of reference GLT beams and CLT, but greater ductility of DLT beams and DCLT was reported. Dowel-insertion angle, and dowel species had no significant influence on the stiffness of DLT beams and DCLT. The larger diameter of the densified dowels and the greater number of dowels per unit area resulted in an increased stiffness of the DLT beams and of the DCLT.
- (5)
- Bai et al. [95] studied DLT beams and CDLT made of European oak lamellae with densified Norway spruce dowels to evaluate the vibrational serviceability comfort and they found that DLT panels exhibited a satisfactory vibrational performance compared to the Eurocode 5 vibrational serviceability design requirements.
- (6)
- Mehra et al. [84] investigated the influence of accelerated ageing under cyclic dry and moist climate conditions on the pull-out resistance of densified Scots pine and undensified European beech dowel-type fasteners, and showed that the shape-recovery of the densified dowels increased the pull-out strength and improved the long-term performance of the dowel-to-lamellae connection (Figure 13).
- (7)
- Tran et al. [96,97] developed models to predict the thermomechanical behaviour during a fire resistance test of wood components assembled with THM-densified Norway spruce dowels and showed that the THM-densification of dowels leads to an increase in the thermal conductivity coefficient, the heat release rate, the thermal inertia while reducing charring rate and the mass loss compared to undensified wood.
- (8)
- Several studies have focused on optimising DLT performance by studying the influence of the mechanical properties of dowels and layers, the thickness of the assembled layers, the spacing of dowels (or the number of rows of dowels), the diameter of dowels through both experimental testing and finite element (FE) models, on the mechanical performance of the assembly [82,83,85,112,113]. Typically, increasing the number of dowels per unit area (reducing dowel spacing) leads to an increase in stiffness of the DLT, whereas a larger dowel diameter (pre-drilled hole diameter) results in a reduction in the net area of lamellae to resist a tensile force under bending and reduces the load-carrying capacity of the DLT. Higher stiffness and strength of DLT were achieved when a smaller number of lamellae were used, leading to fewer interlayer partial composite actions.
2.2.3. DLT Assembled by Rotary-Welded Wooden Dowels
2.3. Design Rules
2.4. Manufacturers of DLT
3. Other Adhesive-Free Assembling Techniques
3.1. Wooden Nail
3.2. Dovetailed Panels
3.3. Linear Wood-Welding Technology
4. Conclusions and Future Research Directions
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
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Lamellae Species | Dowel Species | Dowel Type | Test | Comparison with Equivalent GLT | Reference |
---|---|---|---|---|---|
Larch | Beech | Untreated | Four-point bending test | Yes | Plowas et al. [17] |
Spruce | Beech | Untreated | Monotonic and cyclic tests | Yes | Sandhaas and Schädle [78] |
Fir, pine, spruce | Hickory | Untreated | Pull-out resistance and four-point bending tests | Yes | Ogunrinde [79] |
Pine | Beech | Untreated | Three-point bending | Yes | Dourado et al. [80] |
Spruce | Oak, salvaged plywood or LVL | Untreated | Push-out shear and four-point bending tests | No | Derikvand et al. [81] |
Pine | Pine | Densified | Four-point bending test | Yes | Sotayo et al. [82] |
Pine | Pine | Densified | Push-out shear and four-point bending tests | Yes | Bouhala et al. [83] |
Pine | Pine | Densified | Long-term pull-out resistance test | No | Mehra et al. [84] |
Spruce | Spruce | Densified | Four-point bending test | Yes | O’Ceallaigh et al. [85] |
Pine | Beech, pine, spruce | Densified | Four-point bending test | Yes | Sotayo et al. [86] |
Spruce | Spruce | Densified | Bending creep test | Yes | Bouhala et al. [87] |
Beech, spruce | Beech | Rotary welding | Push-out shear and four-point bending tests | No | Bocquet et al. [88] |
Spruce | Beech | Rotary welding | Four-point bending test | No | O’Loinsigh et al. [66,89] |
Maple | Maple | Rotary welding | Three-point bending | Yes | Belleville et al. [90] |
Fir, spruce | Beech | Rotary welding | Push-out shear and three-point bending tests | No | Girardon et al. [91] |
Lamella Species | Dowel Species | Dowel Type | Test | Comparison with Equivalent CLT | Reference |
---|---|---|---|---|---|
Pine | Pau-roxo | Untreated | Push-out shear and three-point bending test | Yes | Pereira et al. [92] |
Fir, pine, spruce | Poplar | Densified | Push-out shear and four-point bending tests | Yes | Xu et al. [93] |
Oak | Spruce | Densified | Push-out shear and four-point bending tests | Yes | El-Houjeyri et al. [94] |
Oak | Spruce | Densified | Vibrational serviceability test | No | Bai et al. [95] |
Oak | Spruce | Densified | Fire resistance test | Yes | Tran et al. [96,97] |
Pine | Beech, pine, | Densified | Four-point bending test | Yes | Sotayo et al. [86] |
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Han, L.; Kutnar, A.; Sandak, J.; Šušteršič, I.; Sandberg, D. Adhesive-and Metal-Free Assembly Techniques for Prefabricated Multi-Layer Engineered Wood Products: A Review on Wooden Connectors. Forests 2023, 14, 311. https://doi.org/10.3390/f14020311
Han L, Kutnar A, Sandak J, Šušteršič I, Sandberg D. Adhesive-and Metal-Free Assembly Techniques for Prefabricated Multi-Layer Engineered Wood Products: A Review on Wooden Connectors. Forests. 2023; 14(2):311. https://doi.org/10.3390/f14020311
Chicago/Turabian StyleHan, Lei, Andreja Kutnar, Jakub Sandak, Iztok Šušteršič, and Dick Sandberg. 2023. "Adhesive-and Metal-Free Assembly Techniques for Prefabricated Multi-Layer Engineered Wood Products: A Review on Wooden Connectors" Forests 14, no. 2: 311. https://doi.org/10.3390/f14020311
APA StyleHan, L., Kutnar, A., Sandak, J., Šušteršič, I., & Sandberg, D. (2023). Adhesive-and Metal-Free Assembly Techniques for Prefabricated Multi-Layer Engineered Wood Products: A Review on Wooden Connectors. Forests, 14(2), 311. https://doi.org/10.3390/f14020311