Figure 1.
Levy hinged-beam cable dome. (a) Axonometric drawing; (b) Sectional drawing.
Figure 1.
Levy hinged-beam cable dome. (a) Axonometric drawing; (b) Sectional drawing.
Figure 2.
Flowchart of changing the mid-span connection of a ridge beam from hinged to rigid. (a) Connect the two segments with a screw bolt; (b) Start the integral tow-lifting construction with the free rotation of the two segments; (c) After the integral tow-lifting construction, the two segments behave in a straight line; (d) Install the other screw bolt to change the hinged joint to a rigid one.
Figure 2.
Flowchart of changing the mid-span connection of a ridge beam from hinged to rigid. (a) Connect the two segments with a screw bolt; (b) Start the integral tow-lifting construction with the free rotation of the two segments; (c) After the integral tow-lifting construction, the two segments behave in a straight line; (d) Install the other screw bolt to change the hinged joint to a rigid one.
Figure 3.
Calculation graphs for the Levy hinged-beam cable dome. (a) Plane graph; (b) Profile graph.
Figure 3.
Calculation graphs for the Levy hinged-beam cable dome. (a) Plane graph; (b) Profile graph.
Figure 4.
Test model of a Levy hinged-beam cable dome. (a) Plane view; (b) Elevation view; (c) Specimen photograph.
Figure 4.
Test model of a Levy hinged-beam cable dome. (a) Plane view; (b) Elevation view; (c) Specimen photograph.
Figure 5.
Details of the boundary nodes. (a) Support node; (b) Gusset plate.
Figure 5.
Details of the boundary nodes. (a) Support node; (b) Gusset plate.
Figure 6.
Photographs of the HBs. (a) HB-3; (b) HB-1/HB-2.
Figure 6.
Photographs of the HBs. (a) HB-3; (b) HB-1/HB-2.
Figure 7.
Photographs of the cables. (a) OC; (b) RC.
Figure 7.
Photographs of the cables. (a) OC; (b) RC.
Figure 8.
Photographs of the struts. (a) ST-1; (b) ST-2.
Figure 8.
Photographs of the struts. (a) ST-1; (b) ST-2.
Figure 9.
Photographs of the connecting joints. (a) Lower joint; (b) Upper joint.
Figure 9.
Photographs of the connecting joints. (a) Lower joint; (b) Upper joint.
Figure 10.
Photographs of the IRR.
Figure 10.
Photographs of the IRR.
Figure 11.
Test and measurement instrument. (a) DH3816 static strain test system; (b) Tension sensor; (c) Tensiometer; (d) Total station.
Figure 11.
Test and measurement instrument. (a) DH3816 static strain test system; (b) Tension sensor; (c) Tensiometer; (d) Total station.
Figure 12.
Layout of the measuring points of the specimen. (a) Strain points for the hinged beams; (b) Axial force points for the OCs; (c) Axial force points for the ring cables; (d) Displacement points for the struts.
Figure 12.
Layout of the measuring points of the specimen. (a) Strain points for the hinged beams; (b) Axial force points for the OCs; (c) Axial force points for the ring cables; (d) Displacement points for the struts.
Figure 13.
Element types used in the numerical simulation. (a) 3D two-node tension-compression element, LINK8; (b) 3D two-node cable element, LINK10; (c) 3D two-node beam element, BEAM188; (d) Single-node, concentrated mass element, MASS21.
Figure 13.
Element types used in the numerical simulation. (a) 3D two-node tension-compression element, LINK8; (b) 3D two-node cable element, LINK10; (c) 3D two-node beam element, BEAM188; (d) Single-node, concentrated mass element, MASS21.
Figure 14.
The detailed process of accumulative traction-hoisting construction technology. (a) Install outer compression beam, lifting cables, HBs, and IRR, connect the lifting cables to the outer compression beam, and connect the IRR and lifting cables to the HBs; (b) Shorten the lengths of the lifting cables and traction cables to lift the IRR for a short distance, and installing the OC-3s, ST-2s, RC-2, and OC-2s under the HB grid; (c) Lift the IRR for a short distance, install the OC-1s, ST-and RC-1; (d) Lift the IRR by lifting cables and traction cables until the outmost ends of HB-1s are connected to the outer compression beam; (e) Remove lifting cables and traction cables; (f) Tension the OC-1s.
Figure 14.
The detailed process of accumulative traction-hoisting construction technology. (a) Install outer compression beam, lifting cables, HBs, and IRR, connect the lifting cables to the outer compression beam, and connect the IRR and lifting cables to the HBs; (b) Shorten the lengths of the lifting cables and traction cables to lift the IRR for a short distance, and installing the OC-3s, ST-2s, RC-2, and OC-2s under the HB grid; (c) Lift the IRR for a short distance, install the OC-1s, ST-and RC-1; (d) Lift the IRR by lifting cables and traction cables until the outmost ends of HB-1s are connected to the outer compression beam; (e) Remove lifting cables and traction cables; (f) Tension the OC-1s.
Figure 15.
Toolings of the traction-lifting and tensioning technology. (a) Hoister; (b) Gusset plate; (c) Adjustable stainless steel 304 basket screw.
Figure 15.
Toolings of the traction-lifting and tensioning technology. (a) Hoister; (b) Gusset plate; (c) Adjustable stainless steel 304 basket screw.
Figure 16.
Paragraphs of the actual construction process. (a) Assemble the specimen components at the test site; (b) Adjust the lengths of the adjustable screw; (c) Finish the traction and lifting process; (d) Adjust the lengths of basket screws; (e) Mold the entire structure; (f) Fine-tune the specimen.
Figure 16.
Paragraphs of the actual construction process. (a) Assemble the specimen components at the test site; (b) Adjust the lengths of the adjustable screw; (c) Finish the traction and lifting process; (d) Adjust the lengths of basket screws; (e) Mold the entire structure; (f) Fine-tune the specimen.
Figure 17.
Average vertical difference of the top nodes of ST-1, ST-2, and IRR. (a) ST-1; (b) ST-2; (c) IRR.
Figure 17.
Average vertical difference of the top nodes of ST-1, ST-2, and IRR. (a) ST-1; (b) ST-2; (c) IRR.
Figure 18.
Average local deformation of the mid-span temporary hinged joints.
Figure 18.
Average local deformation of the mid-span temporary hinged joints.
Figure 19.
Internal forces of tooling cables during construction. (a) Lifting cable; (b) Traction cable.
Figure 19.
Internal forces of tooling cables during construction. (a) Lifting cable; (b) Traction cable.
Figure 20.
Internal forces of OC-s during construction. (a) OC-1; (b) OC-2; (c) OC-3.
Figure 20.
Internal forces of OC-s during construction. (a) OC-1; (b) OC-2; (c) OC-3.
Figure 21.
Internal forces of the RCs during construction. (a) RC-1; (b) RC-2.
Figure 21.
Internal forces of the RCs during construction. (a) RC-1; (b) RC-2.
Figure 22.
Stresses of HBs. (a) Tensile stress; (b) Bending stress.
Figure 22.
Stresses of HBs. (a) Tensile stress; (b) Bending stress.
Figure 23.
Elevation graphs of the static loading test. (a) Full-span; (b) Half-span.
Figure 23.
Elevation graphs of the static loading test. (a) Full-span; (b) Half-span.
Figure 24.
Photographs of the static loading test. (a) Full-span; (b) Half-span.
Figure 24.
Photographs of the static loading test. (a) Full-span; (b) Half-span.
Figure 25.
Results of the full-span static loading test. (a) Variations of vertical displacement of upper nodes on struts; (b) Variations of local deformation of mid-span joints on HBs; (c) Axial stresses of hinged beams; (d) Bending stresses of HBs.
Figure 25.
Results of the full-span static loading test. (a) Variations of vertical displacement of upper nodes on struts; (b) Variations of local deformation of mid-span joints on HBs; (c) Axial stresses of hinged beams; (d) Bending stresses of HBs.
Figure 26.
Vertical displacement of the upper nodes on the struts for the half-span static loading test. (a) Loading part; (b) Unloading part.
Figure 26.
Vertical displacement of the upper nodes on the struts for the half-span static loading test. (a) Loading part; (b) Unloading part.
Figure 27.
Mid-span joints on the HBs for the half-span static loading test. (a) Loading part; (b) Unloading part.
Figure 27.
Mid-span joints on the HBs for the half-span static loading test. (a) Loading part; (b) Unloading part.
Figure 28.
Axial stresses of the HBs for the half-span static loading test. (a) Loading part; (b) Unloading part.
Figure 28.
Axial stresses of the HBs for the half-span static loading test. (a) Loading part; (b) Unloading part.
Figure 29.
Bending stresses of HBs for the half-span static loading test. (a) Loading part; (b) Unloading part.
Figure 29.
Bending stresses of HBs for the half-span static loading test. (a) Loading part; (b) Unloading part.
Figure 30.
Geiger-Type Ridge-Beam cable dome model.
Figure 30.
Geiger-Type Ridge-Beam cable dome model.
Figure 31.
Comparative results of the vertical displacement on the upper nodes of the struts. (a) Loading part; (b) Unloading part.
Figure 31.
Comparative results of the vertical displacement on the upper nodes of the struts. (a) Loading part; (b) Unloading part.
Figure 32.
Comparative results of the local deformation on the mid-span joints of the HBs. (a) Loading part; (b) Unloading part.
Figure 32.
Comparative results of the local deformation on the mid-span joints of the HBs. (a) Loading part; (b) Unloading part.
Figure 33.
Comparative results of the axial stresses of the HBs. (a) Loading part; (b) Unloading part.
Figure 33.
Comparative results of the axial stresses of the HBs. (a) Loading part; (b) Unloading part.
Figure 34.
Comparative results of the bending stresses of the HBs. (a) Loading part; (b) Unloading part.
Figure 34.
Comparative results of the bending stresses of the HBs. (a) Loading part; (b) Unloading part.
Figure 35.
Comparative results of the cable forces. (a) Loading part; (b) Unloading part.
Figure 35.
Comparative results of the cable forces. (a) Loading part; (b) Unloading part.
Table 1.
Parameters of specimen components.
Table 1.
Parameters of specimen components.
Name | Type | Yield Strength/MPa | Specification/mm |
---|
HB | Steel tube | 300 | Φ32 × 3.5 |
ST | Steel tube | 300 | Φ32 × 3.5 |
IRR | Steel tube | 300 | Φ32 × 3.5 |
RC-1 | Wire rope | 928 | 12 |
RC-2 | Wire rope | 928 | 12 |
OC-1 | Wire rope | 928 | 8 |
OC-2 | Wire rope | 928 | 8 |
OC-3 | Wire rope | 928 | 8 |
Table 2.
Component specifications and initial prestress of the specimen.
Table 2.
Component specifications and initial prestress of the specimen.
Name | Element Section | Initial Pretension Force/N |
---|
HB-1 | Beam188 | 19,878 |
HB-2 | Beam188 | 7657 |
HB-3 | Beam188 | 8456 |
ST-1 | Link8 | −9454 |
ST-2 | Link8 | −2758 |
RC-1 | Link10 | 18,900 |
RC-2 | Link10 | 6402 |
OC-1 | Link10 | 14,558 |
OC-2 | Link10 | 3750 |
OC-3 | Link10 | 2341 |
Table 3.
Analysis steps of the construction process and lengths of different cables after shortened.
Table 3.
Analysis steps of the construction process and lengths of different cables after shortened.
Step | Original Length (mm) |
---|
Traction Cables | Lifting Cables | OC-1 |
---|
Initial Stage | 0 | 220 | 220 | +200 |
Traction-lifting | 1 | 3950 | 180 | +200 |
2 | 3900 | 140 | +200 |
3 | 3850 | 100 | +200 |
4 | 3800 | 60 | +200 |
5 | 3750 | 20 | +200 |
6 | 3725 | 0 | +200 |
Demolish traction cables and lifting cables | 7 | - | - | +200 |
Tension OC-1s | 8 | - | - | +140 |
9 | - | - | +100 |
10 | - | - | +60 |
11 | - | - | +20 |
12 | - | - | +5 |
13 | - | - | 0 |
Table 4.
Loading values for the full-span loading test (unit: N).
Table 4.
Loading values for the full-span loading test (unit: N).
Loading Step | OC-1 | OC-2 | OC-3 |
---|
1 | 370 | 233 | 200 |
2 | 740 | 466 | 400 |
3 | 1110 | 699 | 600 |
4 | 1480 | 932 | 800 |
Table 5.
Loading values for the half-span loading test (unit: N).
Table 5.
Loading values for the half-span loading test (unit: N).
Loading Step | Region | OC-1 | OC-2 | OC-3 |
---|
1 | Loading part | 370 | 233 | 200 |
Unloading part | 0 | 0 | 0 |
2 | Loading part | 740 | 466 | 400 |
Unloading part | 0 | 0 | 0 |
3 | Loading part | 1110 | 699 | 600 |
Unloading part | 0 | 0 | 0 |
4 | Loading part | 1480 | 932 | 800 |
Unloading part | 0 | 0 | 0 |
Table 6.
Variations in the average cable forces of the full-span static loading test (unit: kN).
Table 6.
Variations in the average cable forces of the full-span static loading test (unit: kN).
Measuring Point No. | Before Load | Step 1 | Step 2 | Step 3 | Step 4 | Unloading |
---|
RC-1 | Simulation value | 18.9 | 19.10 | 19.34 | 19.74 | 20.60 | 18.90 |
Experiment value | 17.28 | 17.94 | 18.67 | 19.48 | 20.96 | 17.28 |
Deviation (%) | −8.6% | −6.1% | −3.5% | −1.4% | 1.7% | −8.6% |
RC-2 | Simulation value | 6.40 | 6.44 | 6.49 | 6.60 | 6.88 | 6.40 |
Experiment value | 6.79 | 7.06 | 7.07 | 7.20 | 7.57 | 5.95 |
Deviation (%) | 6.0% | 9.6% | 8.9% | 8.9% | 10.0% | −7.1% |
OC-1 | Simulation value | 14.56 | 14.80 | 15.12 | 15.47 | 15.76 | 14.56 |
Experiment value | 13.53 | 15.66 | 14.89 | 14.46 | 14.64 | 13.53 |
Deviation (%) | −7.1% | 5.8% | −1.5% | −6.5% | −7.1% | −7.1% |
OC-2 | Simulation value | 3.75 | 3.813 | 3.93 | 3.99 | 4.133 | 3.75 |
Experiment value | 4.06 | 4.09 | 3.90 | 4.00 | 4.23 | 4.06 |
Deviation (%) | 8.3% | 7.3% | −0.9% | 0.4% | 2.3% | 8.3% |
OC-3 | Simulation value | 2.34 | 2.26 | 2.23 | 2.12 | 2.130 | 2.34 |
Experiment value | 2.20 | 2.07 | 2.21 | 2.03 | 2.18 | 2.20 |
Deviation (%) | −6.1% | −8.3% | −0.6% | −4.3% | 2.2% | −6.1% |
Table 7.
Variations in the average cable forces of the half-span static loading test (unit: kN).
Table 7.
Variations in the average cable forces of the half-span static loading test (unit: kN).
Measuring Point No. | Before Load | Step 1 | Step 2 | Step 3 | Step 4 | Unloading |
---|
Loading part RC-1 | Simulation value | 18.90 | 20.23 | 21.56 | 22.59 | 24.07 | 18.90 |
Experiment value | 17.29 | 18.42 | 19.97 | 20.38 | 22.16 | 17.43 |
Deviation (%) | −8.5 | −8.9 | −7.4 | −9.7 | −7.9 | −7.8 |
Unloading part RC-1 | Simulation value | 18.9 | 17.57 | 16.68 | 16.08 | 15.29 | 18.90 |
Experiment value | 17.33 | 16.40 | 15.95 | 15.17 | 13.97 | 17.12 |
Deviation (%) | −8.3 | −6.6 | −4.4 | −5.7 | −8.7 | −9.4 |
Loading part RC-2 | Simulation value | 6.40 | 6.78 | 7.28 | 7.59 | 8.20 | 6.40 |
Experiment value | 6.01 | 6.22 | 6.47 | 6.74 | 6.99 | 6.60 |
Deviation (%) | −6.2 | −8.2 | −11.2 | −11.1 | −14.8 | 3.0 |
Unloading part RC-2 | Simulation value | 6.40 | 6.14 | 5.84 | 5.62 | 5.26 | 6.40 |
Experiment value | 5.89 | 5.77 | 5.63 | 5.75 | 5.79 | 5.84 |
Deviation (%) | −8.0 | −5.9 | −3.6 | 2.3 | 9.9 | −8.8 |
Loading part OC-1 | Simulation value | 14.56 | 14.90 | 15.31 | 15.66 | 16.10 | 14.56 |
Experiment value | 13.53 | 14.69 | 15.40 | 15.42 | 17.26 | 13.66 |
Deviation (%) | −7.1 | −1.4 | 0.56 | −1.56 | 7.2 | 6.9 |
Unloading part OC-1 | Simulation value | 14.56 | 14.47 | 14.38 | 14.35 | 14.22 | 14.56 |
Experiment value | 13.54 | 13.08 | 15.03 | 15.34 | 15.24 | 13.33 |
Deviation (%) | −7 | −9.6 | 4.5 | 6.9 | 7.2 | −8.4 |
Loading part OC-2 | Simulation value | 3.75 | 4.07 | 4.49 | 4.73 | 5.25 | 3.75 |
Experiment value | 4.11 | 4.51 | 4.73 | 5.06 | 4.90 | 4.10 |
Deviation (%) | 9.6 | 10.8 | 5.4 | 6.9 | −6.8 | 9.3 |
Unloading part OC-2 | Simulation value | 3.75 | 3.50 | 3.20 | 2.99 | 2.62 | 3.75 |
Experiment value | 3.91 | 3.74 | 3.43 | 2.93 | 2.49 | 3.86 |
Deviation (%) | 4.3 | 6.8 | 7.4 | −2.3 | −5.3 | 2.8 |
Loading part OC-3 | Simulation value | 2.34 | 2.36 | 2.44 | 2.43 | 2540 | 1.79 |
Experiment value | 2.21 | 2.06 | 2.25 | 2.44 | 2682 | 1.94 |
Deviation (%) | −5.7 | −12.8 | −7.5 | 0.6 | 5.6 | 8.6 |
Unloading part OC-3 | Simulation value | 2.34 | 2.24 | 2.14 | 2.04 | 1955 | 2.34 |
Experiment value | 2.19 | 2.44 | 2.24 | 1.89 | 1728 | 2.09 |
Deviation (%) | −6.5 | 8.9 | 4.5 | −7.6 | −11.6 | −10.9 |
Table 8.
Initial prestress of the Geiger-Type Ridge-Beam cable dome model.
Table 8.
Initial prestress of the Geiger-Type Ridge-Beam cable dome model.
Name | Element Section | Initial Pretension Force/N |
---|
HB-1 | Beam188 | 21,332 |
HB-2 | Beam188 | 13,935 |
HB-3 | Beam188 | 10,875 |
ST-1 | Link8 | −7362 |
ST-2 | Link8 | −2764 |
RC-1 | Link10 | 18,812 |
RC-2 | Link10 | 8397 |
OC-1 | Link10 | 16,216 |
OC-2 | Link10 | 7004 |
OC-3 | Link10 | 3031 |