LAMINATED BEAM SLAB AND PREPARATION METHOD THEREOF
20230349155 · 2023-11-02
Inventors
Cpc classification
E04C5/08
FIXED CONSTRUCTIONS
International classification
E04C5/08
FIXED CONSTRUCTIONS
Abstract
Disclosed are a laminated beam slab and a preparation method thereof, belonging to the technical field of building structures. The laminated beam slab includes an intermediate layer, where the intermediate layer has protective layers arranged on both upper and lower sides, and the intermediate layer and the protective layers are provided with reinforcing cages inside; partition plates are arranged between the intermediate layer and an upper protective layer as well as a lower protective layer, the intermediate layer forms a mutually occluding mortise-and-tenon shape with a side opposite to the protective layers; the reinforcing cages have prestressing tendons and stirrups arranged penetrating through the partition plates in the intermediate layer and the protective layers; the preparation method includes steps of: prefabricating partition plates; binding reinforcing cages; installing formworks; fixing the reinforcing cages; and casting an intermediate layer and protective layers.
Claims
1. A laminated beam slab, comprising: an intermediate layer, wherein the intermediate layer has protective layers arranged on both upper and lower sides, and the intermediate layer and the protective layers are provided with reinforcing cages inside; partition plates are arranged between the intermediate layer and an upper protective layer as well as a lower protective layer, wherein the partition plates are laid in an undulating pattern between the intermediate layer and the protective layers; the intermediate layer matches a shape of the partition plates on both sides against the protective layers, forming a mutually occluding mortise-and-tenon shape; the reinforcing cages have prestressing tendons and stirrups arranged penetrating through the partition plates in the intermediate layer and the protective layers.
2. The laminated beam slab according to claim 1, wherein the reinforcing cages comprise main reinforcements, prestressing tendons and stirrups, the main reinforcements are longitudinally arranged along a length direction of the laminated beam slab, and the main reinforcements are arranged in plural and are in parallel arrangement respectively in the protective layers on the upper and lower sides; the prestressing tendons are arranged in parallel with the main reinforcement; the stirrups are wrapped outside the main reinforcement and the prestressing tendons penetrate through the partition plates; and the stirrups are arranged in plural spaced along a length direction of the main reinforcement.
3. The laminated beam slab according to claim 1, wherein the intermediate layer is cast from ordinary concrete, and the protective layers are cast from ultra-high performance concrete.
4. The laminated beam slab according to claim 1, wherein the partition plates are profiled steel sheets, provided in a waveform including but not limited to a shape of trapezoid, rectangle, sine curve or polygonal line.
5. The laminated beam slab according to claim 4, wherein the profiled steel sheets have a crest spacing of 115, 175, 210 or 230 millimeters and a crest height of 35 or 75 millimeters; and each prestressing tendon penetrates a center of the crest height of the profiled steel sheets.
6. The laminated beam slab according to claim 2, wherein the prestressing tendons are fiber reinforced polymer prestressing tendons, tensioned by a pre-tensioning method to a designed prestressing value.
7. The laminated beam slab according to claim 2, wherein the main reinforcements are fiber reinforced polymer reinforcements or hot-rolled ribbed bar 400 reinforcements; and the intermediate layer is poured using ordinary concrete with strength not lower than C40.
8. The laminated beam slab according to claim 7, wherein the stirrups are hot-rolled ribbed bar 400 reinforcements with a diameter of 6-8 millimeters, and four corners of the stirrups bind the main reinforcements arranged longitudinally; and the stirrups are cast in the upper and lower protective layers and the intermediate layer.
9. A preparation method of the laminated beam slab according to claim 1, comprising steps as follows: step 1, prefabricating partition plates, comprising pre-drilling reserved channels for prestressing tendons as well as stirrups in the partition plates; step 2, binding reinforcing cages, comprising inserting the prestressing tendons through corresponding pre-drilled channels and fixing onto a pre-tensioning prestressing table; bending the stirrups after passing through the pre-drilled channels first, and finally tying longitudinal main reinforcements at a top and a bottom; step 3, installing formworks, wherein a protective layer thickness of not less than 30 millimeters is reserved between the formworks and the reinforcing cages; step 4, fixing the reinforcing cages, comprising arranging the prestressing tendons at design positions, tensioning the prestressing tendons to a designed value through the pre-tensioning prestressing table, and fixing the reinforcing cages at a position; and step 5, casting, comprising casting an upper protective layer and a lower protective layer with the ultra-high performance concrete, then casting an intermediate layer with ordinary concrete, smoothing and curing until reaching 75 percent or more of s design strength, and then removing the formworks.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0022] The present application is further described in detail with reference to the attached drawings and specific embodiments.
[0023]
[0024]
[0025]
[0026]
[0027]
[0028]
[0029]
DETAILED DESCRIPTION OF THE EMBODIMENTS
[0030] The following provides a clear and thorough description of the technical schemes in the embodiments of the present application in conjunction with the accompanying drawings in the embodiments of the present application. It is clear that the embodiments described are only a part of the embodiments of the present application and not all of them. Based on the embodiments in the present application, all other embodiments obtained by ordinary technicians in the field without creative labor belong to the scope of protection of the present application.
[0031] Referring to
[0032] As can be seen from
[0033] In one embodiment of the present application, the partition plates 3 are profiled steel sheets, provided in a waveform including but not limited to a shape of trapezoid, rectangle, sine curve or polygonal line, where the profiled steel sheets have a crest spacing of 115, 175, 210 or 230 millimeters (mm) and a crest height of 35 or 75 mm; and each prestressing tendon 4 penetrates a center of the crest height of the profiled steel sheets. The profiled steel plate is determined according to the cross-sectional dimensions of the laminated beam plate, whereas models such as YX 35-115-690, YX 35-175-700, YX 75-210-840 and YX 75-230-690 in GB/T 12755-91 can be used for the specific design.
[0034] As a preferred scheme, the prestressing tendons 4 are fiber reinforced polymer (FRP) prestressing tendons, tensioned by a pre-tensioning method to a designed prestressing value. Prestressing tendons penetrate through the protective layers 1 of UHPC concrete, the intermediate layer 2 of ordinary concrete and the partition plates 3, then pre-stressing is applied to them to tightly join the three together and ensure that the overall strength of the laminated beam meets the requirements.
[0035] In actual construction, the main reinforcements 5 are FRP reinforcements or hot-rolled ribbed bar (FIRE) 400 reinforcements, and the intermediate layers 2 are cast with ordinary concrete with strength not lower than C40; the stirrups 6 are HRB400 reinforcements with a diameter of 6-8 mm; four corners of the stirrups 6 bind the main reinforcements 5 arranged longitudinally; and the stirrups 6 are cast in the upper and lower protective layers 1 and the intermediate layer 2.
[0036] The present application also provides a preparation method of the laminated beam slab as shown in
[0042] The laminated beam prepared according to the present application has a concrete structure as follows:
[0043] beam with section size of 600 mm*300 mm, span of 3,000 mm, protective layers of top and bottom with casting height of 150 mm and UHPC concrete, intermediate layer with thickness of 300 mm and ordinary C40 concrete, profiled steel sheets of YX75-230-690, longitudinal reinforcements of 4Φ12, stirrups of Φ8 @ 120, and the prestressing tendons with diameter of 12 mm, all of which are HRB400 reinforcements; see
[0044] As a comparative model, the large span flexural members used in current projects have the following specific structures:
[0045] beam with section size of 600 mm*300 mm, span of 3,000 mm, protective layer of bottom with casting height of 300 mm and UHPC concrete, an upper protective layer and intermediate layer with thickness of 300 mm and ordinary C40 concrete, longitudinal reinforcements of 4Φ12, stirrups of Φ8 @ 120, and the prestressing tendons with diameter of 12 mm, all of which are HRB400 reinforcements; see
[0046] A comparison of the stress-strain in the bottom span unit of the beam prepared according to the present application with that of the comparative model is shown in
[0047] To sum up, the laminated beam slab provided by the present application uses UHPC concrete in the upper and lower layers where the force is strong, making full use of the excellent tensile strength, compressive strength and cracking resistance of UHPC concrete compared with that of ordinary concrete, and the use of ordinary concrete in the intermediate layer where the force is relatively small can reduce the cost of the laminated beam and enable the laminated beam to have good working performance and durability as a whole, meeting the current requirements for low cost and large span of the laminated beam. With profiled steel sheets cast between the three layers of concrete, the concrete intersection of the beams and columns forms a mutually occluding mortise-and-tenon shape, and mutual compounding of contact parts is strengthened by inserting prestressing tendons through the two kinds of concrete and profiled steel sheets, therefore ensuring the integrity and strengthening the anti-cracking performance of the structure, which further helps to reduce the cross-sectional size of the laminated beam, reduce the self-weight and better meet the engineering requirements.
[0048] Many specific details have been set out in the above description to facilitate a full understanding of the present application, but other ways of implementation of the present application different from those described herein are possible, and similar extensions can be made by those skilled in the art without contradicting the content of the present application, so that the present application is not limited by the specific embodiments disclosed above.