Building insulation foam glass surface toughening soaking and drying integrated equipment

By designing an integrated soaking and drying equipment, the problem of uneven soaking of foam glass was solved, achieving stable soaking and uniform drying of foam glass, improving production efficiency and product quality, and meeting the environmental protection requirements of the high-end market.

CN120590070BActive Publication Date: 2026-03-31THE FIRST COMPARY OF CHINA EIGHTH ENG BUREAU LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2025-06-10
Publication Date
2026-03-31

AI Technical Summary

Technical Problem

The density range of traditional building insulation foam glass is 120-500 kg/m³, while the density of elastic liquid is significantly higher than this range. This causes buoyancy to be generated during the soaking process, resulting in uneven soaking and affecting the toughening effect.

Method used

An integrated soaking and drying device for toughening the surface of building insulation foam glass was designed. It includes a soaking mechanism and a drying mechanism. Through precise mechanical structure and hydraulic push rod clamping, stable soaking and uniform drying of foam glass are achieved, ensuring the safety and accuracy of the soaking process.

Benefits of technology

It improves the production efficiency and surface quality of foam glass, reduces manual intervention, lowers production costs, and meets the environmental protection requirements and safety standards of the high-end product market.

✦ Generated by Eureka AI based on patent content.

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Abstract

The application relates to the technical field of foam glass, in particular to a building thermal insulation foam glass surface toughening, soaking and drying integrated equipment, which comprises a soaking mechanism, the top of the soaking mechanism is provided with a drying mechanism, the soaking mechanism comprises a base, the inner side of the top front side of the base is fixedly connected with a foam glass connecting assembly, the drying mechanism comprises a push-pull frame, the top and the bottom of the inner side front side of the push-pull frame are fixedly connected with drying assemblies, the soaking mechanism and the drying mechanism are arranged, integrated operation processes of foam glass soaking, toughening, pushing and soaking and post-soaking drying are realized, and the production efficiency is greatly improved. In the soaking and toughening stage, the stability and safety of the foam glass in the soaking process are ensured through accurate mechanical structure design and stable clamping of a hydraulic push rod, the design of the pushing and soaking mechanism realizes automatic operation of the foam glass from placement to soaking, and manual intervention is reduced.
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Description

Technical Field

[0001] This invention relates to the field of foam glass technology, and more specifically, to an integrated equipment for toughening, soaking, and drying the surface of building insulation foam glass. Background Technology

[0002] Foam glass is a porous material processed through specific techniques. It has excellent thermal insulation properties, as well as good sound insulation, fire resistance, and moisture resistance. In the construction industry, foam glass is often used as an insulation material, which can effectively improve the energy efficiency of buildings and reduce energy consumption. At the same time, foam glass also has high strength and toughness, which can meet the mechanical requirements of building materials. In addition, through special processing, the surface of foam glass can be toughened to further improve its durability and service life.

[0003] According to patent document CN104671674A, a method for toughening the surface of foamed glass for building insulation is disclosed, which includes steps such as preparing an elastic liquid, immersing the foamed glass, and drying the foamed glass. The key steps are: preparing the elastic liquid, immersing the foamed glass for building insulation for 1 second to 10 minutes, and then drying the foamed glass after immersion in the elastic liquid. This method overcomes the fragility of foamed glass during processing, transportation, and installation, as well as the environmental pollution it causes, and increases the product strength.

[0004] Currently, the production process of foam glass mainly involves finely crushing and uniformly mixing raw materials such as crushed glass, foaming agent, modified additives, and foaming accelerators, followed by high-temperature melting, foaming, and annealing. However, this material is easily damaged during transportation and installation, posing a serious threat to the environment and human health during processing and construction. It is difficult to meet high environmental protection standards and the demands of the high-end product market. In addition, the density range of traditional building insulation foam glass is 120-500 kg / m³, while the density of elastic liquid is significantly higher than this range. This makes it easy for foam glass to generate buoyancy during soaking, resulting in uneven soaking and thus affecting its toughening effect. Summary of the Invention

[0005] To overcome the above-mentioned defects of the prior art, the present invention provides an integrated equipment for toughening, soaking and drying of building insulation foam glass. The technical problem to be solved by the present invention is that the density range of traditional building insulation foam glass is 120-500 kg / m³, while the density of elastic liquid is significantly higher than this range. This makes it easy for foam glass to generate buoyancy during the soaking process, resulting in uneven soaking and thus affecting its toughening effect.

[0006] To solve the above-mentioned technical problems, the technical solution adopted by the present invention is as follows:

[0007] The integrated equipment for toughening, soaking, and drying the surface of building insulation foam glass includes a soaking mechanism, and a drying mechanism is provided on the top of the soaking mechanism;

[0008] The soaking mechanism includes a base, and a foam glass connecting assembly is fixedly connected to the inner side of the front side of the top of the base;

[0009] The drying mechanism includes a push-pull frame, and drying components are fixedly connected to the top and bottom of the inner front side of the push-pull frame.

[0010] As a further embodiment of the present invention: the base includes a connecting plate, and supporting bottom rods are fixedly connected to the left and right sides of the bottom of the connecting plate. Connecting plate guide grooves are opened on the left and right sides of the top of the connecting plate. A motor connecting block is fixedly connected to the middle of the rear side of the connecting plate. A motor is fixedly connected to the top of the motor connecting block. A lead screw is fixedly connected to the output end of the motor. A U-shaped connecting rod is fixedly connected to the front side of the connecting plate. Side plates are fixedly connected to the left and right sides of the front side of the U-shaped connecting rod. U-shaped connecting cross blocks are fixedly connected to the top and bottom of the inner sides of the two side plates. A soaking pool is fixedly connected to the front side of the two side plates.

[0011] As a further aspect of the present invention: the foam glass connecting assembly includes two concave hinge blocks, the outer sides of the two concave hinge blocks are fixedly connected to the inner sides of the left and right sets of U-shaped connecting blocks, the front sides of the two concave hinge blocks are fixedly connected to concave support blocks, the rear middle of the two concave hinge blocks are fixedly connected to columnar upright connecting blocks, the inner walls of the two columnar upright connecting blocks are slidably connected to columnar uprights, the outer walls of the two columnar uprights are fitted with springs on one side of the bottom of the columnar upright connecting blocks, and the bottom of the two columnar uprights are fixedly connected to inverted L-shaped abutments, the rear side of the inverted L-shaped abutments being a beveled surface.

[0012] As a further embodiment of the present invention: push blocks are fixedly connected to the top of each of the two columnar uprights, bidirectional hinge rods are rotatably connected to the outer walls of each of the two push blocks, rotating plates are rotatably connected to the top of each of the two bidirectional hinge rods, the bottom of the front side of the outer walls of each of the two rotating plates are rotatably connected to the inner walls of the two concave hinge blocks, concave guide plates are fixedly connected to the top of each of the two rotating plates, and the bottom of each of the two rotating plates is triangular.

[0013] As a further embodiment of the present invention: A connecting block is fixedly connected to the top of each of the two concave guide plates; a horizontal connecting rod is fixedly connected to the inner side of each of the two connecting blocks; a dual-axis motor is fixedly connected to the top of each horizontal connecting rod; conical teeth are fixedly connected to the left and right output ends of each of the dual-axis motors; second conical teeth mesh with the outer walls of each of the two conical teeth; columnar gear rods are fixedly connected to the bottom of each of the two second conical teeth; the bottom ends of each of the two columnar gear rods extend to the bottom of the two connecting blocks and are fixedly connected to gears; long strip-shaped push-pull rods are slidably connected to both sides of the inner walls of the two concave guide plates; rack rods are fixedly connected to the inner sides of each of the two long strip-shaped push-pull rods; the outer walls of each of the two rack rods mesh with two gears; and foam glass placement plates are fixedly connected to the front sides of the two sets of long strip-shaped push-pull rods.

[0014] As a further embodiment of the present invention: the front and rear sides of the left and right sides of the foam glass placement plate are provided with placement plate guide grooves, the middle of the left and right sides of the foam glass placement plate are fixedly connected with hydraulic push rods, the inner walls of the placement plate guide grooves on the left and right sides of the foam glass placement plate are slidably connected with top clamping plate sliders, the tops of the four top clamping plate sliders are fixedly connected with top clamping plates, the middle of the left and right sides of the top clamping plates are fixedly connected to the tops of two hydraulic push rods, and the inner walls of the foam glass placement plate and the top clamping plates are both designed with filter screens.

[0015] As a further embodiment of the present invention: the push-pull frame includes a push-pull frame abutment plate, the front side of the push-pull frame abutment plate is a beveled surface with an inclination opposite to that of the rear side of the inverted L-shaped abutment plate, the left and right sides of the bottom of the push-pull frame abutment plate are fixedly connected to inverted L-shaped connecting rods, the outer walls of the two inverted L-shaped connecting rods are slidably connected to the inner walls of the two connecting plate guide grooves opened in the connecting plate, the inner middle of the two inverted L-shaped connecting rods is fixedly connected to a transmission crossbar, the middle of the bottom of the transmission crossbar is threadedly connected to the rear side of the outer wall of the lead screw, the top of the front side of the two inverted L-shaped connecting rods is fixedly connected to a U-shaped connecting side rod, and the top and bottom of the front side of the two U-shaped connecting side rods are fixedly connected to a horizontal connecting front rod.

[0016] As a further embodiment of the present invention: both drying components include a drying component top plate, and both sides of the inner left and right sides of the two drying component top plates are fixedly connected to a drying component bottom plate. Both sides of the two sets of drying component bottom plates away from the drying component top plate are fixedly connected to an inverted U-shaped columnar horizontal guide rod connecting rod. Both sides of the inner side of the two sets of inverted U-shaped columnar horizontal guide rod connecting rods away from the drying component bottom plate are fixedly connected to a columnar horizontal guide rod. Both sides of the inner middle of the two drying component top plates are fixedly connected to a U-shaped rotating rod connecting plate. Both sides of the inner middle of the two U-shaped rotating rod connecting plates are rotatably connected to a drying component rotating rod. The outer ends of both drying component rotating rods extend to the outer side of the two drying component top plates.

[0017] As a further embodiment of the present invention: connecting rods are fixedly connected to the four outer sides of the top plates of the two drying components; connecting top plates are fixedly connected to the side of the two sets of connecting rods away from the top plates of the drying components; drying gas chambers are fixedly connected to the right sides of the two connecting top plates; pipes are fixedly connected to the front sides of the two drying gas chambers; L-shaped connecting plates of the drying components are fixedly connected to the left and right sides of the outer sides of the two connecting top plates; the front sides of the two sets of L-shaped connecting plates of the drying components are fixedly connected to the two sides of the rear side of the two horizontal connecting rods; and the ends of the two pipes away from the drying gas chambers are fixedly connected to the front sides of the two drying plates.

[0018] As a further aspect of the present invention: a second motor is fixedly connected to the middle of the outer side of each of the two drying component top plates; a third conical tooth is fixedly connected to the output end of each of the two second motors; the outer walls of each of the two third conical teeth mesh with a fourth conical tooth; the sides of each of the two fourth conical teeth near the top plate of the drying component are fixedly connected to the outer ends of the two drying component rotating rods; the inner ends of each of the two drying component rotating rods extend to the side of the two U-shaped rotating rod connecting plates away from the top plate of the drying component and are fixedly connected to a rotating block; a swing control block is rotatably connected to the rear side of the inner side of each of the two rotating blocks; a swing rod is slidably connected to the outer wall of each of the two swing control blocks; and the outer walls of each of the two swing control blocks are slidably connected to the inner side of the outer side of the two swing rods. The two swing rods are rotatably connected to the rear sides of the outer sides of the two U-shaped connecting plates. A sleeve connecting rod is fixedly connected to the front inner side of each of the two swing rods. A sleeve is rotatably connected to the front inner side of each of the two sleeve connecting rods. The inner walls of the two sleeves are slidably connected to the outer walls of the two front columnar horizontal guide rods. A T-shaped sleeve is slidably connected to the inner walls of the two sleeves. The front inner walls of the two T-shaped sleeves are slidably connected to the outer walls of the two front columnar horizontal guide rods. A drying plate is fixedly connected to the rear ends of the two drying plates. The same T-shaped sleeve as the front one is fixedly connected to the rear sides of the two rear T-shaped sleeves. The inner walls of the two rear T-shaped sleeves are slidably connected to the outer walls of the two rear columnar horizontal guide rods.

[0019] The beneficial effects of this invention are as follows:

[0020] This invention, by incorporating an immersion mechanism and a drying mechanism, achieves an integrated workflow for immersion toughening, pushing for immersion, and post-immersion drying of foam glass, significantly improving production efficiency. During the immersion toughening stage, precise mechanical structure design and stable clamping by hydraulic push rods ensure the stability and safety of the foam glass during immersion. The design of the pushing immersion mechanism automates the process from placement to immersion, reducing manual intervention and improving operational accuracy. After immersion, the drying mechanism, through a reciprocating drying plate, evenly and rapidly applies drying gas to the surface of the foam glass, effectively removing residual toughening liquid and improving the surface quality. Furthermore, the equipment is compact, easy to operate, and convenient to maintain, reducing production costs and providing strong technical support for the production of building insulation materials. Attached Figure Description

[0021] Figure 1 This is a schematic diagram of the main three-dimensional structure of the present invention;

[0022] Figure 2 This is a schematic diagram of the three-dimensional separation structure of the main body of the present invention;

[0023] Figure 3 This is a three-dimensional structural diagram of the soaking mechanism of the present invention;

[0024] Figure 4 This is a schematic diagram of the three-dimensional separation structure of the soaking mechanism of the present invention;

[0025] Figure 5 This is a schematic diagram of the three-dimensional structure of the base of the present invention;

[0026] Figure 6 This is a schematic diagram of the three-dimensional separation structure of the foam glass connecting assembly of the present invention;

[0027] Figure 7 This is a three-dimensional structural diagram of the drying mechanism of the present invention;

[0028] Figure 8 This is a schematic diagram of the three-dimensional separation structure of the drying mechanism of the present invention;

[0029] Figure 9 This is a schematic diagram of the three-dimensional structure of the push-pull bracket of the present invention;

[0030] Figure 10 This is a schematic diagram of the three-dimensional separation structure of the drying component of the present invention.

[0031] In the diagram: 1. Immersion mechanism; 11. Base; 111. Connecting plate; 112. Connecting plate guide groove; 113. Support base rod; 114. Motor connecting block; 115. Motor; 116. Lead screw; 117. U-shaped connecting rod; 118. Side plate; 119. U-shaped connecting cross block; 1110. Immersion tank; 12. Foam glass connecting assembly; 121. Concave hinge block; 122. Concave support block; 123. Columnar upright connecting block; 124. Columnar upright; 125. Spring 126. Inverted L-shaped stop plate; 127. Push block; 128. Two-way hinge rod; 129. Rotating plate; 1210. Concave guide plate; 1211. Connecting block; 1212. Horizontal connecting rod; 1213. Dual-axis motor; 1214. Conical tooth; 1215. Second conical tooth; 1216. Cylindrical gear rotating rod; 1217. Gear; 1218. Long strip push-pull rod; 1219. Rack rod; 1220. Foam glass placement plate; 1221. Placement plate guide groove; 222. Hydraulic push rod; 1223. Top clamping plate slider; 1224. Top clamping plate; 2. Drying mechanism; 21. Push-pull frame; 211. Push-pull frame backing plate; 212. Inverted L-shaped connecting upright; 213. Transmission crossbar; 214. U-shaped connecting side bar; 215. Horizontal connecting front bar; 22. Drying assembly; 221. Drying assembly top plate; 222. Drying assembly bottom side plate; 223. Inverted U-shaped columnar horizontal guide rod connecting rod; 224. Columnar horizontal guide rod; 225. U-shaped rotating rod connection. 226. Drying component rotating rod; 227. Rotating block; 228. Swing control block; 229. Swing rod; 2210. Sleeve connecting rod; 2211. Sleeve; 2212. T-shaped sleeve; 2213. Drying plate; 2214. Connecting top plate; 2215. Connecting upright; 2216. Drying gas chamber; 2217. Pipe; 2218. Second motor; 2219. Third conical tooth; 2220. Fourth conical tooth; 2221. Drying component L-shaped connecting plate. Detailed Implementation

[0032] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.

[0033] like Figure 1-2 As shown, the present invention provides an integrated equipment for toughening, soaking, and drying the surface of building insulation foam glass, including a soaking mechanism 1 and a drying mechanism 2 disposed on the top of the soaking mechanism 1.

[0034] like Figure 3-10As shown, the soaking mechanism 1 includes a base 11. A foam glass connecting assembly 12 is fixedly connected to the inner side of the front top of the base 11. The base 11 includes a connecting plate 111. Support rods 113 are fixedly connected to the left and right sides of the bottom of the connecting plate 111. Connecting plate guide grooves 112 are provided on the left and right sides of the top of the connecting plate 111. A motor connecting block 114 is fixedly connected to the middle of the rear side of the connecting plate 111. A motor 115 is fixedly connected to the top of the motor connecting block 114. A lead screw 116 is fixedly connected to the output end of the motor 115. A U-shaped connecting rod 117 is fixedly connected to the front side of the connecting plate 111. Side plates 118 are fixedly connected to the left and right sides of the front side of the U-shaped connecting rod 117. The top and bottom of the inner sides of the two side plates 118 are fixedly connected to... The U-shaped connecting horizontal block 119 has a soaking pool 1110 fixedly connected to the front side of the two side plates 118. The foam glass connecting assembly 12 includes two concave hinge blocks 121. The outer sides of the two concave hinge blocks 121 are fixedly connected to the inner sides of the left and right sets of U-shaped connecting horizontal blocks 119. The front side of the two concave hinge blocks 121 is fixedly connected to a concave support block 122. The rear middle of the two concave hinge blocks 121 is fixedly connected to a columnar upright connecting block 123. The inner walls of the two columnar upright connecting blocks 123 are slidably connected to columnar uprights 124. The outer walls of the two columnar uprights 124 are fitted with springs 125 on one side of the bottom of the columnar upright connecting block 123. The bottom of the two columnar uprights 124 is fixedly connected to an inverted L-shaped abutment plate 126. The rear side of 126 is beveled. Push blocks 127 are fixedly connected to the tops of the two columnar uprights 124. Two bidirectional hinge rods 128 are rotatably connected to the outer walls of the two push blocks 127. Rotating plates 129 are rotatably connected to the tops of the two bidirectional hinge rods 128. The bottom of the front side of the outer walls of the two rotating plates 129 are rotatably connected to the inner walls of the two concave hinge blocks 121. Concave guide plates 1210 are fixedly connected to the tops of the two rotating plates 129. The bottoms of the two rotating plates 129 are triangular. Connecting blocks 1211 are fixedly connected to the tops of the two concave guide plates 1210. Horizontal connecting rods 1212 are fixedly connected to the inner sides of the two connecting blocks 1211. A dual-axis motor 1213 is fixedly connected to the top of the horizontal connecting rod 1212. Both the left and right output ends of 1213 are fixedly connected to conical teeth 1214. The outer walls of the two conical teeth 1214 mesh with second conical teeth 1215. The bottoms of the two second conical teeth 1215 are fixedly connected to columnar gear rods 1216. The bottom ends of the two columnar gear rods 1216 extend to the bottoms of the two connecting blocks 1211 and are fixedly connected to gears 1217. The inner walls of the two concave guide plates 1210 are slidably connected to long strip push-pull rods 1218. The inner sides of the two long strip push-pull rods 1218 are fixedly connected to rack rods 1219. The outer walls of the two rack rods 1219 mesh with the two gears 1217. The front sides of the two sets of long strip push-pull rods 1218 are fixedly connected to foam glass placement plates 1220.The foam glass placement plate 1220 has placement plate guide grooves 1221 on both the front and back sides of its left and right sides. Hydraulic push rods 1222 are fixedly connected to the middle of both sides of the foam glass placement plate 1220. Top clamping plate sliders 1223 are slidably connected to the inner walls of the placement plate guide grooves 1221 on both sides of the foam glass placement plate 1220. Top clamping plates 1224 are fixedly connected to the tops of the four top clamping plate sliders 1223. The middle of both sides of the top clamping plates 1224 are fixedly connected to the tops of the two hydraulic push rods 1222. The inner walls of both the foam glass placement plate 1220 and the top clamping plates 1224 are designed with filter screens. The drying mechanism 2 includes a push-pull frame 21. Drying components 22 are fixedly connected to the top and bottom of the front inner side of the push-pull frame 21. The pull frame 21 includes a push-pull frame support plate 211. The front side of the push-pull frame support plate 211 is a beveled surface with an inclination opposite to that of the rear side of the inverted L-shaped support plate 126. Inverted L-shaped connecting rods 212 are fixedly connected to the left and right sides of the bottom of the push-pull frame support plate 211. The outer walls of the two inverted L-shaped connecting rods 212 are slidably connected to the inner walls of the two connecting plate guide grooves 112 opened in the connecting plate 111. A transmission crossbar 213 is fixedly connected to the middle of the inner side of the two inverted L-shaped connecting rods 212. The middle of the bottom of the transmission crossbar 213 is threaded to the rear side of the outer wall of the lead screw 116. U-shaped connecting side rods 214 are fixedly connected to the top of the front side of the two inverted L-shaped connecting rods 212. A horizontal connecting front rod 21 is fixedly connected to the top and bottom of the front side of the two U-shaped connecting side rods 214. 5. Both drying components 22 include a top plate 221. Bottom plates 222 are fixedly connected to the left and right sides of the inner sides of the top plates 221. Inverted U-shaped columnar horizontal guide rods 223 are fixedly connected to the front and rear sides of the bottom plates 222 away from the top plate 221. Columnar horizontal guide rods 224 are fixedly connected to the inner sides of the inverted U-shaped columnar horizontal guide rods 223 away from the bottom plate 222. U-shaped rotating rod connecting plates 225 are fixedly connected to the front side of the inner middle of the top plates 221. Rotating rods 226 are rotatably connected to the inner walls of the middle of the two U-shaped rotating rod connecting plates 225. The outer ends of the rotating rods 226 extend to... On the outer sides of the top plates 221 of the two drying components, connecting rods 2215 are fixedly connected to all four sides of the outer sides of the top plates 221 of the two drying components. Connecting top plates 2214 are fixedly connected to the sides of the two connecting rods 2215 away from the top plates 221 of the drying components. Drying gas chambers 2216 are fixedly connected to the right sides of the two connecting top plates 2214. Pipes 2217 are fixedly connected to the front sides of the two drying gas chambers 2216. L-shaped connecting plates 2221 of the drying components are fixedly connected to the left and right sides of the outer sides of the two connecting top plates 2214. The front sides of the two sets of L-shaped connecting plates 2221 are fixedly connected to the rear sides of the two horizontal connecting rods 215. A second motor 2218 is fixedly connected to the middle of the outer sides of the top plates 221 of the two drying components.The output ends of the two second motors 2218 are fixedly connected to third conical teeth 2219. The outer walls of the two third conical teeth 2219 mesh with fourth conical teeth 2220. The sides of the two fourth conical teeth 2220 near the top plate 221 of the drying assembly are fixedly connected to the outer ends of the two rotating rods 226 of the drying assembly. The inner ends of the two rotating rods 226 extend to the side of the two U-shaped connecting plates 225 away from the top plate 221 of the drying assembly and are fixedly connected to rotating blocks 227. The rear sides of the inner sides of the two rotating blocks 227 are rotatably connected to swing control blocks 228. The outer walls of the two swing control blocks 228 are slidably connected to swing rods 229. The outer walls of the two swing control blocks 228 are slidably connected to the inner walls of the outer sides of the two swing rods 229. The rear sides of the outer sides of the two swing rods 229 are rotatably connected to the rear sides of the inner sides of the two U-shaped connecting plates 225. Both inner front sides of 229 are fixedly connected to sleeve connecting rods 2210. Both inner front sides of the sleeve connecting rods 2210 are rotatably connected to sleeves 2211. The inner walls of both sleeves 2211 are slidably connected to the outer walls of the two front columnar horizontal guide rods 224. T-shaped sleeves 2212 are slidably connected to the inner walls of both sleeves 2211. The front inner walls of both T-shaped sleeves 2212 are slidably connected to the outer walls of the two front columnar horizontal guide rods 224. Drying plates 2213 are fixedly connected to the rear ends of both drying plates 2213. T-shaped sleeves 2212, identical to those on the front, are fixedly connected to the rear sides of both drying plates 2213. The inner walls of the two rear T-shaped sleeves 2212 are slidably connected to the outer walls of the two rear columnar horizontal guide rods 224. The ends of both pipes 2217 furthest from the drying gas chamber 2216 are fixedly connected to the front sides of the two drying plates 2213.

[0035] When it is necessary to soak and toughen the foam glass, first place the foam glass on top of the foam glass placement plate 1220. Then, activate the two hydraulic push rods 1222. The two hydraulic push rods 1222 pull the top clamping plate 1224 downward to clamp and fix the foam glass with the foam glass placement plate 1220, preventing the foam glass from shifting or falling during the soaking process. Subsequently, start the motor 115. The motor 115 drives the lead screw 116 to rotate. The lead screw 116 drives the push-pull frame 21 forward along the guide groove 112 of the connecting plate through the transmission crossbar 213, so that the two drying components 22 are away from the soaking mechanism 1 to make room for the foam glass soaking. When the inverted L-shaped connecting rod 212 moves forward a certain distance, the bottom push-pull bracket plate 211 contacts the rear side of the inverted L-shaped plate 126. The inverted L-shaped plate 126 is squeezed, causing the two columnar rods 124 to slide upward along the inner wall of the columnar rod connecting block 123. At this time, the spring 125 is compressed, and the two columnar rods 124 move to the top and push the bidirectional hinge rod 128 through the push block 127 to make the rotating plate 129 rotate 90 degrees. Thus, the top structure of the two rotating plates 129 follows the two rotating plates 129 to rotate 90 degrees, and the bottom of the two rotating plates 129 is supported by the top of the concave support block 122.

[0036] Then, the dual-axis motor 1213 is started. The dual-axis motor 1213 drives the bevel gears 1214 on both sides to rotate. The rotation of the bevel gears 1214 drives the second bevel gear 1215, which meshes with it, to rotate. The rotation of the second bevel gear 1215 drives the cylindrical gear rod 1216 to rotate. The rotation of the cylindrical gear rod 1216 drives the gear 1217 to rotate. The rotation of the gear 1217 drives the rack rod 1219, which meshes with it, to move left and right. The left and right movement of the rack rod 1219 causes the long push-pull rod 1218 to slide on the inner wall of the concave guide plate 1210. The elongated push-pull rod 1218 slides left and right, driving the foam glass placement plate 1220 to move along the inner wall of the placement plate guide groove 1221, slowly pushing the foam glass into the soaking tank 1110 for soaking and toughening treatment. During the soaking process, the toughening liquid in the soaking tank 1110 can effectively penetrate into the interior of the foam glass, improving its toughness and strength. At the same time, since the inner walls of the foam glass placement plate 1220 and the top clamping plate 1224 are both designed with filter screens, the toughening liquid can flow smoothly, avoiding excessive toughening liquid residue on the surface of the foam glass, which would affect the subsequent treatment effect.

[0037] After soaking, the motor 115 is started in reverse. The motor 115 reverses and drives the lead screw 116 to rotate in the opposite direction. The lead screw 116 drives the push-pull bracket 21 to move backward along the guide groove 112 of the connecting plate through the transmission crossbar 213. At this time, the bottom push-pull bracket abutment 211 is no longer in contact with the rear side of the inverted L-shaped abutment 126. Under the elastic force of the spring 125, the two columnar uprights 124 slide downward and reset along the inner wall of the columnar upright connecting block 123. The two columnar uprights 124 move to the bottom and are then pulled by the push block 127. The bidirectional hinge rod 128 causes the rotating plate 129 to reverse and reset by 90 degrees. The top structure of the two rotating plates 129 also reverses and resets by 90 degrees. Then, the dual-axis motor 1213 is started again. The dual-axis motor 1213 drives the conical teeth 1214 on the left and right sides to reverse, thereby causing the foam glass placement plate 1220 to move and reset. At this time, the inner sides of the two drying plates 2213 of the two drying components 22 are aligned with the top clamping plate 1224 and the outer side of the foam glass placement plate 1220.

[0038] Then, the two second motors 2218 are started. The output ends of the two second motors 2218 drive the third conical tooth 2219 to rotate. The rotation of the third conical tooth 2219 drives the fourth conical tooth 2220, which meshes with it, to rotate. The rotation of the fourth conical tooth 2220 drives the drying component rotating rod 226 to rotate. The rotation of the drying component rotating rod 226 drives the rotating block 227 to rotate. The rotation of the rotating block 227 drives the swing control block 228 to rotate. The rotation of the swing control block 228 pulls the swing rod 229 to swing along the inner wall of the U-shaped rotating rod connecting plate 225. The swing rod 229 swings. The sleeve connecting rod 2210 moves, and the movement of the sleeve connecting rod 2210 causes the sleeve 2211 to slide along the outer wall of the columnar horizontal guide rod 224. The sliding of the sleeve 2211 causes the T-shaped sleeve 2212 to slide along the outer wall of the columnar horizontal guide rod 224. The sliding of the T-shaped sleeve 2212 causes the drying plate 2213 to move back and forth. At this time, the drying gas in the drying gas chamber 2216 enters the drying plate 2213 through the pipe 2217 to dry the foam glass, effectively removing the toughening liquid remaining on the surface of the foam glass and improving the surface quality of the foam glass.

[0039] Working principle of this invention:

[0040] When it is necessary to soak and toughen the foam glass, first place the foam glass on top of the foam glass placement plate 1220. Then, activate the two hydraulic push rods 1222. The two hydraulic push rods 1222 pull the top clamping plate 1224 downward to clamp and fix the foam glass with the foam glass placement plate 1220, preventing the foam glass from shifting or falling during the soaking process. Subsequently, start the motor 115. The motor 115 drives the lead screw 116 to rotate. The lead screw 116 drives the push-pull frame 21 to move forward along the guide groove 112 of the connecting plate through the transmission crossbar 213, so that the two drying components 22 are away from the soaking mechanism 1 to make room for the foam glass soaking. When the two inverted L-shaped connecting rods 212 move forward to a certain distance, At this time, the bottom push-pull bracket abutment 211 contacts the rear side of the inverted L-shaped abutment 126, and the inverted L-shaped abutment 126 is squeezed, causing the two columnar uprights 124 to slide upward along the inner wall of the columnar upright connecting block 123. At this time, the spring 125 is compressed, and the two columnar uprights 124 move to the top, thereby pushing the bidirectional hinge rod 128 through the push block 127 to make the rotating plate 129 rotate 90 degrees. Thus, the top structure of the two rotating plates 129 follows the two rotating plates 129 to rotate 90 degrees, and the bottom of the two rotating plates 129 is supported by the top of the concave support block 122. Then, the dual-axis motor 1213 is started, and the dual-axis motor 1213 drives the conical teeth 1214 on the left and right sides to rotate. The rotation drives the second conical tooth 1215, which meshes with it, to rotate. The rotation of the second conical tooth 1215 drives the cylindrical gear rod 1216 to rotate. The rotation of the cylindrical gear rod 1216 drives the gear 1217 to rotate. The rotation of the gear 1217 drives the rack rod 1219, which meshes with it, to move left and right. The left and right movement of the rack rod 1219 drives the long push-pull rod 1218 to slide on the inner wall of the concave guide plate 1210. The left and right sliding of the two sets of long push-pull rods 1218 drives the foam glass placement plate 1220 to move along the inner wall of the placement plate guide groove 1221, slowly pushing the foam glass into the soaking tank 1110 for soaking and toughening treatment. During the soaking process, the toughening liquid in the soaking tank 1110 can effectively penetrate into the foam glass. To improve its toughness and strength, after soaking, the motor 115 is started in reverse. The motor 115 reverses and drives the lead screw 116 to rotate in the opposite direction. The lead screw 116 drives the push-pull frame 21 to move backward along the guide groove 112 of the connecting plate through the transmission crossbar 213. At this time, the bottom push-pull frame abutment 211 no longer contacts the rear side of the inverted L-shaped abutment 126. Under the elastic force of the spring 125, the two columnar uprights 124 slide down and reset along the inner wall of the columnar upright connecting block 123. The two columnar uprights 124 move to the bottom and then pull the bidirectional hinge rod 128 through the push block 127 to make the rotating plate 129 reverse 90 degrees and reset. The top structure of the two rotating plates 129 also reverses 90 degrees and resets.Subsequently, the dual-axis motor 1213 is restarted, causing the conical teeth 1214 on both sides to reverse, thereby causing the foam glass placement plate 1220 to move and reset. At this time, the inner sides of the two drying plates 2213 of the two drying components 22 are aligned with the top clamping plate 1224 and the outer side of the foam glass placement plate 1220. Then, the two second motors 2218 are started, and the output ends of the two second motors 2218 drive the third conical tooth 2219 to rotate. The rotation of the third conical tooth 2219 drives the fourth conical tooth 2220, which meshes with it, to rotate. The rotation of the fourth conical tooth 2220 drives the rotating rod 226 of the drying component to rotate, and the rotation of the rotating rod 226 drives the rotating block 227 to rotate. The rotating block 227 rotates, causing the swing control block 228 to rotate. The swing control block 228 pulls the swing rod 229 to swing along the inner wall of the U-shaped rotating rod connecting plate 225. The swing rod 229 swings, causing the sleeve connecting rod 2210 to move. The movement of the sleeve connecting rod 2210 causes the sleeve 2211 to slide along the outer wall of the columnar horizontal guide rod 224. The sliding of the sleeve 2211 causes the T-shaped sleeve 2212 to slide along the outer wall of the columnar horizontal guide rod 224. The sliding of the T-shaped sleeve 2212 causes the drying plate 2213 to move back and forth. At this time, the drying gas in the drying gas chamber 2216 enters the drying plate 2213 through the pipe 2217 to dry the foam glass.

[0041] The foregoing has shown and described the basic principles, main features, and advantages of the present invention. Those skilled in the art should understand that the present invention is not limited to the above embodiments. The embodiments and descriptions in the specification are merely illustrative of the principles of the invention. Various changes and modifications can be made to the invention without departing from its spirit and scope, and all such changes and modifications fall within the scope of the present invention as claimed. The scope of protection of this invention is defined by the appended claims and their equivalents.

Claims

1. A building insulation foam glass surface toughening soaking and drying integrated equipment, characterized in that: Including the soaking mechanism (1), the top of the soaking mechanism (1) is provided with drying mechanism (2); The soaking mechanism (1) comprises a base (11), and the inner side of the top front side of the base (11) is fixedly connected with a foam glass connecting assembly (12); The base (11) comprises a connecting plate (111), both sides of the bottom of the connecting plate (111) are fixedly connected with support bottom rods (113), both sides of the top of the connecting plate (111) are provided with connecting plate guide grooves (112), the rear side of the middle of the connecting plate (111) is fixedly connected with a motor connecting block (114), the top of the motor connecting block (114) is fixedly connected with a motor (115), the output end of the motor (115) is fixedly connected with a lead screw (116), the front side of the connecting plate (111) is fixedly connected with a U-shaped connecting rod (117), both sides of the front side of the U-shaped connecting rod (117) are fixedly connected with side plates (118), the top and bottom of the inner sides of the two side plates (118) are fixedly connected with U-shaped connecting cross blocks (119), and the front side of the two side plates (118) is fixedly connected with a soaking pool (1110); The foam glass connecting assembly (12) comprises two concave hinge blocks (121), the outer sides of the two concave hinge blocks (121) are fixedly connected to the inner sides of the two groups of U-shaped connecting cross blocks (119), the front sides of the two concave hinge blocks (121) are fixedly connected with concave supporting blocks (122), the rear sides of the middle of the two concave hinge blocks (121) are fixedly connected with columnar vertical rod connecting blocks (123), the inner walls of the two columnar vertical rod connecting blocks (123) are slidably connected with columnar vertical rods (124), the outer walls of the two columnar vertical rods (124) are sleeved with springs (125) on one side of the bottom of the columnar vertical rod connecting block (123), the bottoms of the two columnar vertical rods (124) are fixedly connected with inverted L-shaped resisting plates (126), and the rear side of the inverted L-shaped resisting plate (126) is a chamfered surface; The top ends of the two columnar vertical rods (124) are fixedly connected with push blocks (127), the outer walls of the two push blocks (127) are rotatably connected with bidirectional hinge rods (128), the top of the two bidirectional hinge rods (128) is rotatably connected with rotating plates (129), the bottom of the outer wall of the front side of the two rotating plates (129) is rotatably connected to the inner wall of the two concave hinge blocks (121), and the top of the two rotating plates (129) is fixedly connected with concave guide plates (1210); and the bottom of the two rotating plates (129) is triangular. The top of each of the two concave guide plates (1210) is fixedly connected with a connecting block (1211), the inner side of the two connecting blocks (1211) is fixedly connected with a horizontal connecting rod (1212), the top of the horizontal connecting rod (1212) is fixedly connected with a double-shaft motor (1213), the left and right side output ends of the double-shaft motor (1213) are fixedly connected with a bevel gear (1214), the outer walls of the two bevel gears (1214) are engaged with a second bevel gear (1215), the bottom of the two second bevel gears (1215) is fixedly connected with a cylindrical gear rotating rod (1216), the bottom ends of the two cylindrical gear rotating rods (1216) extend to the bottom of the two connecting blocks (1211) and are fixedly connected with a gear (1217), the inner walls of the two concave guide plates (1210) are slidably connected with a long strip-shaped push-pull rod (1218), the inner sides of the two long strip-shaped push-pull rods (1218) are fixedly connected with a rack rod (1219), the outer walls of the two rack rods (1219) are engaged with the two gears (1217), the front sides of the two long strip-shaped push-pull rods (1218) are fixedly connected with a foam glass placing plate (1220). The drying mechanism (2) comprises a push-pull frame (21), and the top and bottom of the inner side of the front side of the push-pull frame (21) are fixedly connected with a drying assembly (22); The push-pull frame (21) comprises a push-pull frame abutting plate (211), the front side of the push-pull frame abutting plate (211) is a chamfered surface opposite to the inclination of the rear side of the inverted L-shaped abutting plate (126), the left and right sides of the bottom of the push-pull frame abutting plate (211) are fixedly connected with an inverted L-shaped connecting vertical rod (212), and the outer walls of the two inverted L-shaped connecting vertical rods (212) are slidably connected to the inner walls of the two connecting plate guide grooves (112) formed in the connecting plate (111); The two drying assemblies (22) each comprise a drying assembly top plate (221), the left and right sides of the inner side of the two drying assembly top plates (221) are fixedly connected with a drying assembly bottom side plate (222), and the front and rear sides of the side, away from the drying assembly top plate (221), of the two drying assembly bottom side plates (222) are fixedly connected with an inverted U-shaped cylindrical horizontal guide rod connecting rod (223).

2. The building thermal insulation foamed glass surface toughening, soaking and drying integrated equipment according to claim 1, characterized in that: The front and rear sides of the left and right sides of the foam glass placing plate (1220) are provided with a placing plate guide groove (1221), the middle parts of the left and right sides of the foam glass placing plate (1220) are fixedly connected with a hydraulic push rod (1222), the inner walls of the placing plate guide grooves (1221) formed in the left and right sides of the foam glass placing plate (1220) are slidably connected with a top clamping plate sliding block (1223), the top of the four top clamping plate sliding blocks (1223) is fixedly connected with a top clamping plate (1224), the left and right sides of the middle part of the top clamping plate (1224) are fixedly connected to the top ends of the two hydraulic push rods (1222), and the inner walls of the foam glass placing plate (1220) and the top clamping plate (1224) are designed as filter screens.

3. The building thermal insulation foamed glass surface toughening, soaking and drying integrated equipment according to claim 1, characterized in that: The inner side middle part of two L-shaped connecting vertical rods (212) is fixedly connected with a transmission cross rod (213), the bottom middle part of the transmission cross rod (213) is screw connected on the rear side of the outer wall of the lead screw (116), the front side top of two L-shaped connecting vertical rods (212) is fixedly connected with a U-shaped connecting side rod (214), the top and bottom of the front side of two U-shaped connecting side rods (214) are fixedly connected with a cross connecting front rod (215).

4. The building thermal insulation foamed glass surface toughening, soaking and drying integrated equipment according to claim 1, characterized in that: The inner side of two groups of U-shaped columnar cross guide rod connecting rods (223) away from the bottom side plate (222) of the drying assembly is fixedly connected with a columnar cross guide rod (224), the front side of the middle part of the inner side of two drying assembly top plates (221) is fixedly connected with a U-shaped rotating rod connecting plate (225), the middle part of the inner wall of two U-shaped rotating rod connecting plates (225) is rotatably connected with a drying assembly rotating rod (226), the outer end of two drying assembly rotating rods (226) extends to the outer side of two drying assembly top plates (221).

5. The building thermal insulation foamed glass surface toughening, soaking and drying integrated equipment according to claim 4, characterized in that: The outer side of two drying assembly top plates (221) is fixedly connected with a connecting vertical rod (2215), the side of two groups of connecting vertical rods (2215) away from the drying assembly top plate (221) is fixedly connected with a connecting top plate (2214), the right side of two connecting top plates (2214) is fixedly connected with a drying gas warehouse (2216), the front side of two drying gas warehouses (2216) is fixedly connected with a pipeline (2217), the left and right sides of the outer side of two connecting top plates (2214) are fixedly connected with a drying assembly L-shaped connecting plate (2221), the front side of two groups of drying assembly L-shaped connecting plates (2221) is fixedly connected on the left and right sides of the rear side of two cross connecting front rods (215), one end of two pipelines (2217) away from the drying gas warehouse (2216) is fixedly connected on the front side of two drying plates (2213).

6. The building thermal insulation foamed glass surface toughening, soaking and drying integrated equipment according to claim 5, characterized in that: The outer side of the middle part of the two drying assembly top plates (221) is fixedly connected with a second motor (2218), the output end of the two second motors (2218) is fixedly connected with a third bevel gear (2219), the outer wall of the two third bevel gears (2219) is engaged with a fourth bevel gear (2220), the side of the two fourth bevel gears (2220) close to the drying assembly top plate (221) is fixedly connected to the outer end of the two drying assembly rotating rods (226), the inner end of the two drying assembly rotating rods (226) extends to the side of the two U-shaped rotating rod connecting plates (225) away from the drying assembly top plate (221) and is fixedly connected with a rotating block (227), the rear side of the inner side of the two rotating blocks (227) is rotatably connected with an oscillating control block (228), the outer wall of the two oscillating control blocks (228) is slidably connected with an oscillating rod (229), the outer wall of the two oscillating control blocks (228) is slidably connected to the inner wall of the outer side of the two oscillating rods (229), the rear side of the outer side of the two oscillating rods (229) is rotatably connected to the rear side of the inner side of the two U-shaped rotating rod connecting plates (225), the inner side of the front side of the two oscillating rods (229) is fixedly connected with a sleeve connecting rod (2210), the front side of the inner side of the two sleeve connecting rods (2210) is rotatably connected with a sleeve (2211), the inner wall of the two sleeves (2211) is slidably connected to the outer wall of the front two columnar transverse guide rods (224), the inner wall of the two sleeves (2211) is slidably connected with a T-shaped sleeve (2212), the front side inner wall of the two T-shaped sleeves (2212) is slidably connected to the outer wall of the front two columnar transverse guide rods (224), the rear end of the two T-shaped sleeves (2212) is fixedly connected with a drying plate (2213), the rear side of the two drying plates (2213) is fixedly connected with a T-shaped sleeve (2212) same as the front side, and the inner wall of the two T-shaped sleeves (2212) on the rear side is slidably connected to the outer wall of the two columnar transverse guide rods (224) on the rear side.

Citation Information

Patent Citations

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    CN104671674A

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