Building energy-saving heating pipeline construction equipment
Through the tightening components and pipe hoops that cooperate with the guide sleeve and the screw, the problem of intimate welding of heating pipes is solved, and efficient and energy-saving welding effects are achieved.
Patent Information
- Application Number
- CN202421974576.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-08-15
- Publication Date
- 2025-07-08
- Estimated Expiration
- 2034-08-15
AI Technical Summary
In the prior art, heating pipes are not tightly connected during welding, resulting in inconvenience in welding, increasing welding time and energy consumption, and it is difficult to guarantee the welding quality.
Building energy-saving heating pipeline construction equipment including tensioning components and pipe hoops is adopted. Through the cooperation of the guide sleeve and screw, the pipe hoops are tightly clamped, ensuring close contact during pipe welding and reducing the use of welding rods.
It improves welding quality, reduces welding rod usage, reduces energy consumption, and simplifies the pipeline connection process.
Smart Images

Figure CN223070697U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of construction energy-saving heating pipeline construction, in particular to a construction energy-saving heating pipeline construction device. Background Technique
[0002] The construction of building heating pipelines is a complex and meticulous process, involving multiple links and key elements. During the construction of building heating pipelines, multiple heating pipelines need to be welded together for assembly to form a heating circuit;
[0003] In the prior art, during the welding of two heating pipelines, workers usually hold the two ends of the heating pipelines and then carry out welding. The connection between the two ends of the heating pipelines is not tight enough, resulting in insufficient connection between the heating pipelines, making welding inconvenient during the welding process. This not only increases the use of welding rods, but also increases the welding time and energy consumption, and it is difficult to guarantee the welding quality. Therefore, a construction energy-saving heating pipeline construction device is designed to solve the above problems. Content of the Utility Model
[0004] The purpose of the utility model is to solve the problems existing in the above background technique, and to propose a construction energy-saving heating pipeline construction device.
[0005] The technical problem to be solved by the utility model is to provide a construction energy-saving heating pipeline construction device, which solves the problems in the prior art that during the welding construction of heating pipelines, manual connection of two pipelines is adopted, the connection part is not tight enough, the welding time and the use of welding rods are increased, the energy consumption is increased, and the welding quality is poor.
[0006] The utility model provides a construction energy-saving heating pipeline construction device, which includes a tensioning component and pipe clamps installed at both ends of the tensioning component;
[0007] The tensioning component includes a guide rod, a guide sleeve, a lead screw, a turning handle, an internal thread ring, an inverted concave frame, a concave frame and a connecting rod. Guide sleeves are sleeved at both ends of the guide rod. A lead screw is rotatably arranged through a bearing at the center of the upper surface of the guide rod. A turning handle is fixedly arranged at the top of the lead screw. The outer surface of the lead screw is threadedly connected with an internal thread ring. Inverted concave frames are fixedly arranged on both the left and right sides of the internal thread ring. Concave frames are fixedly arranged on the upper surfaces of the two guide sleeves. A connecting rod is rotatably arranged between the concave frame and the inverted concave frame through a pin shaft.
[0008] Preferably, the guide rod is rectangular, and a through groove matching the guide rod is opened at the center of the guide sleeve.
[0009] Preferably, the connecting rod on the left concave-shaped frame is connected to the concave-shaped frame on the left guide sleeve, the connecting rod on the right concave-shaped frame is connected to the concave-shaped frame on the right guide sleeve, and the two connecting rods are in an "eight" shape.
[0010] Preferably, the two pipe clamps are respectively fixed to the ends of the two guide sleeves, and an anti-slip frosted layer is fixedly arranged on the inner surface of the pipe clamp.
[0011] Preferably, the pipe clamp includes a lower arc plate, an upper arc plate, a locking rod, a first fixing plate, a first socket spring, a locking hole, a positioning rod, a second fixing plate, a second socket spring and a positioning groove. The upper arc plate is rotatably arranged above the lower arc plate through a hinge. The locking rod is arranged through the connecting plate of the upper arc plate. The top of the locking rod is fixedly provided with a first fixing plate. A first socket spring is fixedly arranged between the first fixing plate and the connecting plate of the upper arc plate. A locking hole is opened on the connecting plate of the lower arc plate. The positioning rod is arranged through the side of the connecting plate of the lower arc plate. The end of the positioning rod is fixedly provided with a second fixing plate. A second socket spring is fixedly arranged between the second fixing plate and the side of the connecting plate of the lower arc plate. The positioning groove is opened on the side of the locking rod.
[0012] Preferably, the locking rod matches the locking hole, and when the first socket spring is in a natural elongation state, the bottom horizontal height of the locking rod is equal to the bottom horizontal height of the connecting plate of the upper arc plate.
[0013] Preferably, when the second socket spring is in a natural elongation state, the positioning rod penetrates through the locking hole.
[0014] Preferably, the diameter of the positioning groove is not less than the diameter of the positioning rod, and the positioning rod can be embedded in the positioning groove.
[0015] Compared with the prior art, the utility model has at least the following beneficial effects:
[0016] 1. By setting a tensioning component, before welding the heating pipes, the pipe clamps on the tensioning component are fixed to the ends of the two butt pipes, and then the screw rod is rotated by turning the handle. The rotation of the screw rod drives the internal thread ring to move along the screw rod in a threaded motion. The internal thread ring moves upward along the screw rod. The two guide sleeves are pulled by the connecting rod to move in the opposite direction, so that the distance between the two guide sleeves becomes smaller. The guide sleeves drive the two pipe clamps to move in the opposite direction. The pipe clamps drive the two heating pipes to be welded to move until the welding parts of the two heating pipes are in contact with each other, ensuring that when welding the heating pipes, the two heating pipes are in close contact, ensuring the welding effect during welding, reducing the use of welding rods, and being more energy-saving.
[0017] 2. The utility model is provided with a pipe clamp. When the pipe clamp is used to hold the heating pipe tightly, the lower arc-shaped plate is sleeved under the end of the heating pipe, and then the upper arc-shaped plate is covered on the lower arc-shaped plate to realize the clamping of the heating pipe. Then, the second fixed disk is pulled outward, so that the positioning rod does not extend into the locking hole, and the second socket spring is in a stretched state. Then, the first fixed disk is pressed downward, and the first fixed disk drives the locking rod to move downward. The locking rod is embedded in the locking hole to realize the effect of locking the upper arc-shaped plate and the lower arc-shaped plate. Then, the second fixed disk is released, and the resilience of the second socket spring makes the positioning rod embedded in the positioning groove to realize the locking of the locking rod and ensure the position of the locking rod, so as to ensure the locking state of the locking rod on the upper arc-shaped plate and the lower arc-shaped plate, and the clamping of the pipe clamp on the heating pipe can be completed. The installation of the pipe clamp is simple and convenient. When the pipe clamp needs to be removed from the heating pipe, the second fixed disk is pulled outward. The second fixed disk drives the positioning rod to disengage from the positioning groove, and the positioning rod releases the locking of the locking rod. The elastic force of the first socket spring makes the locking rod move upward until the locking rod disengages from the locking hole, realizing the effect of releasing the locking of the upper arc-shaped plate and the lower arc-shaped plate on the heating pipe. The disassembly of the pipe clamp is simple and convenient. BRIEF DESCRIPTION OF THE DRAWINGS
[0018] In order to more clearly illustrate the specific embodiments of the present utility model or the technical solutions in the prior art, the following will briefly introduce the drawings required for the description of the specific embodiments or the prior art. In all the drawings, similar elements or parts are generally identified by similar reference numerals. In the drawings, the elements or parts are not necessarily drawn to scale.
[0019] Figure 1 Schematic three-dimensional view of the overall structure of the present utility model Figure 1 。
[0020] Figure 2 Schematic three-dimensional view of the overall structure of the present utility model Figure 2 。
[0021] Figure 3 Schematic three-dimensional structure diagram of the tensioning assembly of the present utility model.
[0022] Figure 4 Schematic cross-sectional structure diagram of the pipe clamp of the present utility model.
[0023] Figure 5 For the present utility model Figure 4 Enlarged structure diagram at position A.
[0024] [Reference Numerals]
[0025] 1. Guide rod; 101. Guide sleeve; 102. Lead screw; 103. Rotating handle; 104. Internal thread ring; 105. Concave inverted frame; 106. Concave frame; 107. Connecting rod; 2. Pipe hoop; 201. Lower arc plate; 202. Upper arc plate; 203. Locking rod; 204. First fixed disk; 205. First socket spring; 206. Locking hole; 207. Positioning rod; 208. Second fixed disk; 209. Second socket spring; 210. Positioning groove. Detailed implementation mode
[0026] Embodiment:
[0027] As Figures 1 - 5 shown, the embodiment of the present utility model provides a construction energy-saving heating pipeline construction device, including a tensioning component and a pipe hoop 2 installed at both ends of the tensioning component;
[0028] The tensioning component includes a guide rod 1, a guide sleeve 101, a lead screw 102, a rotating handle 103, an internal thread ring 104, a concave inverted frame 105, a concave frame 106 and a connecting rod 107. Guide sleeves 101 are sleeved at both ends of the guide rod 1. The central part of the upper surface of the guide rod 1 is rotatably provided with a lead screw 102 through a bearing. A rotating handle 103 is fixedly provided at the top of the lead screw 102. The outer surface of the lead screw 102 is threadedly connected with an internal thread ring 104. Concave inverted frames 105 are fixedly provided on both the left and right sides of the internal thread ring 104. Concave frames 106 are fixedly provided on the upper surfaces of the two guide sleeves 101. A connecting rod 107 is rotatably provided between the concave frame 106 and the concave inverted frame 105 through a pin shaft.
[0029] By providing a tensioning component, before welding the heating pipeline, the pipe hoop 2 on the tensioning component is fixed at the ends of two butt-jointed pipelines, and then the lead screw 102 is rotated by the rotating handle 103. The rotation of the lead screw 102 drives the internal thread ring 104 to move along the lead screw 102 in a threaded motion. The internal thread ring 104 moves upward along the lead screw 102. The two guide sleeves 101 are pulled to move in opposite directions through the connecting rod 107, so that the distance between the two guide sleeves 101 becomes smaller. The guide sleeves 101 drive the two pipe hoops 2 to move in opposite directions. The pipe hoop 2 drives the two heating pipes to be welded to move until the welding parts of the two heating pipes are in contact with each other, ensuring that when welding the heating pipes, the two heating pipes are in a tightly contacting state, ensuring the welding effect during welding, reducing the use of welding rods, and being more energy-saving.
[0030] In this embodiment, the guide rod 1 is rectangular, and a through groove matching the guide rod 1 is opened in the center of the guide sleeve 101, which is convenient for the guide sleeve 101 to move along the guide rod 1. And the rectangular shape of the guide rod 1 is convenient for the lead screw 102 to be rotatably arranged on the guide rod 1 through a bearing.
[0031] In this embodiment, the connecting rod 107 on the left concave-shaped frame 105 is connected to the concave-shaped frame 106 on the left guide sleeve 101, and the connecting rod 107 on the right concave-shaped frame 105 is connected to the concave-shaped frame 106 on the right guide sleeve 101. The two connecting rods 107 are in a shape of "eight", which is convenient for the two connecting rods 107 to drive the two guide sleeves 101 to move relatively or in the opposite direction during the process of the lead screw 102 driving the internal thread ring 104 to move up and down.
[0032] In this embodiment, the two pipe clamps 2 are respectively fixed at the ends of the two guide sleeves 101, and an anti-slip frosted layer is fixedly arranged on the inner surface of the pipe clamp 2, which is convenient for the guide sleeve 101 to drive the two pipe clamps 2 to move, and the anti-slip frosted layer can increase the friction coefficient of the inner surface of the pipe clamp 2 and increase the friction force between the pipe clamp 2 and the pipe.
[0033] In this embodiment, the pipe clamp 2 includes a lower arc-shaped plate 201, an upper arc-shaped plate 202, a locking rod 203, a first fixing plate 204, a first socket spring 205, a locking hole 206, a positioning rod 207, a second fixing plate 208, a second socket spring 209 and a positioning groove 210. The upper arc-shaped plate 202 is rotatably arranged above the lower arc-shaped plate 201 through a hinge. The locking rod 203 is penetrated through the connecting plate of the upper arc-shaped plate 202. The top of the locking rod 203 is fixedly provided with the first fixing plate 204. A first socket spring 205 is fixedly arranged between the first fixing plate 204 and the connecting plate of the upper arc-shaped plate 202. The locking hole 206 is opened on the connecting plate of the lower arc-shaped plate 201. The positioning rod 207 is penetrated through the side of the connecting plate of the lower arc-shaped plate 201. The end of the positioning rod 207 is fixedly provided with the second fixing plate 208. A second socket spring 209 is fixedly arranged between the second fixing plate 208 and the side of the connecting plate of the lower arc-shaped plate 201. The positioning groove 210 is opened on the side of the locking rod 203.
[0034] In this embodiment, the locking rod 203 is matched with the locking hole 206, which is convenient for locking the lower arc-shaped plate 201 and the upper arc-shaped plate 202 when the locking rod 203 is embedded in the locking hole 206, and is convenient for the upper arc-shaped plate 202 to cooperate with the lower arc-shaped plate 201 to hold the pipe tightly. When the first socket spring 205 is in a natural elongation state, the bottom horizontal height of the locking rod 203 is equal to the bottom horizontal height of the connecting plate of the upper arc-shaped plate 202. At this time, the bottom of the locking rod 203 does not extend out of the bottom of the connecting plate of the upper arc-shaped plate 202, so that the locking rod 203 does not affect the upper arc-shaped plate 202 covering the lower arc-shaped plate 201.
[0035] In this embodiment, when the second socket spring 209 is in a natural elongation state, the positioning rod 207 penetrates through the locking hole 206.
[0036] In this embodiment, the diameter of the positioning groove 210 is not less than that of the positioning rod 207, and the positioning rod 207 can be embedded in the positioning groove 210, which facilitates the positioning of the position of the locking rod 203 by the positioning rod 207.
[0037] By providing the pipe hoop 2, when the pipe hoop 2 is used to hold the heating pipe tightly, the lower arc-shaped plate is sleeved under the end of the heating pipe, and then the upper arc-shaped plate 202 is covered on the lower arc-shaped plate 201 to realize the clamping of the heating pipe. Then, the second fixed disk 208 is pulled outward, so that the positioning rod 207 does not extend into the locking hole 206, and the second socket spring 209 is in a stretched state. Then, the first fixed disk 204 is squeezed downward, and the first fixed disk 204 drives the locking rod 203 to move downward. The locking rod 203 is embedded in the locking hole 206 to realize the effect of locking the upper arc-shaped plate 202 and the lower arc-shaped plate 201. Then, the second fixed disk 208 is released, and the resilience of the second socket spring 209 makes the positioning rod 207 embedded in the positioning groove 210 to realize the locking of the locking rod 203, ensuring the position of the locking rod 203, and thus ensuring the locking state of the locking rod 203 on the upper arc-shaped plate 202 and the lower arc-shaped plate 201, and the pipe hoop 2 can complete the clamping of the heating pipe. The installation of the pipe hoop 2 is simple and convenient. When the pipe hoop 2 needs to be removed from the heating pipe, by pulling the second fixed disk 208 outward, the second fixed disk 208 drives the positioning rod 207 to disengage from the positioning groove 210, and the positioning rod 207 releases the locking of the locking rod 203. The elastic force of the first socket spring 205 makes the locking rod 203 move upward until the locking rod 203 disengages from the locking hole 206, realizing the effect of releasing the locking of the upper arc-shaped plate 202 and the lower arc-shaped plate 201 on the heating pipe. The disassembly of the pipe hoop 2 is simple and convenient.
[0038] The above are only the preferred embodiments of the present invention. It should be noted that for those skilled in the art, without departing from the concept of the present invention, several deformations and improvements can be made, which should also be regarded as the protection scope of the present invention, and these will not affect the implementation effect of the present invention and the practicability of the patent.
Claims
1. A construction energy-saving heating pipeline construction device, characterized in that: It includes a tensioning assembly component and pipe clamps (2) installed at both ends of the tensioning assembly; The tensioning assembly includes a guide rod (1), a guide sleeve (101), a lead screw (102), a turning handle (103), an internal thread ring (104), an inverted concave-shaped frame (105), a concave-shaped frame (106), and a connecting rod (107). Guide sleeves (101) are sleeved at both ends of the guide rod (1). A lead screw (102) is rotatably arranged on the center of the upper surface of the guide rod (1) through a bearing. A turning handle (103) is fixedly arranged at the top of the lead screw (102). An internal thread ring (104) is threadedly connected to the outer surface of the lead screw (102). Inverted concave-shaped frames (105) are fixedly arranged on both the left and right sides of the internal thread ring (104). Concave-shaped frames (106) are fixedly arranged on the upper surfaces of the two guide sleeves (101). A connecting rod (107) is rotatably arranged between the concave-shaped frame (106) and the inverted concave-shaped frame (105) through a pin shaft.
2. The construction energy-saving heating pipeline construction equipment according to claim 1, characterized in that: The guide rod (1) is rectangular in shape, and a through groove matching the guide rod (1) is opened in the center of the guide sleeve (101).
3. The construction energy-saving heating pipeline construction equipment according to claim 2, characterized in that: The connecting rod (107) on the left inverted concave-shaped frame (105) is connected to the concave-shaped frame (106) on the left guide sleeve (101), and the connecting rod (107) on the right inverted concave-shaped frame (105) is connected to the concave-shaped frame (106) on the right guide sleeve (101), and the two connecting rods (107) are in an "eight" shape.
4. The construction energy-saving heating pipeline construction equipment according to claim 3, characterized in that: The two pipe clamps (2) are respectively fixed at the ends of the two guide sleeves (101), and an anti-slip frosted layer is fixedly arranged on the inner surface of the pipe clamp (2).
5. The construction energy-saving heating pipeline construction equipment according to claim 1, characterized in that: The pipe clamp (2) includes a lower arc-shaped plate (201), an upper arc-shaped plate (202), a locking rod (203), a first fixed disk (204), a first socket spring (205), a locking hole (206), a positioning rod (207), a second fixed disk (208), a second socket spring (209), and a positioning groove (210). The upper arc-shaped plate (202) is rotatably arranged above the lower arc-shaped plate (201) through a hinge. A locking rod (203) is penetrated through the connecting plate of the upper arc-shaped plate (202). A first fixed disk (204) is fixedly arranged at the top of the locking rod (203). A first socket spring (205) is fixedly arranged between the first fixed disk (204) and the connecting plate of the upper arc-shaped plate (202). A locking hole (206) is opened in the connecting plate of the lower arc-shaped plate (201). A positioning rod (207) is penetrated through the side of the connecting plate of the lower arc-shaped plate (201). A second fixed disk (208) is fixedly arranged at the end of the positioning rod (207). A second socket spring (209) is fixedly arranged between the second fixed disk (208) and the side of the connecting plate of the lower arc-shaped plate (201). A positioning groove (210) is opened on the side of the locking rod (203).
6. The construction energy-saving heating pipeline construction equipment according to claim 5, characterized in that: The locking rod (203) is matched with the locking hole (206), and when the first socket spring (205) is in the natural elongation state, the bottom horizontal height of the locking rod (203) is equal to the bottom horizontal height of the connecting plate of the upper arc-shaped plate (202).
7. The construction energy-saving heating pipeline construction equipment according to claim 6, characterized in that: When the second socket spring (209) is in the natural elongation state, the positioning rod (207) penetrates through the locking hole (206).
8. The construction energy-saving heating pipeline construction equipment according to claim 7, characterized in that: The diameter of the positioning groove (210) is not less than the diameter of the positioning rod (207), and the positioning rod (207) can be embedded in the positioning groove (210).
Citation Information
Cited By
Pipeline welding auxiliary device for pipeline construction
CN120572267A