Stainless steel bar placement calibration limiting frame
By designing a stainless steel bar placement and calibration limit frame and adopting a cylindrical and conical matching structure, the problem of bar placement position deviation is solved, high-precision and smooth connection is achieved, and product quality and safety are improved.
Patent Information
- Application Number
- CN202423068169.9
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-12
- Publication Date
- 2025-10-28
- Estimated Expiration
- 2034-12-12
AI Technical Summary
In the production and processing of stainless steel bars, it is difficult to accurately match the placement of two bars, which affects product quality and safety.
A stainless steel bar placement and calibration limit frame is designed, which adopts a cylindrical and conical matching structure. Precise calibration and convenient connection are achieved through components such as the main body matching column, combined positioning stabilization plate and assembly holes.
The accuracy and smoothness of the bar fitting position are improved, ensuring product quality and durability.
Smart Images

Figure CN223477499U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of stainless steel bar production and processing technology, and in particular to a stainless steel bar placement calibration limit frame. Background Technology
[0002] When processing stainless steel bars, two stainless steel bars that are being processed simultaneously usually require the use of two clamping devices. However, it is difficult to ensure precise placement of the two stainless steel bars during the process. If there is a deviation in the placement, it will affect the overall quality of the processed stainless steel bars and, in severe cases, the safety during later use. Utility Model Content
[0003] The purpose of this invention is to provide a stainless steel bar placement and calibration limiting frame. When clamping and installing two stainless steel bars, it can calibrate the position of the installed bars. During assembly, two mating holes allow for convenient connection of stainless steel bars at different positions. The overall assembly occupies less space, and the mating positions utilize deformable mating spaces for easier assembly. The conical mating structure at the mating connection position ensures a smooth assembly, and the calibration position allows for more precise calibration, resulting in higher relative accuracy of the mating positions of the two stainless steel bars and better product quality during processing.
[0004] The technical solution of this utility model is as follows:
[0005] A stainless steel bar placement and calibration limiting frame, characterized in that: it includes a cylindrical first main body mating column with its central axis in the front-rear direction; a main body assembly hole is provided at the center of the front of the first main body mating column; a main body mating clearance safety groove is provided at the middle of the left side of the first main body mating column; a main body assembly locking and stabilizing plate is provided at the position of the main body mating clearance safety groove on the main body structure of the first main body mating column; a main body assembly locking and stabilizing plate is provided on both sides of the width direction of the main body assembly locking and stabilizing plate; an integrally formed arc-shaped transition mating support plate with an opening facing downward is provided on the front-rear direction at the left edge of the main body mating clearance safety groove; an integrally formed cylindrical second combination stabilizing column is provided on the left side of the transition mating support plate at the rear position; and the transition mating support plate at the front position is provided on the left side of the rear position. On the left side of the plate, there is an integrally formed cylindrical second set of precision-fitting pillars. The diameter of the second set of precision-fitting pillars is larger than that of the second set of precision-fitting pillars. On the rear side of the second set of precision-fitting pillars, there is an integrally formed conical combined guide stabilizing pillar. The diameter of the rear side of the combined guide stabilizing pillar is the same as that of the second set of precision-fitting pillars. The center of the second set of precision-fitting pillars and the second set of precision-fitting pillars are respectively provided with cylindrical second assembly connection holes. The interior of the combined guide stabilizing pillar is provided with conical second assembly calibration limit holes. The right side of the combined guide stabilizing pillar, the second set of precision-fitting pillars and the second set of precision-fitting pillars are respectively provided with assembly convenience grooves with openings facing outwards. An integral safety clearance groove is provided between the combined guide stabilizing pillar and the second set of precision-fitting pillars.
[0006] Furthermore, the main assembly retaining and reinforcing boss is a semi-cylindrical structure.
[0007] Furthermore, the central axis of the second combined stabilizing column is on the same horizontal plane as the central axis of the first main body mating column.
[0008] Furthermore, the lower end of the main assembly positioning and stabilizing plate is provided with a handheld auxiliary operation cooperation plate that is tilted outward.
[0009] Furthermore, the outer edge of the transition fit support plate is provided with a safety fit rounded corner structure.
[0010] The beneficial effects of this utility model are:
[0011] This invention allows for positional calibration of two stainless steel bars during clamping and installation. Two mating holes facilitate convenient connection between bars at different positions during assembly. The overall assembly occupies less space, and the deformable mating space makes assembly easier. The conical mating structure ensures a smooth connection, and the calibration point allows for more precise alignment, resulting in higher relative accuracy between the two stainless steel bars. This leads to better product quality and increased durability during use. Attached Figure Description
[0012] Figure 1 This is a three-dimensional structural diagram of the present invention;
[0013] Figure 2 This is a front view of the present invention;
[0014] Figure 3 This is a schematic diagram of the left side of this utility model;
[0015] Figure 4 This is a schematic diagram on the right side of the present invention;
[0016] Figure 5 This is a top view of the present invention;
[0017] Figure 6 This is a bottom view of the present invention;
[0018] Figure 7 This is a three-dimensional structural diagram of the present invention in the second direction;
[0019] In the diagram: 1. First main body mating column, 2. Transition mating support plate, 3. Second combination stabilizing column, 4. Second set of precision mating columns, 5. Combined guide stabilizing mating column, 6. Assembly convenience mating groove, 7. Overall safety avoidance groove, 8. Main body mating avoidance safety groove, 9. Main body combination locking stabilizing plate, 10. Main body combination locking reinforcement boss. Detailed Implementation
[0020] like Figures 1 to 7As shown, a stainless steel bar placement and calibration limiting frame includes a cylindrical first main body mating column 1 with its central axis pointing forward and backward. The first main body mating column 1 has a main body assembly hole at its front center and a main body mating clearance safety groove 8 at its left center, allowing for deformation space at the main body assembly hole during assembly. The main body structure of the first main body mating column 1 has a main body assembly locking and stabilizing plate 9 located at the position of the main body mating clearance safety groove 8. The main body assembly locking and stabilizing plate 9 has main body assembly locking and reinforcing bosses 10 on both sides of its width direction, which provide locking connection during mating and improve the stability of the mating position. The main body of the safety groove 8 has an integrally formed, downward-opening, arc-shaped transition support plate 2 on the left side edge, with one side facing downwards. On the left side of the transition support plate 2 at the rear, there is an integrally formed cylindrical second combined stabilizing column 3. On the left side of the transition support plate 2 at the front, there is an integrally formed cylindrical second set of precision fitting columns 4, which can be used to cooperate with the second combined stabilizing column 3, providing auxiliary calibration and connection. The diameter of the second combined stabilizing column 3 is larger than the diameter of the second set of precision fitting columns 4. An integrally formed conical combined guide stabilizing column 5 is located on the rear side of the second set of precision fitting columns 4, improving the smoothness of the combination and facilitating the transition and placement. The diameter of the rear side of the combined guide stabilizing column 5 is the same as the diameter of the second combined stabilizing column 3, resulting in better overall structural stability. The center of the second combined stabilizing column 3 and the second set of precision fitting columns 4 each has a cylindrical second assembly connection hole, which can be fitted into a stainless steel rod at a second position. The combined guide stabilizing mating column 5 has a conical second assembly calibration limiting hole inside, which allows for step-by-step connection during mating, resulting in smoother mating and higher overall accuracy of the mating position after final mating. The right sides of the combined guide stabilizing mating column 5, the second combined stabilizing column 3, and the second set of precision mating columns 4 each have an outward-opening assembly convenience groove 6, allowing for a certain amount of deformation space during mating. An integral safety clearance groove 7 is provided between the combined guide stabilizing mating column 5 and the second combined stabilizing column 3, increasing the structural space in the middle position and preventing tearing at the edges during use.When clamping and installing two stainless steel bars, it can calibrate the position of the installed stainless steel bars. During assembly, the two mating holes allow for convenient connection of stainless steel bars in different positions. The overall assembly occupies less space. The mating position adopts a deformable mating space, making the assembly operation more convenient. The mating connection position is set with a conical mating structure to ensure a smooth combination during assembly. The calibration position allows for more precise calibration and ensures higher relative accuracy of the mating position of the two stainless steel bars, resulting in better product quality during processing.
[0021] Preferably, the main assembly retaining boss 10 has a semi-cylindrical structure, which improves the smoothness of assembly during mating and makes processing more convenient.
[0022] Preferably, the central axis of the second combined stabilizing column 3 is on the same horizontal plane as the central axis of the first main body mating column 1, which makes the overall structure more stable and ensures better fitting accuracy between the two stainless steel bars during mating.
[0023] Preferably, the lower end of the main assembly stabilizing plate 9 is provided with a hand-held auxiliary operation plate that is tilted outward. During disassembly and assembly, it can be hand-held as needed, so that the installation position can be easily deformed and fitted, making the fitting and placement operation during connection more convenient.
[0024] Preferably, the outer edge of the transition support plate 2 is provided with a safety-fitting rounded corner structure, which allows the sharp corner of the outer structure to be rounded during use, thus improving safety.
[0025] The above description is the preferred embodiment of this utility model. It should be noted that for those skilled in the art, several improvements or substitutions can be made without departing from the principle of this utility model, and these improvements or substitutions should also be considered within the protection scope of this utility model.
Claims
1. A stainless steel bar placement and calibration limiting frame, characterized in that: The system includes a cylindrical first main body fitting column (1) with its central axis pointing forward and backward. A main body assembly hole is located at the center of the front of the first main body fitting column (1). A main body fitting clearance safety groove (8) is located at the middle of the left side of the first main body fitting column (1). A main body assembly locking and stabilizing plate (9) is located at the position of the main body fitting clearance safety groove (8) on the main body structure of the first main body fitting column (1). Main body assembly locking and stabilizing plate (9) has main body assembly locking and reinforcing bosses (10) on both sides of its width direction. An integrally formed arc-shaped transition fitting support plate (2) with its opening facing downward is located at the forward and backward direction of the left edge of the main body fitting clearance safety groove (8). An integrally formed cylindrical second combination stabilizing column (3) is located on the left side of the transition fitting support plate (2) at the rear position. An integrally formed cylindrical second combination stabilizing column (3) is located on the left side of the transition fitting support plate (2) at the front position. The second set of precision-fitting columns (4) is formed. The diameter of the second set of combined stabilizing columns (3) is larger than the diameter of the second set of precision-fitting columns (4). The rear side of the second set of precision-fitting columns (4) is provided with an integrally formed conical combined guide stabilizing column (5). The diameter of the rear side of the combined guide stabilizing column (5) is the same as the diameter of the second combined stabilizing column (3). The center positions of the second combined stabilizing column (3) and the second set of precision-fitting columns (4) are respectively provided with cylindrical second assembly connection holes. The interior of the combined guide stabilizing column (5) is provided with conical second assembly calibration limit holes. The right sides of the combined guide stabilizing column (5), the second combined stabilizing column (3) and the second set of precision-fitting columns (4) are respectively provided with assembly convenience grooves with openings facing outwards. An integral safety clearance groove (7) is provided between the combined guide stabilizing column (5) and the second combined stabilizing column (3).
2. The stainless steel bar placement calibration limiting frame according to claim 1, characterized in that: The main assembly retaining and reinforcing boss (10) is a semi-cylindrical structure.
3. The stainless steel bar placement calibration limiting frame according to claim 1, characterized in that: The central axis of the second combined stabilizing column (3) is on the same horizontal plane as the central axis of the first main body cooperating column (1).
4. The stainless steel bar placement calibration limiting frame according to claim 1, characterized in that: The lower end of the main assembly positioning and stabilizing plate (9) is provided with a handheld auxiliary operation cooperation plate that is tilted outward.
5. The stainless steel bar placement calibration limiting frame according to claim 1, characterized in that: The outer edge of the transition fit support plate (2) is provided with a safety fit rounded corner structure.