Flexible chip loading structure

By designing a positioning mechanism in the flexible chip loading structure, using positioning teeth, plate body projections and groove structures and elastic projections, the problem of accurate positioning of the flexible chip during relative movement is solved, and a high-precision positioning effect is achieved.

CN222860394UActive Publication Date: 2025-05-13嘉兴聚鑫隆科技有限公司 +1
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Patent Information

Application Number
CN202421670924.8
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-07-15
Publication Date
2025-05-13
Estimated Expiration
2034-07-15

AI Technical Summary

Technical Problem

The prior art is difficult to accurately locate the flexible chip to a predetermined position of the load mechanism during relative movement of the flexible chip with respect to the load mechanism.

Method used

A flexible chip loading structure including a load bearing mechanism and a positioning mechanism is adopted. The positioning mechanism uses several positioning teeth and plate body projections and groove structures to achieve accurate positioning of the flexible chip with the design of the elastic projections and positioning plates.

Benefits of technology

During the relative movement of the flexible chip and the bearing mechanism, the positioning mechanism can stably drive the flexible chip to move simultaneously, accurately position it to the predetermined position of the bearing mechanism, and improve positioning accuracy and stability.

✦ Generated by Eureka AI based on patent content.

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    Figure CN222860394U_ABST
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Abstract

The utility model discloses a flexible chip loading structure, which comprises a bearing mechanism and a positioning mechanism, and the positioning mechanism moves relative to the bearing mechanism. The bearing mechanism comprises a first plate body, a second plate body, a third plate body and a fourth plate body, and the first plate body, the second plate body, the third plate body and the fourth plate body are adjacent to one another and define an accommodating cavity for accommodating the positioning mechanism and the flexible chip. The positioning mechanism comprises a plurality of positioning teeth, and a positioning gap is formed between every two adjacent positioning teeth. The flexible chip loading structure disclosed by the utility model has the beneficial effects that in the process that the positioning mechanism moves relative to the bearing mechanism, the positioning teeth are matched with the tooth-shaped outer structure of the flexible chip, so that the flexible chip is stably driven to synchronously move equivalent to the bearing mechanism; and the flexible chip is positioned to the preset position of the bearing mechanism by the positioning mechanism.
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Description

Technical Field

[0001] The utility model belongs to the field of flexible sensor equipment, and in particular relates to a flexible chip loading structure. Background Art

[0002] The publication number is CN220969159U, the subject name is a utility model patent for a flexible film chip loading and positioning device, and its IPC classification number is B01L3 / 00. Its technical solution discloses "comprising a detection box bottom plate (1), the upper surface of the detection box bottom plate (1) is provided with symmetrical threaded holes (2), a chip holder (3) is arranged above the detection box bottom plate (1), both ends of the upper side of the chip holder (3) are threadedly connected with bolts (4), the two bolts (4) both penetrate the chip holder (3), and the lower ends of the two bolts (4) are threadedly connected to the two threaded holes (2) correspondingly. The chip holder (3) is fixedly connected to the detection box bottom plate (1) by bolts (4); a chip (5) is arranged between the detection box bottom plate (1) and the chip holder (3); a first positioning hole (6) and a second positioning hole (7) are penetrated through the upper side wall of the chip (5); a first positioning pin (8) and a second positioning pin (9) are fixedly arranged on the upper side wall of the detection box bottom plate (1); the first positioning pin (8) is plugged into the first positioning hole (6), and the second positioning pin (9) is plugged into the second positioning hole (7); and a detection window (10) is opened on the upper surface of the detection box bottom plate (1).

[0003] It can be seen that the above utility model patent discloses one of the loading structures of the flexible chip. However, the technical solution disclosed in the above utility model patent needs to be further improved to further solve the problem of how to accurately position the flexible chip to the predetermined position of the supporting mechanism during the relative movement relative to the supporting mechanism. Utility Model Content

[0004] The utility model aims at the prior art, overcomes the above defects and provides a flexible chip loading structure.

[0005] The utility model adopts the following technical scheme: a flexible chip loading structure includes a bearing mechanism and a positioning mechanism, and the positioning mechanism moves relative to the bearing mechanism, wherein:

[0006] The bearing mechanism comprises a first plate body, a second plate body, a third plate body and a fourth plate body, wherein the first plate body, the second plate body, the third plate body and the fourth plate body are adjacent to each other and enclose to form a receiving cavity for receiving the positioning mechanism and the flexible chip;

[0007] The positioning mechanism comprises a plurality of positioning teeth, and there is a positioning gap between adjacent positioning teeth.

[0008] As a further preferred technical solution of the above technical solution, the second plate body is provided with a plurality of plate body protrusions, the first plate body is provided with a plurality of plate body protrusions, and plate body grooves are provided between adjacent plate body protrusions.

[0009] As a further preferred technical solution of the above technical solution, the fourth plate body is provided with a plurality of elastic protrusions, and each elastic protrusion is elastically connected to the fourth plate body.

[0010] As a further preferred technical solution of the above technical solution, the positioning mechanism also includes a positioning plate and a push rod, the push rod is fixedly connected to the positioning plate, and the positioning teeth and the push rod are respectively located on opposite sides of the positioning plate.

[0011] As a further preferred technical solution of the above technical solution, a positioning sleeve is provided at the joint of the push rod and the positioning plate, and both ends of the positioning sleeve are respectively provided with positioning wings.

[0012] The flexible chip loading structure disclosed by the utility model has the beneficial effect that, during the relative movement of the positioning mechanism relative to the supporting mechanism, the positioning teeth and the toothed external structure of the flexible chip match each other, thereby stably driving the flexible chip to move synchronously with the supporting mechanism until the flexible chip is positioned by the positioning mechanism to a predetermined position of the supporting mechanism. BRIEF DESCRIPTION OF THE DRAWINGS

[0013] Figure 1 This is the main view of this application.

[0014] Figure 2 It is a top view of the present application.

[0015] Figure 3 It is a stereogram from one viewing angle of this application.

[0016] Figure 4 It is a stereogram from another viewing angle of the present application.

[0017] Figure 5 It is a stereoscopic diagram from another viewing angle of the present application.

[0018] Figure 6 yes Figure 5 A partial enlarged view of area A.

[0019] Figure 7 yes Figure 5 A partial enlarged view of area B in the middle.

[0020] The reference numerals include: 100-carrying mechanism; 101-accommodating cavity; 102-plate protrusion; 103-plate groove; 104-elastic protrusion; 110-first plate; 120-second plate; 130-third plate; 140-fourth plate; 200-positioning mechanism; 210-positioning tooth; 211-positioning gap; 220-positioning plate; 230-push rod; 240-positioning sleeve; 241-positioning wing. DETAILED DESCRIPTION

[0021] The utility model discloses a flexible chip loading structure. The following is combined with a preferred embodiment (embodiment 1) and the accompanying drawings. Figure 1-7 , the specific implementation methods of the utility model are further described.

[0022] See attached figure Figures 1 to 7 , Figures 1 to 5 The flexible chip loading structure at different viewing angles is shown. Figure 6 and Figure 7 The partial structures of the flexible chip loading structure are shown respectively.

[0023] Embodiment 1 (the first plate body 110 , the second plate body 120 , the third plate body 130 and the fourth plate body 140 are detachably connected and enclosed to form a (semi-open) accommodating cavity 101 for accommodating the positioning mechanism 200 and the flexible chip).

[0024] Preferably, the flexible chip loading structure includes a carrier mechanism 100 and a positioning mechanism 200, and the positioning mechanism 200 moves relative to the carrier mechanism 100, so that the flexible chip (not shown in the figure) is positioned (displaced) to a predetermined position of the carrier mechanism 100, so that the flexible chip can be further processed in subsequent steps, wherein:

[0025] The carrying mechanism 100 includes a first plate body 110, a second plate body 120, a third plate body 130 and a fourth plate body 140, which are detachably connected and enclosed to form a (semi-open) accommodating cavity 101 for accommodating the positioning mechanism 200 and the flexible chip;

[0026] The positioning mechanism 200 includes a plurality of positioning teeth 210, and a positioning gap 211 is provided between adjacent positioning teeth 210, so that during the relative movement of the positioning mechanism 200 relative to the supporting mechanism 100, the positioning teeth 210 and the tooth-shaped external structure of the flexible chip match each other, thereby stably driving the flexible chip to move synchronously with the supporting mechanism 100 until the flexible chip is positioned (displaced) by the positioning mechanism 200 to a predetermined position of the supporting mechanism 100.

[0027] Among them, the second plate body 120 (part of the inner surface) is provided with a plurality of plate body protrusions 102 (along the movement direction of the flexible chip), and there are plate body grooves 103 between adjacent plate body protrusions 102, so that the second plate body 120 has a concave-convex structure composed of the plate body protrusions 102 and the plate body grooves 103 at a preset position close to the flexible chip, which then matches the toothed external structure of the flexible chip, thereby accurately assisting in "guiding" the flexible chip to the predetermined position of the supporting mechanism 100.

[0028] Among them, the first plate body 110 (part of the inner surface) is provided with a plurality of plate body protrusions 102 (along the movement direction of the flexible chip), and there are plate body grooves 103 between adjacent plate body protrusions 102, so that the first plate body 120 has a concave-convex structure composed of the plate body protrusions 102 and the plate body grooves 103 at a preset position close to the flexible chip, which then matches the toothed external structure of the flexible chip, thereby accurately assisting in "guiding" the flexible chip to the predetermined position of the supporting mechanism 100.

[0029] Among them, the fourth plate body 140 (the inner surface) is provided with a plurality of elastic protrusions 104, each of which is elastically connected to the fourth plate body 140. When the displacement stroke of the flexible chip is too long (beyond the predetermined position) causing unnecessary physical contact between the flexible chip and the fourth plate body 140, the flexible chip first contacts the elastic protrusion 104 to minimize the deformation of the flexible chip.

[0030] The positioning mechanism 200 further includes a positioning plate 220 and a push rod 230 . The push rod 230 is fixedly connected to the positioning plate 220 . The positioning teeth 210 and the push rod 230 are respectively located on different sides of the positioning plate 220 .

[0031] A positioning sleeve 240 is provided at the joint between the push rod 230 and the positioning plate 220 , and both ends of the positioning sleeve 240 have positioning wings 241 .

[0032] Embodiment 2 (the first plate body 110 , the second plate body 120 , the third plate body 130 and the fourth plate body 140 are fixedly connected and enclosed to form a (semi-open) accommodating cavity 101 for accommodating the positioning mechanism 200 and the flexible chip).

[0033] Preferably, the flexible chip loading structure includes a carrier mechanism 100 and a positioning mechanism 200, and the positioning mechanism 200 moves relative to the carrier mechanism 100, so that the flexible chip (not shown in the figure) is positioned (displaced) to a predetermined position of the carrier mechanism 100, so that the flexible chip can be further processed in subsequent steps, wherein:

[0034] The carrying mechanism 100 includes a first plate body 110, a second plate body 120, a third plate body 130 and a fourth plate body 140, which are fixedly connected and enclosed to form a (semi-open) accommodating cavity 101 for accommodating the positioning mechanism 200 and the flexible chip;

[0035] The positioning mechanism 200 includes a plurality of positioning teeth 210, and a positioning gap 211 is provided between adjacent positioning teeth 210, so that during the relative movement of the positioning mechanism 200 relative to the supporting mechanism 100, the positioning teeth 210 and the tooth-shaped external structure of the flexible chip match each other, thereby stably driving the flexible chip to move synchronously with the supporting mechanism 100 until the flexible chip is positioned (displaced) by the positioning mechanism 200 to a predetermined position of the supporting mechanism 100.

[0036] Among them, the second plate body 120 (part of the inner surface) is provided with a plurality of plate body protrusions 102 (along the movement direction of the flexible chip), and there are plate body grooves 103 between adjacent plate body protrusions 102, so that the second plate body 120 has a concave-convex structure composed of the plate body protrusions 102 and the plate body grooves 103 at a preset position close to the flexible chip, which then matches the toothed external structure of the flexible chip, thereby accurately assisting in "guiding" the flexible chip to the predetermined position of the supporting mechanism 100.

[0037] Among them, the first plate body 110 (part of the inner surface) is provided with a plurality of plate body protrusions 102 (along the movement direction of the flexible chip), and there are plate body grooves 103 between adjacent plate body protrusions 102, so that the first plate body 120 has a concave-convex structure composed of the plate body protrusions 102 and the plate body grooves 103 at a preset position close to the flexible chip, which then matches the toothed external structure of the flexible chip, thereby accurately assisting in "guiding" the flexible chip to the predetermined position of the supporting mechanism 100.

[0038] Among them, the fourth plate body 140 (the inner surface) is provided with a plurality of elastic protrusions 104, each of which is elastically connected to the fourth plate body 140. When the displacement stroke of the flexible chip is too long (beyond the predetermined position) causing unnecessary physical contact between the flexible chip and the fourth plate body 140, the flexible chip first contacts the elastic protrusion 104 to minimize the deformation of the flexible chip.

[0039] The positioning mechanism 200 further includes a positioning plate 220 and a push rod 230 . The push rod 230 is fixedly connected to the positioning plate 220 . The positioning teeth 210 and the push rod 230 are respectively located on different sides of the positioning plate 220 .

[0040] A positioning sleeve 240 is provided at the joint between the push rod 230 and the positioning plate 220 , and both ends of the positioning sleeve 240 have positioning wings 241 .

[0041] It is worth mentioning that the technical features such as flexible chips involved in this utility model patent application should be regarded as prior art. The specific structure, working principle and possible control method and spatial layout method of these technical features can be selected by conventional methods in the field and should not be regarded as the invention point of this utility model patent. This utility model patent will not be further elaborated.

[0042] For those skilled in the art, it is still possible to modify the technical solutions described in the aforementioned embodiments, or to make equivalent substitutions for some of the technical features therein. Any modifications, equivalent substitutions, improvements, etc. made within the spirit and principles of the present utility model should be included in the protection scope of the present utility model.

Claims

1. A flexible chip loading structure, characterized in that: It includes a bearing mechanism and a positioning mechanism, and the positioning mechanism moves relative to the bearing mechanism, wherein: The bearing mechanism comprises a first plate body, a second plate body, a third plate body and a fourth plate body, wherein the first plate body, the second plate body, the third plate body and the fourth plate body are adjacent to each other and enclose to form a receiving cavity for receiving the positioning mechanism and the flexible chip; The positioning mechanism comprises a plurality of positioning teeth, and there is a positioning gap between adjacent positioning teeth.

2. The flexible chip loading structure according to claim 1, characterized in that: The second plate body is provided with a plurality of plate body protrusions, the first plate body is provided with a plurality of plate body protrusions, and plate body grooves are provided between adjacent plate body protrusions.

3. The flexible chip loading structure according to claim 1, characterized in that: The fourth plate body is provided with a plurality of elastic protrusions, and each elastic protrusion is elastically connected to the fourth plate body.

4. The flexible chip loading structure according to claim 1, characterized in that: The positioning mechanism also includes a positioning plate and a push rod, the push rod is fixedly connected to the positioning plate, and the positioning teeth and the push rod are respectively located on different sides of the positioning plate.

5. The flexible chip loading structure according to claim 1, characterized in that: A positioning sleeve is provided at the joint of the push rod and the positioning plate, and positioning wings are respectively provided at both ends of the positioning sleeve.

Citation Information

Patent Citations

  • A flexible film chip loading and positioning device

    CN220969159U