slide carrier
By using a flexible material-based support substrate and deformation groove design, the problem of high cost and glass slide damage during transportation of existing glass slide carriers is solved, providing a low-cost and effective protection effect.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- SHENZHEN S F TAISEN HLDG (GRP) CO LTD
- Filing Date
- 2025-07-30
- Publication Date
- 2026-08-04
AI Technical Summary
Existing slide carriers are expensive and prone to damage during transportation, especially when impacted or bumped, the slide may pop out of the groove.
The support base is made of flexible material and is equipped with a receiving groove and a deformation groove. The receiving groove can expand to accommodate the glass slide when under stress, the flexible material provides protection, and the deformation groove facilitates the insertion and fixation of the glass slide. Combined with the box body and partitions, it ensures safe transportation.
It achieves low-cost glass slide protection, avoids cross-contamination and damage from squeezing and collision, and has a simple structure and high practical value.
Smart Images

Figure CN224589631U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of express logistics technology, and in particular to a glass slide carrier. Background Technology
[0002] In scenarios such as inter-hospital sample transfer, laboratory collaboration, forensic evidence transfer, and sharing of teaching specimens, it is often necessary to send sample slides. To avoid cross-contamination between slides during transportation, or damage caused by relative compression and collision between slides, it is often necessary to use specialized slide carriers for protection.
[0003] In existing technologies, slide carriers typically include a housing and a receiving element disposed within the housing. The receiving element has multiple grooves of the same width as the slides, allowing the slides to be placed in the grooves for separation. The housing is sealed to provide overall protection for all slides within it. However, this type of slide carrier is costly, and when subjected to impacts or bumps, the slides may pop out of the grooves, causing damage. Utility Model Content
[0004] The present invention aims to solve at least one of the technical problems existing in the prior art. To this end, the present invention proposes a glass slide carrier with a relatively simple structure, low manufacturing cost, and good protective effect on the glass slide.
[0005] According to a first aspect of the present invention, a slide carrier includes at least one support substrate made of a flexible material, the support substrate being provided with at least one receiving groove, the receiving groove having opposing first groove walls and second groove walls, the receiving groove being configured to have a first state and a second state.
[0006] In the second state, the distance between the first groove wall and the second groove wall is less than the thickness of the glass slide; the first groove wall and the second groove wall can expand outward under force to switch the receiving groove to a first state in which the glass slide can be inserted between the first groove wall and the second groove wall.
[0007] The slide carrier according to the embodiments of this utility model has at least the following beneficial effects:
[0008] The glass carrier of this application has receiving grooves on the supporting substrate for accommodating glass slides. By setting multiple receiving grooves on the supporting substrate, multiple glass slides are isolated, thereby avoiding cross-contamination between different glass slides. In addition, the supporting substrate is made of flexible material. After the glass slides are installed in the receiving grooves of the supporting substrate, they are protected by the supporting substrate and can avoid damage from compression and impact. This kind of supporting substrate has a relatively simple structure and low manufacturing cost, and at the same time, it has a good protective effect on the glass slides, making it of good practical value.
[0009] According to some embodiments of the present invention, the receiving groove is provided with a deformation groove on at least one side along its width direction, and a deformation portion is defined between the deformation groove and the receiving groove. The deformation portion is configured to be able to move toward the deformation groove under force so that the receiving groove switches to the first state.
[0010] According to some embodiments of the present invention, deformation grooves are provided on both sides of the receiving groove along its width direction, and a deformation groove is provided between adjacent receiving grooves.
[0011] According to some embodiments of the present invention, the supporting base includes a plurality of supporting members, each of the supporting members including two side walls disposed opposite to each other along the width direction of the receiving groove, and including at most two receiving grooves, wherein a deformable portion is defined between the groove wall of the receiving groove and the adjacent side wall, and the deformable portion is capable of moving in a direction away from the receiving groove, so that the receiving groove switches to the first state.
[0012] According to some embodiments of the present invention, adjacent carriers are configured to have a conveying mode and a storage mode, wherein the distance between adjacent carriers in the storage mode is greater than the distance in the conveying mode; in the storage mode, a deformation gap is defined between adjacent carriers, and the deformation portion can move toward the deformation gap under force.
[0013] According to some embodiments of the present invention, the slide carrier further includes a connector, and adjacent slide carriers are connected by the connector. The connector is configured to be foldable or shortened so that adjacent slide carriers can be switched to a transport mode.
[0014] According to some embodiments of this utility model, the connector and the carrier are integrally formed, and in the storage mode, the connector is stretched to form a mesh structure.
[0015] According to some embodiments of the present invention, one of the side walls is provided with a plugging protrusion, and the other side wall is provided with a plugging groove, and adjacent carriers are connected by the plugging protrusion and the plugging groove.
[0016] According to some embodiments of the present invention, the slide carrier includes a box and a plurality of support substrates stacked in the box, with adjacent support substrates separated by spacers.
[0017] According to some embodiments of the present invention, the box body includes a first cover plate, and the slide carrier further includes a filler. The filler is located between the first cover plate and the uppermost bearing substrate, and abuts against the first cover plate and the uppermost bearing substrate respectively.
[0018] Additional aspects and advantages of this invention will be set forth in part in the description which follows, and in part will be obvious from the description, or may be learned by practice of the invention. Attached Figure Description
[0019] The present invention will be further described below with reference to the accompanying drawings and embodiments, wherein:
[0020] Figure 1 This is a schematic diagram of the structure of the support base according to an embodiment of the present utility model;
[0021] Figure 2 This is a top view of the support base according to an embodiment of the present utility model;
[0022] Figure 3 This is a top view of the support base according to another embodiment of the present invention;
[0023] Figure 4 This is a schematic diagram of the structure of the support member according to an embodiment of the present utility model;
[0024] Figure 5 This is a schematic diagram of the structure of the support member according to another embodiment of the present utility model;
[0025] Figure 6 This is a schematic diagram of the structure of the carrier components assembled into a carrier base according to an embodiment of the present utility model;
[0026] Figure 7 This is a schematic diagram of the structure of the carrier component connected by the connector in an embodiment of the present utility model;
[0027] Figure 8 This is an exploded view of the slide carrier according to an embodiment of the present invention.
[0028] Figure label:
[0029] Supporting base 100; receiving groove 110; first groove wall 111; second groove wall 112; first receiving groove 113; second receiving groove 114; deformation groove 120; deformation part 130; supporting member 140; first side wall 141; second side wall 142; insertion protrusion 143; insertion groove 144; connector 150; mesh structure 151;
[0030] Box body 200; partition 300; filler 400;
[0031] 500 glass slides; Detailed Implementation
[0032] The embodiments of this utility model are described in detail below. Examples of these embodiments are shown in the accompanying drawings, wherein the same or similar reference numerals denote the same or similar elements or elements having the same or similar functions throughout. The embodiments described below with reference to the accompanying drawings are exemplary and are only used to explain this utility model, and should not be construed as limiting this utility model.
[0033] In the description of this utility model, it should be understood that the directional descriptions, such as up, down, front, back, left, right, etc., indicate the directional or positional relationship based on the directional or positional relationship shown in the accompanying drawings. They are only for the convenience of describing this utility model and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation. Therefore, they should not be construed as limitations on this utility model.
[0034] In the description of this utility model, "several" means one or more, "multiple" means two or more, "greater than," "less than," and "exceeding" are understood to exclude the stated number, while "above," "below," and "within" are understood to include the stated number. The use of "first" and "second" in the description is merely for distinguishing technical features and should not be construed as indicating or implying relative importance, or implicitly indicating the number of indicated technical features, or implicitly indicating the order of the indicated technical features.
[0035] In the description of this utility model, unless otherwise explicitly defined, terms such as "setting," "installation," and "connection" should be interpreted broadly, and those skilled in the art can reasonably determine the specific meaning of the above terms in this utility model in conjunction with the specific content of the technical solution.
[0036] In the description of this utility model, the terms "one embodiment," "some embodiments," "illustrative embodiment," "example," "specific example," or "some examples," etc., refer to specific features, structures, materials, or characteristics described in connection with that embodiment or example, which are included in at least one embodiment or example of this utility model. In this specification, the illustrative expressions of the above terms do not necessarily refer to the same embodiment or example. Furthermore, the specific features, structures, materials, or characteristics described may be combined in any suitable manner in one or more embodiments or examples.
[0037] In scenarios such as inter-hospital sample transfer, laboratory collaboration, forensic evidence transfer, and sharing of teaching specimens, it is often necessary to send sample slides. To avoid cross-contamination between slides during transportation, or damage caused by relative compression and collision between slides, it is often necessary to use specialized slide carriers for protection.
[0038] In existing technologies, slide carriers typically include a housing and a receiving element disposed within the housing. The receiving element has multiple grooves of the same width as the slides, allowing the slides to be placed in the grooves for separation. The housing is sealed to provide overall protection for all slides within it. However, this type of slide carrier is costly, and when subjected to impacts or bumps, the slides may pop out of the grooves, causing damage.
[0039] To address the aforementioned problems, the first aspect of this application proposes a slide carrier for protecting a glass slide 500 during delivery. Specifically, as shown... Figure 1 and Figure 2 As shown, the slide carrier includes at least one support substrate 100, which is typically made of a flexible material, such as pearl cotton or sponge. The support substrate 100 is provided with at least one receiving groove 110 for receiving a slide 500. It should be noted that the receiving groove 110 includes opposing first groove walls 111 and second groove walls 112, and the distance between the first groove walls 111 and the second groove walls 112 is less than the thickness of the slide 500.
[0040] In some embodiments (not shown in the figures), the receiving groove 110 is a square groove, which includes a bottom wall and four groove walls connected to the bottom wall. The two groove walls along the width direction of the receiving groove 110 are the first groove wall 111 and the second groove wall 112, respectively. The width of the receiving groove 110 is small, and the glass slide 500 cannot be directly inserted into the receiving groove 110 without deformation. The operator can insert his finger between the first groove wall 111 and the second groove wall 112 to expand it outward, thereby forming an opening that allows the glass slide 500 to be inserted.
[0041] Or, as Figure 1 and Figure 2 As shown, the receiving groove 110 can also be a wire groove, which includes a first groove wall 111 and a second groove wall 112 opposite to each other. Along the length of the receiving groove 110, the two ends of the first groove wall 111 and the second groove wall 112 are connected, and along the depth of the receiving groove 110, the bottom ends of the first groove wall 111 and the second groove wall 112 are connected, thus forming a pocket-like structure. The supporting substrate 100 is made of a flexible material with a certain elastic deformation capacity, and the first groove wall 111 and the second groove wall 112 are fitted together when not subjected to external force.
[0042] When the slide 500 needs to be inserted, an outward expansion force is applied to at least one of the first groove wall 111 and the second groove wall 112. The first groove wall 111 and the second groove wall 112 are expanded outward by the force, so that the top of the groove opens, and the slide 500 can be inserted between the first groove wall 111 and the second groove wall 112. For ease of description, this state of the receiving groove 110 is named the first state.
[0043] For example, such as Figure 2 As shown, the operator opens both the first groove wall 111 and the second groove wall 112, so that both the first groove wall 111 and the second groove wall 112 form arc surfaces. The receiving groove 110 as a whole has a spindle-shaped structure with pointed ends and a protruding middle. That is, along the length direction of the receiving groove 110, the distance between the first groove wall 111 and the second groove wall 112 gradually increases and then gradually decreases. Thus, the operator can insert the glass slide 500 into the receiving groove 110. It should be noted that the orientation of the glass slide 500 in the receiving groove 110 can be such that the length direction of the glass slide 500 coincides with the depth direction of the receiving groove 110, or the width direction of the glass slide 500 coincides with the depth direction of the receiving groove 110.
[0044] In addition, the receiving groove 110 also has a second state in which it is not subject to external force. In the second state, the first groove wall 111 and the second groove wall 112 close together to clamp the glass slide 500 between the first groove wall 111 and the second groove wall 112. It can be understood that since the glass slide 500 abuts against the first groove wall 111 and the second groove wall 112 respectively, the horizontal movement of the glass slide 500 is restricted by the first groove wall 111 and the second groove wall 112. In addition, the first groove wall 111 and the second groove wall 112 are kept in a curved deformation state due to the reaction force of the glass slide 500. The first groove wall 111 and the second groove wall 112 both have a tendency to return to a flat surface, which will apply pressure to the glass slide 500 so that there is a large static friction between the glass slide 500 and the groove wall. Thus, the glass slide 500 is fixed in the receiving groove 110, reducing the possibility that the glass slide 500 may detach from the receiving groove 110 in extreme cases.
[0045] For example Figure 1 Taking the glass slide 500 placed flat in the receiving groove 110 as an example, the length of the receiving groove 110 should not be less than the length of the glass slide 500, and the depth of the receiving groove 110 should not be less than the width of the glass slide 500. Preferably, the difference between the depth of the receiving groove 110 and the width of the glass slide 500 is more than 5mm, so that the glass slide 500 can be completely received in the receiving groove 110, and a protective buffer layer with a certain thickness is formed on the top of the glass slide 500.
[0046] A single receiving slot 110 can accommodate one glass slide 500, such as Figure 1 As shown, by providing multiple receiving grooves 110 on the support substrate 100, multiple glass slides 500 are isolated, thereby avoiding the problem of cross-contamination between different glass slides 500. In addition, the support substrate 100 is made of flexible material. After the glass slides 500 are installed in the receiving grooves 110 of the support substrate 100, they are protected by the support substrate 100 and can avoid being squeezed or damaged by collision.
[0047] In summary, the slide carrier of this application, by setting a receiving groove 110 on the bearing substrate 100 to receive the slide 500, has a relatively simple structure and low manufacturing cost, and provides good protection for the slide 500, thus having good practical value.
[0048] Understandably, although the supporting base 100 is made of flexible material, when the operator opens the receiving groove 110, the material around the receiving groove 110 is compressed and its density increases. The greater the opening range, the greater the force required to open the receiving groove 110. For some flexible materials with high density, even if the receiving groove 110 is provided, it is difficult to open the receiving groove 110, which will affect the operator's installation efficiency.
[0049] Therefore, in some embodiments, a deformation groove 120 is provided on at least one side of the receiving groove 110 along its width direction. For ease of description, the bearing base 100 between the deformation groove 120 and the receiving groove 110 is named the deformation part 130. It can be understood that by providing the deformation groove 120 near the receiving groove 110, the structural strength of the deformation part 130 between the receiving groove 110 and the deformation groove 120 can be reduced, so that when the operator opens the receiving groove 110, the deformation part 130 can more easily undergo elastic deformation and move toward the deformation groove 120 after being subjected to force, thereby switching the receiving groove 110 to the first open state.
[0050] For example, such as Figure 1 and Figure 2 As shown, deformation grooves 120 are provided on both sides of the receiving groove 110. Therefore, when the operator opens the receiving groove 110, an outward expanding force can be applied to the first groove wall 111 and the second groove wall 112 respectively, causing the deformation portions 130 on the corresponding sides of the first groove wall 111 and the second groove wall 112 to bend outwards. Alternatively (not shown in the figure), a deformation groove 120 can be provided on one side of the receiving groove 110, for example, on the side of the first groove wall 111 away from the second groove wall 112. Therefore, when the operator opens the receiving groove 110, even if the deformation of the second groove wall 112 is small, the deformation of the first groove wall 111 can still meet the insertion requirements of the glass slide 500.
[0051] Therefore, the arrangement of the receiving groove 110 and the deformation groove 120 can be varied: such as Figure 2As shown, deformation grooves 120 are provided on both sides of the receiving groove 110 along its width direction, and a deformation groove 120 is provided between adjacent receiving grooves 110. That is, the receiving grooves 110 and deformation grooves 120 are alternately arranged along the width direction of the receiving grooves 110. Thus, the two groove walls of each receiving groove 110 can undergo elastic deformation after being subjected to force. In this way, the receiving grooves 110 are separated by deformation grooves 120, and the deformation of one receiving groove 110 has a small impact on the other receiving groove 110.
[0052] Or, as Figure 3 As shown, two receiving grooves 110 are provided between two adjacent deformation grooves 120. The side wall of each receiving groove 110 closest to the deformation groove 120 can undergo elastic deformation, while the side wall does not undergo elastic deformation or has a small amount of elastic deformation, thereby reducing the impact on the glass slide 500 in the adjacent receiving groove 110. This method requires fewer deformation grooves 120 and allows for more receiving grooves 110 for receiving glass slides 500 to be opened within a limited volume.
[0053] It is understandable that the arrangement of the above-mentioned receiving groove 110 and deformation groove 120 can be reasonably selected according to the material hardness, material density of the bearing substrate 100, and the arrangement density of the glass slides 500.
[0054] It should be noted that, in the above embodiments, as Figure 1 As shown, the supporting base 100 is a single plate with a receiving groove 110 and a deformation groove 120. Since the deformation groove 120 occupies a certain amount of space, affecting the space utilization of the supporting base 100, in other embodiments, such as... Figures 4 to 6 As shown, the supporting base 100 is divided into multiple supporting members 140. Each supporting member 140 includes two sidewalls arranged opposite each other along the width direction of the receiving groove 110, and a receiving groove 110 disposed between the two sidewalls. It should be noted that each supporting member 140 has at most two receiving grooves 110. For easy distinction, the two sidewalls are named the first sidewall 141 and the second sidewall 142, respectively.
[0055] For example, as Figure 4 Taking the carrier 140 shown as having a receiving groove 110 as an example, a deformation portion 130 is defined between the left side wall of the receiving groove 110 and the first side wall 141 on the left side, and a deformation portion 130 is defined between the right side wall of the receiving groove 110 and the second side wall 142 on the right side. Thus, both the left and right side walls of the receiving groove 110 can expand and deform outwards, while the deformation portion 130 moves in a direction away from the receiving groove 110, so that the receiving groove 110 switches to the open first state. Or, as... Figure 5In the illustrated embodiment, the support member 140 is provided with two receiving grooves 110. For easy distinction, the receiving groove 110 on the left is named the first receiving groove 113, and the receiving groove 110 on the right is named the second receiving groove 114. The first receiving groove 113 is located to the left of the second receiving groove 114. The left sidewall of the first receiving groove 113 and the first sidewall 141 on the left define a deformation portion 130, so that the left sidewall of the first receiving groove 113 can deform to the left, opening the first receiving groove 113. The right sidewall of the second receiving groove 114 and the second sidewall 142 on the right define a deformation portion 130, so that the right sidewall of the second receiving groove 114 can deform to the right, opening the second receiving groove 114.
[0056] Furthermore, after each carrier 140 has accommodated a glass slide 500, adjacent carriers 140 are configured to have a conveying mode and a storage mode. In the conveying mode, the distance between adjacent carriers 140 is small, or there is no gap between the sidewalls of adjacent carriers 140. In the storage mode, adjacent carriers 140 are spaced apart, thereby defining a deformation gap between adjacent carriers 140, and the deformation portion 130 on the carrier 140 can move towards the deformation gap under force. It should be noted that the distance between adjacent carriers 140 in the storage mode is greater than the distance between adjacent carriers 140 in the conveying mode. Therefore, the volume of the carrier substrate 100 in the conveying mode is smaller than the volume occupied by the carrier substrate 100 in the storage mode, which is beneficial for the packaging and transportation of large quantities of glass slides 500.
[0057] In some embodiments, the individual carriers 140 are independent of each other and are assembled together after the glass slide 500 is installed to form the carrier substrate 100. For example, as shown... Figure 4 As shown, each carrier 140 has a protrusion 143 on one sidewall and a recess 144 on the other. Adjacent carriers 140 are connected by the protrusion 143 and the recess 144 to form a complete carrier base 100. Since the carriers 140 are detachably connected, when the slide 500 needs to be installed, a single carrier 140 is separated from the others to facilitate opening the receiving groove 110 on the carrier 140. After the slide 500 is inserted, as... Figure 6 As shown, the carrier 140 is combined with the other carriers 140 that house the glass slide 500, so that it is not necessary to provide a deformation groove 120 for deformation on the carrier substrate 100.
[0058] Furthermore, the insertion protrusion 143 may protrude from the sidewall of the support member 140 along the width direction of the receiving groove 110. Correspondingly, the insertion groove 144 may be recessed into the sidewall of the support member 140 along the width direction of the receiving groove 110. Adjacent support members 140 can be joined by moving along the width direction of the receiving groove 110. Alternatively, the insertion protrusion 143 may extend along the depth direction of the receiving groove 110 and protrude from the sidewall of the support member 140. Correspondingly, the insertion groove 144 extends along the depth direction of the receiving groove 110 and forms an opening on at least the top or bottom wall of the support member 140 for the insertion protrusion 143 to be inserted. Thus, adjacent support members 140 can be joined by moving along the depth direction of the receiving groove 110.
[0059] In other embodiments, the slide carrier also includes a connector 150, through which adjacent slides 140 are connected. The connector 150 can be folded or shortened so that adjacent slides 140 can switch from a storage mode to a transport mode.
[0060] Furthermore, as Figure 7 As shown in the example, adjacent carriers 140 are spaced apart and connected by connectors 150. The connectors 150 and carriers 140 are integrally formed. In conveying mode, the connectors 150 contract to reduce the distance between adjacent carriers 140. In storage mode, the connectors 150 stretch into a mesh structure 151 with multiple openings to increase the distance between adjacent carriers 140, allowing for the deformation space of the deformable portion 130. It can be understood that by being configured as a mesh structure 151, the connectors 150 have the ability to contract and stretch, thereby allowing their length to be adjusted as needed to change the spacing between adjacent carriers 140.
[0061] In other embodiments (not shown in the figure), adjacent carriers 140 can also be connected by connectors 150 such as cable ties, buckles, ropes, etc., which can also achieve the effect of smaller spacing between adjacent carriers 140 in the conveying mode. Furthermore, in the storage mode, each carrier 140 is connected by connectors 150, which also has good integrity and avoids the risk of a single carrier 140 falling off or being lost.
[0062] Understandably, this type of support base 100 with connectors 150 has better applicability. For example, the support base 100 includes six support members 140, each of which is provided with a receiving groove 110. Thus, the support base 100 is fully loaded when it accommodates six glass slides 500. However, if the number of glass slides 500 is less than six, the support members 140 that do not require the insertion of glass slides 500 can be combined, and the support members 140 that require the installation of glass slides 500 can be pulled apart to reduce the volume of the support base 100.
[0063] In some embodiments, such as Figure 8 As shown, the slide carrier also includes a box 200, which can be a plastic box or a paper box. Multiple bearing substrates 100 are stacked within the box 200. To prevent damage to the slide 500 caused by pressure between adjacent layers of bearing substrates 100, adjacent layers of bearing substrates 100 are separated by separators 300. The separators 300 can be made of flexible materials, such as pearl cotton, which can act as a buffer when impacted, or they can be made of rigid materials, such as wood or metal sheets, which can strengthen the overall strength of the box 200 and disperse the impact load through large-area contact between the sheet material and the bearing substrates 100, reducing the local impact intensity.
[0064] Furthermore, the housing 200 includes a first cover plate (not shown in the figure) at the top. After the support base 100 is placed in the housing 200, in order to prevent the support base 100 from vibrating in the housing 200, a filler 400 is provided between the first cover plate and the uppermost support base 100. The filler 400 can be pearl cotton, bubble wrap, etc., and can abut against the first cover plate and the uppermost support base 100 respectively to fix the support base 100.
[0065] The embodiments of the present invention have been described in detail above with reference to the accompanying drawings. However, the present invention is not limited to the above embodiments. Within the scope of knowledge possessed by those skilled in the art, various changes can be made without departing from the spirit of the present invention. Furthermore, the embodiments of the present invention and the features thereof can be combined with each other unless otherwise specified.
Claims
1. A slide carrier, characterized by include: At least one support substrate, the support substrate being made of a flexible material, the support substrate being provided with at least one receiving groove, the receiving groove having opposing first groove walls and second groove walls, the receiving groove being configured to have a first state and a second state; In the second state, the distance between the first groove wall and the second groove wall is less than the thickness of the glass slide; the first groove wall and the second groove wall can expand outward under force to switch the receiving groove to a first state in which the glass slide can be inserted between the first groove wall and the second groove wall.
2. The slide carrier of claim 1, wherein, The receiving groove is provided with a deformation groove on at least one side along its width direction, and a deformation portion is defined between the deformation groove and the receiving groove. The deformation portion is configured to be able to move toward the deformation groove under force so that the receiving groove switches to the first state.
3. The slide carrier of claim 2, wherein, The receiving groove is provided with deformation grooves on both sides along its width direction, and a deformation groove is provided between adjacent receiving grooves.
4. The slide carrier of claim 1, wherein, The supporting base includes multiple supporting members, each of the supporting members including two sidewalls disposed opposite to each other along the width direction of the receiving groove, and including at most two receiving grooves. A deformable portion is defined between the groove wall of the receiving groove and the adjacent sidewalls. The deformable portion is capable of moving in a direction away from the receiving groove, so that the receiving groove switches to the first state.
5. The slide carrier of claim 4, wherein, The adjacent carriers are configured to have a conveying mode and a storage mode, wherein the distance between the adjacent carriers in the storage mode is greater than the distance in the conveying mode; in the storage mode, a deformation gap is defined between the adjacent carriers, and the deformation part can move toward the deformation gap under force.
6. The slide carrier of claim 5, wherein, The slide carrier also includes a connector, through which adjacent slides are connected. The connector is configured to be foldable or shortened so that adjacent slides can be switched to a transport mode.
7. The slide carrier of claim 6, wherein, The connector and the support are integrally formed. In the storage mode, the connector is stretched to form a mesh structure.
8. The slide carrier of claim 4, wherein, One of the sidewalls is provided with a plugging protrusion, and the other sidewall is provided with a plugging groove. Adjacent carriers are connected by the plugging protrusion and the plugging groove.
9. The slide carrier of claim 1, wherein, The slide carrier includes a box and multiple support substrates stacked in the box, with adjacent support substrates separated by spacers.
10. The slide carrier of claim 9, wherein, The box includes a first cover plate, and the slide carrier also includes a filler, which is located between the first cover plate and the uppermost support substrate, and abuts against the first cover plate and the uppermost support substrate respectively.