Cell screen forming mold
Patent Information
- Application Number
- CN202522294187.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-10-30
- Publication Date
- 2026-09-22
- Estimated Expiration
- 2035-10-30
AI Technical Summary
[0003]目前,市面上的细胞筛网的生产方法通常为对多个配件组装成型,主要方法为通过组装形成用于安装细胞筛网的底座,在底座安装完成后,通过在底座上封装筛网完成细胞筛网的加工,但是上述方法步骤复杂,同时在封装筛网的过程中需要保证筛网的紧绷,整体的加工难度大,筛网安装完成后整体结构强度较差,在使用过程中容易出现脱落污染细胞,并影响实验的准确性,并且细胞筛网的制造需要依次拼合各个组件,整体的加工效率低
[0024]通过采用上述技术方案,有益效果:1、本申请通过对成型模具内进行注塑,使得细胞筛网能高速高效的成型,具体的,本申请通过成型壳体以及成型组件,并通过设有注塑通道使得熔融状态的塑料注入腔室内并成型,整体的自动化程度高,无需人工干预,降低了整体的成型难度,同时本申请的腔室设有多个,能一次性完成多个细胞筛网的加工,整体的加工效率高,且加工完成后筛网部分结合的强度高,成品的合格率高,加工完成后的细胞筛网不易脱落,同时在加工的过程中,注塑完成后设置有保压环节,优化了成品的质量,实现了从模具组装到成品脱模的全流程自动化加工,整体加工步骤简单,自动化的程度高。
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Figure CN224781153U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to a medical device, and more specifically, to a cell sieve forming mold. Background Technology
[0002] Cell sieves are physical filters that use different pore sizes to select cells of different diameters. They are mainly used for experimental operations such as cell culture, tissue cell isolation, and cell sorting.
[0003] Currently, the production method of cell sieves on the market usually involves assembling multiple components. The main method is to assemble a base for mounting the cell sieve, and then seal the sieve onto the base to complete the cell sieve manufacturing. However, the above method is complicated, and the sieve needs to be kept taut during the sealing process, which makes the overall processing difficult. After the sieve is installed, the overall structural strength is poor, and it is easy for it to detach and contaminate cells during use, affecting the accuracy of the experiment. Furthermore, the manufacturing of cell sieves requires assembling each component sequentially, resulting in low overall processing efficiency. Utility Model Content
[0004] In view of the shortcomings of the existing technology, the purpose of this utility model is to provide a cell sieve forming mold that is simple to operate, has high processing efficiency, produces a high structural strength of the finished product, and can automatically perform the forming process of cell sieves.
[0005] To achieve the above objectives, the present invention provides the following technical solution: a cell sieve forming mold, comprising a forming shell, the forming shell comprising a forming base and a cover disposed above the forming base, the forming base having a plurality of forming grooves, each of the forming grooves being configured for mounting a forming component, the forming component comprising a support base, a forming block disposed outside the support base and a sealing cover disposed on the top of the forming block, and a channel for injection molding being provided between the forming component and the forming base.
[0006] The present invention is further configured such that: the molding block is provided with a groove, and the groove cooperates with the inner wall of the molding groove to form a cavity for injection molding.
[0007] The present invention is further configured such that: the cover body is provided with a plurality of through holes, and after the cover body is installed on the molding base, the position of the through holes matches the position of the molding groove.
[0008] Preferably, the through hole is further provided with an abutting step, the top of the sealing cover is provided with a protrusion that matches the abutting step, and after the sealing cover is installed in the cover body, the bottom of the sealing cover and the top of the support base form a gap for placing the screen.
[0009] Preferably, the cover body is further provided with an injection hole in the middle, the injection hole is connected to the channel, and an injection groove is provided between the channel and each of the molding grooves, through which the raw material in the channel enters the molding groove.
[0010] Preferably, the top of the cover is further provided with a sealing element, which is configured to seal each through hole of the cover and at least leave an inlet for injection molding.
[0011] As an explanation of the above structure, a manufacturing method of this application is provided, including the following steps: S1, selecting a corresponding cell sieve forming mold based on the cell sieve to be formed;
[0012] S2. Install the molding block and support base inside the molding base, and place the screen on top of the support base. After the screen is placed, install the cover on the molding base, and place the sealing cover in each through hole of the cover. The sealing cover and the support base press the screen together.
[0013] S3. After the sealing cover is installed, install a sealing element on the top of the cover to seal the gap between the sealing cover and the cover.
[0014] S4. Connect the injection molding machine to the inlet of the seal and turn on the injection molding machine;
[0015] S5. The injection molding machine injects molten raw material into the channel. The raw material inside the channel is injected into the molding tank through the injection tank between the molding tank and the channel and fills the cavity between the molding block and the molding tank.
[0016] S6. After the raw material filling is completed, stop the injection of raw material and hold the mold under pressure for a time of T.
[0017] S7. After time period T, remove the seal and cover, and take out the completed cell sieve assembly;
[0018] S8. Process the cell sieve assembly, cut off excess material at the channel, and complete the forming of the cell sieve.
[0019] Preferably, step S6 further includes raw material filling detection, including the following steps: S61, setting the pressure threshold of the outlet to Pm, and detecting the pressure of the injection molding machine outlet during the injection of raw material, with the detection value being P;
[0020] S62. When injecting raw material, if P < Pm, it is determined that the current raw material has not filled the cavity in the molding die, and the injection molding machine continues to discharge material from the outlet. Conversely, if P ≥ Pm, it is determined that the current raw material has filled the cavity in the molding die, and the process jumps to S63 to perform pressure holding state detection.
[0021] S63. The injection molding machine stops discharging material and performs pressure holding for a time of T1. During the pressure holding process, the pressure at the injection molding machine outlet is continuously monitored, and the monitored value is P1.
[0022] S64. If P1 decreases during the T1 time period, it is determined that there is a leak in the molding die or that a cavity is not completely filled. After P1 stabilizes, discharge the material again and make P1 = 1.5Pm.
[0023] S65. Check P1 again. If P1 drops, it is determined that there is a leak in the current molding mold. The injection molding machine stops and the current mold is checked for leaks. Conversely, if P1 remains unchanged, it is determined that the cavity in the current mold is filled.
[0024] By adopting the above technical solution, the following beneficial effects are achieved: 1. This application enables the cell sieve to be formed at high speed and efficiency through injection molding in the molding mold. Specifically, this application uses a molding shell and molding components, and injects molten plastic into the cavity through an injection channel for molding. The overall automation level is high, requiring no manual intervention and reducing the overall molding difficulty. At the same time, this application has multiple cavities, which can complete the processing of multiple cell sieves at one time, resulting in high overall processing efficiency. After processing, the sieve part has high bonding strength, high product qualification rate, and the processed cell sieve is not easy to fall off. In addition, during the processing, a pressure holding stage is set after injection molding, which optimizes the quality of the finished product and realizes the fully automated processing from mold assembly to finished product demolding. The overall processing steps are simple and highly automated.
[0025] 2. Furthermore, the mold is formed by a slot and a forming groove. The slot and the inner wall of the forming groove cooperate to form a cavity. The cavity is automatically formed after the forming block is installed, simplifying the assembly process. During assembly, gaps are formed for installing the cell screen, ensuring accurate positioning of the screen during the pressing process and preventing screen displacement or loosening. This improves the consistency and structural integrity of the finished product. At the same time, during the assembly of the forming mold, each component of the forming mold is provided with positioning holes, eliminating the need for additional positioning during installation, reducing operator error, and preventing screen displacement. The shape of the cavity can be changed by altering the shape of the mold and forming block, making it suitable for the production of cell screens of different specifications, thus improving overall adaptability and practicality.
[0026] 3. Simultaneously, during the molding process of the cell sieve, channels are provided to connect various injection tanks and inject the raw material from the injection holes into the molding tank. The molten raw material can be quickly and evenly injected into the chambers of multiple molding tanks, realizing the one-time molding of multiple cell sieves, which greatly shortens the production cycle. Furthermore, the sealing of the molding mold is ensured during the injection molding process, so that the molten raw material can fully fill the space inside the molding tank, ensuring the integrity of the finished product and a high qualification rate.
[0027] 4. Furthermore, after the raw material injection is completed, a pressure-holding step is set up to detect the pressure value inside the molding die within a predetermined time. Specifically, if the raw material is completely filled, leaving no gaps in the cavity, the pressure value will change little after the injection stops. Conversely, if the raw material is not completely filled or the molding die leaks, the pressure value inside the die will drop. By detecting the pressure value, it can be ensured that the raw material completely fills the inside of the die, ensuring that the shape of the solidified raw material meets the requirements, and that the edges of the screen are completely sealed, avoiding the risk of cell contamination due to tiny gaps, and improving the accuracy of subsequent experimental processes. Attached Figure Description
[0028] Figure 1 This is an exploded view of an embodiment of a cell sieve forming mold and its forming method according to the present invention;
[0029] Figure 2 This is a cross-sectional view of an embodiment of a cell sieve forming mold according to the present invention;
[0030] Figure 3 This is a cross-sectional view from another direction of an embodiment of a cell sieve forming mold according to the present invention;
[0031] The reference numerals in the figure are as follows: 1. Molded shell; 2. Molded base; 3. Cover; 31. Through hole; 32. Contact step; 4. Molded groove; 5. Molded component; 51. Support base; 52. Molded block; 521. Slot; 522. Chamber; 53. Sealing cover; 54. Protrusion; 6. Channel; 7. Seal. Detailed Implementation
[0032] Reference Figures 1 to 3 The present invention provides a further description of an embodiment of a cell sieve forming mold and its forming method.
[0033] For ease of explanation, spatial relative terms such as “up,” “down,” “left,” and “right” are used in the embodiments to describe the relationship of one element or feature shown in the figures relative to another element or feature. It should be understood that, in addition to the orientations shown in the figures, spatial terms are intended to include different orientations of the device in use or operation. For example, if the device in the figures is inverted, an element described as being “down” of other elements or features would be positioned “up” of those other elements or features. Therefore, the exemplary term “down” can encompass both up and down orientations. The device may be positioned in other ways (rotated 90 degrees or in other orientations), and the spatial relative descriptions used herein will be interpreted accordingly.
[0034] Moreover, relational terms such as “first” and “second” are used merely to distinguish one component from another that has the same name, without necessarily requiring or implying any such actual relationship or order between the components.
[0035] A cell sieve forming mold includes a forming shell 1, the forming shell 1 including a forming base 2 and a cover 3 disposed above the forming base 2, the forming base 2 having a plurality of forming grooves 4, each forming groove 4 being configured to install a forming component 5, the forming component 5 including a support base 51, a forming block 52 disposed outside the support base 51 and a sealing cover 53 disposed on the top of the forming block 52, and a channel 6 for injection molding being provided between the forming component 5 and the forming base 2.
[0036] The molding block 52 is provided with a slot 521, which cooperates with the inner wall of the molding tank 4 to form a cavity 522 for injection molding.
[0037] The cover 3 is provided with several through holes 31. After the cover 3 is installed on the molding base 2, the position of the through holes 31 matches the position of the molding groove 4.
[0038] Preferably, the through hole 31 is further provided with an abutment step 32, and the top of the sealing cover 53 is provided with a protrusion 54 that matches the abutment step 32. After the sealing cover 53 is installed in the cover body 3, the bottom of the sealing cover 53 and the top of the support base 51 form a gap for placing the screen.
[0039] Preferably, the cover 3 is further provided with an injection hole in the middle, the injection hole is connected to the channel 6, and an injection groove is provided between the channel 6 and each of the molding grooves 4, the raw material in the channel 6 enters the molding groove 4 through the injection groove.
[0040] Preferably, the top of the cover 3 is further provided with a sealing element 7, which is configured to seal each through hole 31 of the cover 3 and at least leave an inlet for injection molding.
[0041] As an explanation of the above structure, a manufacturing method of this application is provided, including the following steps: S1, selecting a corresponding cell sieve forming mold based on the cell sieve to be formed;
[0042] S2. Install the molding block and support base inside the molding base, and place the screen on top of the support base. After the screen is placed, install the cover on the molding base, and place the sealing cover in each through hole of the cover. The sealing cover and the support base press the screen together.
[0043] S3. After the sealing cover is installed, install a sealing element on the top of the cover to seal the gap between the sealing cover and the cover.
[0044] S4. Connect the injection molding machine to the inlet of the seal and turn on the injection molding machine;
[0045] S5. The injection molding machine injects molten raw material into the channel. The raw material inside the channel is injected into the molding tank through the injection tank between the molding tank and the channel and fills the cavity between the molding block and the molding tank.
[0046] S6. After the raw material filling is completed, stop the injection of raw material and hold the mold under pressure for a time of T.
[0047] S7. After time period T, remove the seal and cover, and take out the completed cell sieve assembly;
[0048] S8. Process the cell sieve assembly, cut off excess material at the channel, and complete the forming of the cell sieve.
[0049] Preferably, step S6 further includes raw material filling detection, including the following steps: S61, setting the pressure threshold of the outlet to Pm, and detecting the pressure of the injection molding machine outlet during the injection of raw material, with the detection value being P;
[0050] S62. When injecting raw material, if P < Pm, it is determined that the current raw material has not filled the cavity in the molding die, and the injection molding machine continues to discharge material from the outlet. Conversely, if P ≥ Pm, it is determined that the current raw material has filled the cavity in the molding die, and the process jumps to S63 to perform pressure holding state detection.
[0051] S63. The injection molding machine stops discharging material and performs pressure holding for a time of T1. During the pressure holding process, the pressure at the injection molding machine outlet is continuously monitored, and the monitored value is P1.
[0052] S64. If P1 decreases during the T1 time period, it is determined that there is a leak in the molding die or that a cavity is not completely filled. After P1 stabilizes, discharge the material again and make P1 = 1.5Pm.
[0053] S65. Check P1 again. If P1 drops, it is determined that there is a leak in the current molding mold. The injection molding machine stops and the current mold is checked for leaks. Conversely, if P1 remains unchanged, it is determined that the cavity in the current mold is filled.
[0054] This application enables high-speed and efficient molding of cell sieves through injection molding within a molding die. Specifically, this application uses a molding shell 1 and molding components 5, and injects molten plastic into a chamber 522 via an injection channel 6 for molding. The overall automation level is high, requiring no manual intervention and reducing the overall molding difficulty. Furthermore, this application has multiple chambers 522, allowing for the simultaneous processing of multiple cell sieves, resulting in high overall processing efficiency. The sieves exhibit high bonding strength after processing, leading to a high product qualification rate and preventing the cell sieves from detaching. Additionally, a pressure-holding stage is incorporated after injection molding to optimize the quality of the finished product. This achieves fully automated processing from mold assembly to product demolding, with simple overall processing steps and a high degree of automation.
[0055] Furthermore, the mold is formed by a slot 521 and a forming groove 4. The slot 521 and the inner wall of the forming groove 4 cooperate to form a cavity 522. The cavity 522 is automatically formed after the forming block 52 is installed, simplifying the assembly process. During assembly, gaps are formed for installing the cell screen, ensuring accurate positioning of the screen during the pressing process and preventing screen displacement or loosening, thereby improving the consistency and structural integrity of the finished product. At the same time, during the assembly of the forming mold, each component of the forming mold is provided with positioning holes, so that no additional positioning is required during installation, reducing operator error and preventing screen offset. The shape of the cavity 522 can be changed by changing the shape of the mold and the forming block 52, making it suitable for the production of cell screens of different specifications, improving the overall adaptability and practicality.
[0056] Meanwhile, during the molding process of the cell sieve, the channel 6 connects each injection tank and injects the raw material in the injection hole into the molding tank 4. The molten raw material can be injected quickly and evenly into the chambers 522 of multiple molding tanks 4, realizing the molding of multiple cell sieves at one time, which greatly shortens the production cycle. In addition, the sealing of the molding mold is ensured during the injection molding process, so that the raw material in the molten state can fully fill the space inside the molding tank 4, ensuring the integrity of the finished product and the high qualification rate of the finished product.
[0057] Furthermore, after the raw material injection is completed, a pressure-holding step is set up to detect the pressure value inside the molding die within a predetermined time. Specifically, if the raw material is completely filled, so that there are no gaps in the chamber 522, the pressure value changes little after the injection of raw material stops. Conversely, if the raw material is not completely filled or the molding die leaks, the pressure value inside the die will drop. By detecting the pressure value, it can be ensured that the raw material completely fills the inside of the die, ensuring that the shape of the raw material after curing meets the requirements, so that the edge of the screen is completely sealed, avoiding the risk of cell contamination due to tiny gaps, and improving the accuracy of subsequent experimental processes.
[0058] The above description is only a preferred embodiment of the present utility model and is not intended to limit the present utility model. Any ordinary changes and substitutions made by those skilled in the art within the scope of the technical solution of the present utility model should be included within the protection scope of the present utility model.
Claims
1. A cell sieve forming mold, comprising a forming shell (1), characterized in that, The molding housing (1) includes a molding base (2) and a cover (3) disposed above the molding base (2). The molding base (2) is provided with a plurality of molding grooves (4). Each molding groove (4) is configured to install a molding assembly (5). The molding assembly (5) includes a support base (51), a molding block (52) disposed outside the support base (51), and a sealing cover (53) disposed on the top of the molding block (52). A channel (6) for injection molding is provided between the molding assembly (5) and the molding base (2).
2. The cell sieve forming mold according to claim 1, characterized in that, The molding block (52) is provided with a slot (521), and the slot (521) cooperates with the inner wall of the molding groove (4) to form a cavity (522) for injection molding.
3. The cell sieve forming mold according to claim 1, characterized in that, The cover (3) is provided with several through holes (31). After the cover (3) is installed on the molding base (2), the position of the through holes (31) matches the position of the molding groove (4).
4. The cell sieve forming mold according to claim 3, characterized in that, The through hole (31) is also provided with an abutting step (32), and the top of the sealing cover (53) is provided with a protrusion (54) that matches the abutting step (32). After the sealing cover (53) is installed in the cover body (3), the bottom of the sealing cover (53) and the top of the support base (51) form a gap for placing the screen.
5. A cell sieve forming mold according to claim 4, characterized in that, The cover (3) is also provided with an injection hole in the middle. The injection hole is connected to the channel (6). An injection groove is also provided between the channel (6) and each of the molding grooves (4). The raw material in the channel (6) enters the molding groove (4) through the injection groove.
6. The cell sieve forming mold according to claim 5, characterized in that, The top of the cover (3) is also provided with a seal (7), which is configured to seal each through hole (31) of the cover (3) and at least leave an inlet for injection molding.