Storage device for polypeptide production
By designing a trapezoidal slide rail and locking components for a peptide production storage device, the problems of easy damage and inconvenience in handling peptide storage devices during transportation were solved, achieving convenient peptide retrieval and safe storage.
Patent Information
- Application Number
- CN202520512380.0
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-03-24
- Publication Date
- 2026-02-24
- Estimated Expiration
- 2035-03-24
AI Technical Summary
Existing peptide storage devices are easily damaged by external impacts during transportation, and the protective shell must be removed as a whole when retrieving peptides, which affects the work efficiency of staff.
A storage device for peptide production was designed, comprising a refrigeration component, a mounting frame, an auxiliary unit, and a locking component. Through the cooperation of components such as a trapezoidal slide rail, a protective shell, a connecting shaft, a sliding seat, a fixing rod frame, a spring, a pressure chamber, and a pin frame, the protective shell can be easily opened and sealed, improving the ease of handling.
It effectively protects the safety of stored peptides during transportation, simplifies the peptide handling process, and improves the work efficiency of staff.
Smart Images

Figure CN223939719U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of polypeptide storage technology, and in particular to a storage device for polypeptide production. Background Technology
[0002] With the increasing maturity of biotechnology and peptide synthesis technology, more and more peptide drugs are being developed and applied in clinical practice. Existing peptide drug storage devices have simple structures and most do not have protective devices. The boxes used for storage are easily damaged by external impacts during transportation, which affects their service life.
[0003] The prior art patent application with publication number CN217900255U discloses a storage device for the production of polypeptide drugs, including a base, a refrigeration component installed on the base, a support plate and a refrigerator installed on the sleeve, a protective shell covering the refrigerator, a sliding plate connected to the sleeve, and a top rod installed on the sliding plate. It is easy to use, and the temperature inside the refrigerator can be freely adjusted through the above components. It can also classify and store different polypeptide drugs for easy retrieval, thereby further improving the convenience of use. At the same time, the protective shell and rubber sleeve protect the refrigerator when it is not in use, thereby avoiding damage caused by external forces during transportation.
[0004] However, in the aforementioned existing technologies, the protective shell needs to be removed as a whole to retrieve the peptide, which is inconvenient for staff to retrieve the stored items and affects their work efficiency. Utility Model Content
[0005] The purpose of this invention is to provide a storage device for polypeptide production, which solves the problem in the prior art that the protective shell needs to be removed as a whole to retrieve polypeptides, which is inconvenient for workers to retrieve the stored items and affects their work efficiency.
[0006] To achieve the above objectives, this utility model provides a storage device for peptide production, including a refrigeration component, a mounting frame, and an auxiliary unit. The auxiliary unit includes a trapezoidal slide rail, a protective shell, a connecting shaft, a sliding seat, a fixed rod frame, a spring, a pressure chamber, a pin frame, a storage component, and a locking component. The refrigeration component is disposed on the inner side wall of the mounting frame, and the auxiliary unit is disposed above the mounting frame. The trapezoidal slide rail is fixedly connected to the mounting frame and located above the mounting frame. The protective shell is disposed above the mounting frame. The connecting shaft is fixedly connected to the protective shell and located on one side of the protective shell. The sliding seat is fixedly connected to the connecting shaft and located on the side wall of the protective shell. One end of the shaft is connected, and the sliding seat is slidably engaged with the trapezoidal slide rail. The fixed rod frame is fixedly connected to the sliding seat and located on one side of the sliding seat. The pressure chamber is slidably connected to the fixed rod frame and located on the outer side wall of the pressure chamber. The two ends of the spring are fixedly connected to the pressure chamber and the fixed rod frame respectively. The trapezoidal slide rail has a trapezoidal hole, and the trapezoidal hole slides with the fixed rod frame. The pin frame is fixedly connected to the pressure chamber and located on the outer side wall of the pressure chamber. The trapezoidal slide rail has an insertion hole, and the insertion hole is adapted to the pin frame. The storage component is disposed on the inner side wall of the mounting frame. The locking component is connected to the mounting frame and the protective shell respectively.
[0007] The storage component includes a refrigerator, a shelf, and multiple partitions. The refrigerator is fixedly connected to the mounting frame and located on the inner side wall of the mounting frame. The refrigerator is also connected to the refrigeration component. The shelf is fixedly connected to the refrigerator and located on the inner side wall of the refrigerator. The multiple partitions are all fixedly connected to the shelf and are located above the shelf.
[0008] The storage component further includes a temperature sensor and a controller. The temperature sensor is fixedly connected to the refrigerator and located on the inner wall of the refrigerator. The controller is fixedly connected to the mounting bracket and located on the outer wall of the mounting bracket. The controller is electrically connected to both the temperature sensor and the refrigeration component.
[0009] The locking assembly includes a base, a U-shaped buckle, and a locking frame. The base is fixedly connected to the mounting frame and located below the mounting frame. The U-shaped buckle is rotatably connected to the base and located on the inner side wall of the base. The locking frame is threadedly connected to the U-shaped buckle and located above the U-shaped buckle.
[0010] The locking assembly further includes a mating ring and a sealing layer. The mating ring is fixedly connected to the mounting bracket and located above the mounting bracket. The sealing layer is fixedly connected to the mating ring and located above the mating ring, and the sealing layer is in contact with the protective shell.
[0011] This utility model discloses a storage device for polypeptide production. In use, pulling the pressure chamber compresses the spring along with the fixed rod, causing the pin holder to disengage from the insertion hole. Then, lifting the protective shell allows the fixed rod and sliding seat to move along the trapezoidal slide rail. After adjusting to a suitable position, releasing the pressure chamber allows the pin holder to enter the insertion hole, facilitating the fixation of the protective shell. The storage component holds the stored polypeptides, and the locking component connects the mounting bracket and the protective shell to improve the seal. This method allows for easy retrieval of the stored polypeptides by staff, enhancing the device's convenience. Attached Figure Description
[0012] To more clearly illustrate the technical solutions in the embodiments of this application or the prior art, the accompanying drawings used in the description of the embodiments or the prior art will be briefly introduced below.
[0013] Figure 1 This is a schematic diagram of the structure of the storage device for polypeptide production according to this utility model.
[0014] Figure 2 This is a right view of the storage device for polypeptide production according to this utility model.
[0015] Figure 3 This is the utility model Figure 2 A sectional view along line AA.
[0016] Figure 4 This is the utility model Figure 3 Enlarged view of the local structure at point B.
[0017] 101-Refrigeration component, 102-Mounting bracket, 103-Trapezoidal slide rail, 104-Protective shell, 105-Connecting shaft, 106-Sliding seat, 107-Fixing rod bracket, 108-Spring, 109-Pressure compartment, 110-Pin bracket, 111-Refrigerator, 112-Shelf, 113-Partition, 114-Temperature sensor, 115-Controller, 116-Base, 117-U-shaped buckle, 118-Locking bracket, 119-Matching ring, 120-Sealing layer, 121-Trapezoidal hole, 122-Socket. Detailed Implementation
[0018] Please see Figures 1 to 4 ,in, Figure 1 This is a schematic diagram of the structure of the storage device for polypeptide production according to this utility model. Figure 2 This is a right view of the storage device for polypeptide production according to this utility model. Figure 3 This is the utility model Figure 2 AA-line sectional view, Figure 4This is the utility model Figure 3 Enlarged view of the local structure at point B.
[0019] This utility model provides a storage device for polypeptide production, including a refrigeration component 101, a mounting frame 102, and an auxiliary unit. The auxiliary unit includes a trapezoidal slide rail 103, a protective shell 104, a connecting shaft 105, a sliding seat 106, a fixing rod frame 107, a spring 108, a pressure chamber 109, a pin frame 110, a storage component, and a locking component. The storage component includes a refrigerator box 111, a shelf 112, multiple partitions 113, a temperature sensor 114, and a controller 115. The locking component includes a base 116, a U-shaped buckle 117, a locking frame 118, a docking ring 119, and a sealing layer 120. The trapezoidal slide rail 103 has a trapezoidal hole 121 and an insertion hole 122.
[0020] The cooling component 101 is disposed on the inner side wall of the mounting bracket 102, and the auxiliary unit is disposed above the mounting bracket 102; the trapezoidal slide rail 103 is fixedly connected to the mounting bracket 102 and is located above the mounting bracket 102; the protective shell 104 is disposed above the mounting bracket 102; the connecting shaft 105 is fixedly connected to the protective shell 104 and is located on one side of the protective shell 104; the sliding seat 106 is fixedly connected to the connecting shaft 105 and is located at one end of the connecting shaft 105, and the sliding seat 106 is slidably engaged with the trapezoidal slide rail 103; the fixed rod bracket 107 is fixedly connected to the sliding seat 106 and is located on the sliding seat 106. On one side, the pressure chamber 109 is slidably connected to the fixed rod frame 107 and located on the outer side wall of the fixed rod frame 107. The two ends of the spring 108 are fixedly connected to the pressure chamber 109 and the fixed rod frame 107 respectively. The trapezoidal slide rail 103 has a trapezoidal hole 121, which slides with the fixed rod frame 107. The pin frame 110 is fixedly connected to the pressure chamber 109 and located on the outer side wall of the pressure chamber 109. The trapezoidal slide rail 103 has an insertion hole 122, which is adapted to the pin frame 110. The storage component is disposed on the inner side wall of the mounting frame 102. The locking component is connected to the mounting frame 102 and the protective shell 104 respectively.
[0021] In this embodiment, during use, pulling the pressure chamber 109 compresses the spring 108 along with the fixing rod 107, causing the pin holder 110 to move away from the insertion hole 122. Then, lifting the protective shell 104 causes the fixing rod 107 and the sliding seat 106 to move on the trapezoidal slide rail 103 respectively. After adjusting to a suitable position, releasing the pressure chamber 109 allows the pin holder 110 to enter the insertion hole 122, facilitating the fixation of the protective shell 104. The storage component is used to hold the peptide storage material, and the locking component is used to connect the mounting bracket 102 and the protective shell 104 to improve the sealing between them. This method allows the stored peptide items to be retrieved, making them easier for staff to handle and improving the convenience of the device.
[0022] The cooling component 101 is existing technology in the background art and will not be described here.
[0023] Furthermore, the refrigerator 111 is fixedly connected to the mounting bracket 102 and located on the inner side wall of the mounting bracket 102, and the refrigerator 111 is connected to the refrigeration component 101. The shelf 112 is fixedly connected to the refrigerator 111 and located on the inner side wall of the refrigerator 111. Multiple partitions 113 are fixedly connected to the shelf 112 and are respectively located above the shelf 112.
[0024] In this embodiment, the shelf 112 inside the refrigerator 111 is used to place polypeptide items, while the partition 113 can be used for classification, making it convenient for staff to store and retrieve them.
[0025] Furthermore, the temperature sensor 114 is fixedly connected to the refrigerator 111 and located on the inner side wall of the refrigerator 111, the controller 115 is fixedly connected to the mounting bracket 102 and located on the outer side wall of the mounting bracket 102, and the controller 115 is electrically connected to both the temperature sensor 114 and the refrigeration component 101.
[0026] In this embodiment, the controller 115 receives the temperature value inside the refrigerator 111 in real time and works with the refrigeration component 101 to control the temperature, making it convenient for staff to use.
[0027] The controller 115 adopts the features of the Mitsubishi FX5U PLC: it has high-speed processing capabilities and rich functional expansion modules. It can connect to various types of temperature sensors and actuators through different expansion modules to achieve precise control of the refrigeration component 101.
[0028] Furthermore, the base 116 is fixedly connected to the mounting bracket 102 and is located below the mounting bracket 102; the U-shaped buckle 117 is rotatably connected to the base 116 and is located on the inner side wall of the base 116; and the locking bracket 118 is threadedly connected to the U-shaped buckle 117 and is located above the U-shaped buckle 117.
[0029] In this embodiment, the U-shaped buckle 117 is flipped over to fasten the bottom of the protective shell 104, and then the locking bracket 118 is rotated to fix it. The structure is simple and easy to learn and operate.
[0030] Furthermore, the docking ring 119 is fixedly connected to the mounting bracket 102 and located above the mounting bracket 102, the sealing layer 120 is fixedly connected to the docking ring 119 and located above the docking ring 119, and the sealing layer 120 is in contact with the protective shell 104.
[0031] In this embodiment, the cooperation between the docking ring 119 and the sealing layer 120 improves the sealing performance of the protective shell 104 and prevents air leakage.
[0032] The above-disclosed embodiments are merely preferred embodiments of this application and should not be construed as limiting the scope of this application. Those skilled in the art will understand that all or part of the processes for implementing the above embodiments, and equivalent variations made in accordance with the claims of this application, still fall within the scope of this application.
Claims
1. A storage device for peptide production, comprising a refrigeration assembly and a mounting frame, wherein the refrigeration assembly is disposed on the inner sidewall of the mounting frame, characterized in that, It also includes an auxiliary unit, which is disposed above the mounting bracket; The auxiliary unit includes a trapezoidal slide rail, a protective shell, a connecting shaft, a sliding seat, a fixed rod frame, a spring, a pressure chamber, a pin frame, a storage assembly, and a locking assembly. The trapezoidal slide rail is fixedly connected to the mounting frame and located above the mounting frame. The protective shell is located above the mounting frame. The connecting shaft is fixedly connected to the protective shell and located on one side of the protective shell. The sliding seat is fixedly connected to the connecting shaft and located at one end of the connecting shaft, and the sliding seat slides in conjunction with the trapezoidal slide rail. The fixed rod frame is fixedly connected to the sliding seat. The spring is located on one side of the sliding seat. The pressure chamber is slidably connected to the fixed rod frame and located on the outer side wall of the pressure chamber. The two ends of the spring are fixedly connected to the pressure chamber and the fixed rod frame respectively. The trapezoidal slide rail has a trapezoidal hole, which slides with the fixed rod frame. The pin frame is fixedly connected to the pressure chamber and located on the outer side wall of the pressure chamber. The trapezoidal slide rail has a insertion hole, which is adapted to the pin frame. The storage component is disposed on the inner side wall of the mounting frame. The locking component is connected to the mounting frame and the protective shell respectively.
2. The storage device for polypeptide production as described in claim 1, characterized in that, The storage component includes a refrigerator, a shelf, and multiple partitions. The refrigerator is fixedly connected to the mounting frame and located on the inner side wall of the mounting frame. The refrigerator is also connected to the refrigeration component. The shelf is fixedly connected to the refrigerator and located on the inner side wall of the refrigerator. The multiple partitions are all fixedly connected to the shelf and are located above the shelf.
3. The storage device for polypeptide production as described in claim 2, characterized in that, The storage component also includes a temperature sensor and a controller. The temperature sensor is fixedly connected to the refrigerator and located on the inner wall of the refrigerator. The controller is fixedly connected to the mounting bracket and located on the outer wall of the mounting bracket. The controller is electrically connected to both the temperature sensor and the refrigeration component.
4. The storage device for polypeptide production as described in claim 3, characterized in that, The locking assembly includes a base, a U-shaped buckle, and a locking frame. The base is fixedly connected to the mounting frame and is located below the mounting frame. The U-shaped buckle is rotatably connected to the base and is located on the inner side wall of the base. The locking frame is threadedly connected to the U-shaped buckle and is located above the U-shaped buckle.
5. The storage device for polypeptide production as described in claim 4, characterized in that, The locking assembly further includes a mating ring and a sealing layer. The mating ring is fixedly connected to the mounting bracket and located above the mounting bracket. The sealing layer is fixedly connected to the mating ring and located above the mating ring, and the sealing layer is in contact with the protective shell.
Citation Information
Patent Citations
Storage device for polypeptide drug production
CN217900255U