Resuscitation device for frozen blood
By combining a vibration heating structure with infrared detection elements, the problem of unstable temperature during the resuscitation of frozen blood is solved, constant temperature heating is achieved, cell survival rate is improved, and the risk of infection is reduced.
Patent Information
- Application Number
- CN202421813058.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-07-29
- Publication Date
- 2025-09-09
- Estimated Expiration
- 2034-07-29
AI Technical Summary
In the prior art, it is difficult to maintain a constant temperature during the resuscitation of frozen blood, resulting in unstable and low cell survival rates, and the traditional hot water bath method is prone to cell infection.
A vibration heating structure is used to heat and resuscitate frozen blood bags, and an infrared detection component is used to monitor the temperature in real time. Constant temperature heating is maintained through a combination of vibration and heating.
It achieves constant temperature control during the resuscitation of frozen blood, improves the survival rate of cells and reduces the risk of infection.
Smart Images

Figure CN223311470U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of medical equipment, in particular to a frozen blood resuscitation device. Background Art
[0002] Heating and resuscitating frozen blood is a critical medical procedure designed to ensure the safety and efficacy of blood products and provide timely transfusion therapy for patients. When performing this procedure, multiple factors must be considered, including but not limited to the choice of heating method, temperature control, and safety during the heating process. Currently, in laboratories at some institutions and universities, hot water is commonly used to resuscitate cells from frozen blood bags.
[0003] However, existing cell resuscitation methods are difficult to maintain a constant temperature, which results in unstable cell survival rates, ultimately leading to unstable and low cell survival rates; and traditional hot water bath methods are also prone to cell infection, which further leads to low cell survival rates. Utility Model Content
[0004] The purpose of the utility model is to provide a frozen blood resuscitation device to alleviate the technical problem in the prior art that the cell resuscitation temperature cannot be kept constant, resulting in unstable or even low cell survival rate.
[0005] In order to achieve the above purpose, the utility model adopts the following technical solutions:
[0006] In a first aspect, the present invention provides a frozen blood resuscitation device, comprising an outer shell structure and a vibrating heating structure, wherein the vibrating heating structure is disposed within and connected to the outer shell structure;
[0007] The vibrating heating structure includes a heating mechanism and a vibrating mechanism, wherein the heating mechanism is connected to the vibrating mechanism, and the heating mechanism is provided with a receiving space, and the receiving space is used to receive a container containing frozen blood, and the heating mechanism is used to heat the container;
[0008] The vibration mechanism is used to drive the heating mechanism to vibrate, so that the container vibrates during the heating process;
[0009] The outer shell structure includes a flip cover mechanism, and the flip cover mechanism includes an infrared detection component, and the infrared detection component is used to detect the temperature of the frozen blood in the container.
[0010] Furthermore, the heating mechanism includes a frame assembly and a heating rod, the frame assembly is provided with the accommodating space, and the frame assembly is respectively connected to the flip mechanism and the vibration mechanism;
[0011] The heating rod is connected to the frame assembly and is used to heat the container in the accommodating space.
[0012] Furthermore, the frame assembly includes an upper bracket, a lower bracket, a cavity partition bar and a heating tray, the upper bracket is rotatably connected to the lower bracket through a rotating shaft damping, and the end of the upper bracket away from the lower bracket is connected to the flip cover mechanism;
[0013] The lower bracket is connected to the heating tray, and a sealing ring is provided at the connection between the lower bracket and the heating tray;
[0014] The heating rod is connected to the heating tray;
[0015] The heating tray is connected to the vibration mechanism, and the heating tray is provided with the accommodating space;
[0016] The cavity dividing strip is arranged in the accommodating space and connected to the heating tray. The cavity dividing strip is used to divide the accommodating space into a plurality of subspaces, and the subspaces are used to arrange the containers.
[0017] Furthermore, the vibration mechanism includes a support assembly and a vibration assembly, both of which are connected to the outer shell structure, and the support assembly is used to support the frame assembly;
[0018] The vibration component is connected to the support component, and the vibration component is used to drive the support component to vibrate.
[0019] Furthermore, the support assembly includes a swinging member, a reinforcing plate and a fixing bracket, and the fixing bracket is connected to the outer shell structure;
[0020] One side of the swing member is connected to the reinforcing plate, and the other side is connected to the heating mechanism. The swing member is connected to the fixed bracket, and the swing member is used to support the frame assembly.
[0021] Furthermore, the vibration assembly includes an eccentric wheel, a steel ball, a support plate, a motor bracket and a motor, and the motor bracket is connected to the outer shell structure;
[0022] The motor is connected to the motor bracket, and the output end of the motor is connected to the support assembly through the eccentric wheel;
[0023] The support plate is connected to the motor bracket, and the support plate is rotatably provided with the steel balls, which are used to support the support assembly.
[0024] Furthermore, the flip cover mechanism includes an upper cover, an elastic member, an infrared detection member, a telescopic cover plate and a lower cover, wherein the upper cover is connected to the lower cover, and the lower cover is provided with a mounting portion, and the telescopic cover plate is slidably connected to the mounting portion;
[0025] The infrared detection element is connected to the telescopic cover;
[0026] The upper cover is connected to the telescopic cover plate through the elastic member.
[0027] Furthermore, the outer shell structure further includes an outer shell body and a base assembly, the outer shell body is rotatably connected to the flip cover mechanism, and the outer shell body is used to accommodate the vibration heating structure;
[0028] The base assembly is connected to the housing body.
[0029] Furthermore, the base assembly includes a base body, a foot pad and a counterweight, and the base body is connected to the shell body;
[0030] The counterweight block is connected to the base body;
[0031] A plurality of foot pads are provided at the bottom of the base body.
[0032] Furthermore, the frozen blood resuscitation device further comprises a display screen, a power supply, a main control board and a switch seat, the outer shell structure is provided with a mounting slot, and the display screen is connected to the mounting slot;
[0033] The power supply, the main control board and the switch seat are all connected to the outer shell structure, and the display screen, the power supply, the main control board and the switch seat are electrically connected.
[0034] The utility model can achieve the following beneficial effects:
[0035] In the first aspect, the utility model provides a frozen blood resuscitation device, including an outer shell structure and a vibrating heating structure, the vibrating heating structure is arranged in the outer shell structure and connected to the outer shell structure; the vibrating heating structure includes a heating mechanism and a vibrating mechanism, the heating mechanism is connected to the vibrating mechanism, and the heating mechanism is provided with a accommodating space, and the accommodating space is used to accommodate a container with frozen blood, and the heating mechanism is used to heat the container; the vibrating mechanism is used to drive the heating mechanism to vibrate so that the container vibrates during the heating process; the outer shell structure includes a flip-up mechanism, the flip-up mechanism includes an infrared detection element, and the infrared detection element is used to detect the temperature of the frozen blood in the container.
[0036] In the present invention, a vibrating heating structure is provided in the outer shell structure, so that after the frozen blood bag is placed in the vibrating heating structure, the frozen blood can be resuscitated through continuous heating and vibration. During this resuscitation process, the infrared detection component provided in the flip cover mechanism of the outer shell structure can effectively detect the temperature of the frozen blood during the resuscitation process.
[0037] Compared with the existing technology, the frozen blood resuscitation device provided by the utility model is used to resuscitate the frozen blood by placing the frozen blood bag in a vibrating heating structure, and continuously heating and vibrating it. During the resuscitation process, the resuscitation progress is detected by an infrared detection element.
[0038] In summary, the present invention at least alleviates the technical problem in the prior art that the cell survival rate is unstable or even low due to the inability to maintain a constant temperature during cell resuscitation. BRIEF DESCRIPTION OF THE DRAWINGS
[0039] In order to more clearly illustrate the specific implementation methods of the utility model or the technical solutions in the prior art, the drawings required for use in the specific implementation methods or the description of the prior art will be briefly introduced below. Obviously, the drawings described below are some implementation methods of the utility model. For ordinary technicians in this field, other drawings can be obtained based on these drawings without paying any creative work.
[0040] Figure 1 A schematic diagram of the three-dimensional structure of a frozen blood resuscitation device provided in an embodiment of the present utility model;
[0041] Figure 2 A schematic diagram of the explosion structure of a frozen blood resuscitation device provided in an embodiment of the present utility model;
[0042] Figure 3 A schematic diagram of the explosion structure of the vibration heating structure of the frozen blood resuscitation device provided by an embodiment of the utility model;
[0043] Figure 4 This is a schematic diagram of the exploded structure of the flip cover mechanism of the frozen blood resuscitation device provided in an embodiment of the present utility model.
[0044] Icons: 1-shell structure; 11-shell body; 111-installation slot; 12-flip mechanism; 121-upper cover; 122-elastic member; 123-infrared detection member; 124-telescopic cover; 125-lower cover; 13-base assembly; 131-base body; 132-foot pad; 133-counterweight; 2-display screen; 3-vibration heating structure; 31-heating mechanism; 311-upper bracket; 312- Shaft damping; 313-lower bracket; 314-electromagnet; 315-cavity partition bar; 316-sealing ring; 317-heating rod; 318-heating tray; 32-vibration mechanism; 321-swinging member; 322-reinforcement plate; 323-eccentric wheel; 324-fixed bracket; 325-steel ball; 326-support plate; 327-motor bracket; 328-motor; 4-power supply; 5-main control board; 6-switch seat. DETAILED DESCRIPTION
[0045] To make the objectives, technical solutions, and advantages of the embodiments of the present invention more clear, the technical solutions of the embodiments of the present invention will be clearly and completely described below in conjunction with the accompanying drawings of the embodiments of the present invention. Obviously, the described embodiments are only some embodiments of the present invention, not all embodiments. Generally, the components of the embodiments of the present invention described and shown in the drawings herein can be arranged and designed in various different configurations.
[0046] Therefore, the following detailed description of the embodiments of the present invention provided in the accompanying drawings is not intended to limit the scope of the claimed invention, but rather merely represents selected embodiments of the present invention. All other embodiments derived by persons of ordinary skill in the art based on the embodiments of the present invention without creative effort are also within the scope of protection of the present invention.
[0047] It should be noted that similar reference numerals and letters denote similar items in the following drawings, and therefore, once an item is defined in one drawing, it does not need to be further defined or explained in subsequent drawings.
[0048] In the description of this utility model, it should be noted that the terms "upper," "lower," "vertical," "horizontal," "inner," and "outer," etc., indicating orientations or positional relationships, are based on the orientations or positional relationships shown in the accompanying drawings, or are the orientations or positional relationships in which the utility model product is typically placed when in use. These terms are intended solely to facilitate the description of this utility model and simplify the description, and are not intended to indicate or imply that the device or component referred to must have a specific orientation, be constructed, or operate in a specific orientation. Therefore, they should not be construed as limitations on this utility model. Furthermore, the terms "first," "second," and "third," etc., are used solely to distinguish descriptions and should not be construed as indicating or implying relative importance.
[0049] Furthermore, terms such as "horizontal" and "vertical" do not necessarily mean that a component must be absolutely horizontal or overhanging, but rather that it can be slightly tilted. For example, "horizontal" simply means that its direction is more horizontal than "vertical," and does not mean that the structure must be completely horizontal, but rather that it can be slightly tilted.
[0050] It should also be noted that, in the description of this utility model, unless otherwise expressly specified or limited, the terms "disposed," "installed," and "connected" should be understood in a broad sense. For example, they may refer to fixed connections, detachable connections, or integral connections; mechanical connections or electrical connections; direct connections or indirect connections through an intermediate medium; and internal connections between two components. Those skilled in the art will understand the specific meanings of these terms in this utility model based on the specific circumstances.
[0051] The following embodiments of the present invention are described in detail with reference to the accompanying drawings. In the absence of conflict, the following embodiments and features in the embodiments may be combined with each other.
[0052] Example 1
[0053] This embodiment provides a frozen blood resuscitation device, referring to Figure 1 or Figure 2 The frozen blood resuscitation device includes an outer shell structure 1 and a vibrating heating structure 3, which is arranged in the outer shell structure 1 and connected to the outer shell structure 1; the vibrating heating structure 3 includes a heating mechanism 31 and a vibrating mechanism 32, the heating mechanism 31 is connected to the vibrating mechanism 32, and the heating mechanism 31 is provided with a accommodating space, and the accommodating space is used to accommodate a container with frozen blood, and the heating mechanism 31 is used to heat the container; the vibrating mechanism 32 is used to drive the heating mechanism 31 to vibrate, so that the container vibrates during the heating process; the outer shell structure 1 includes a flip cover mechanism 12, and the flip cover mechanism 12 includes an infrared detection element 123, and the infrared detection element 123 is used to detect the temperature of the frozen blood in the container.
[0054] The embodiments of the present invention at least alleviate the technical problem in the prior art that the cell survival rate is unstable or even low because the temperature of cell resuscitation cannot be kept constant.
[0055] In an embodiment of the present invention, a vibrating heating structure 3 is provided in the outer shell structure 1, so that after the frozen blood bag is placed in the vibrating heating structure 3, the frozen blood can be resuscitated through continuous heating and vibration. During this resuscitation process, the infrared detection element 123 provided in the flip cover mechanism 12 of the outer shell structure 1 can effectively detect the temperature during the resuscitation process of the frozen blood.
[0056] Compared with the prior art, the frozen blood resuscitation device provided in the embodiment of the present invention resuscitates the frozen blood by placing the frozen blood bag in the vibrating heating structure 3 and continuously heating and vibrating the frozen blood. During the resuscitation process, the resuscitation progress is detected by the infrared detection element 123.
[0057] In an optional implementation manner of this embodiment, refer to Figure 3 The heating mechanism 31 includes a frame assembly and a heating rod 317. The frame assembly is provided with an accommodating space, and the frame assembly is respectively connected to the flip mechanism 12 and the vibration mechanism 32; the heating rod 317 is connected to the frame assembly, and the heating rod 317 is used to heat the container in the accommodating space.
[0058] Specifically: the heating rod 317 is connected to the frame assembly, and preferably, a plurality of heating rods 317 are provided, and the plurality of heating rods 317 maintains a constant temperature in the accommodating space, and in this accommodating space, a frozen blood bag is placed to realize the revival of the frozen blood bag under a constant temperature state.
[0059] Further, refer to Figure 3 The frame assembly includes an upper bracket 311, a lower bracket 313, a cavity partition bar 315 and a heating tray 318. The upper bracket 311 is rotatably connected to the lower bracket 313 through a rotating shaft damper 312, and the end of the upper bracket 311 away from the lower bracket 313 is connected to the flip mechanism 12; the lower bracket 313 is connected to the heating tray 318, and a sealing ring 316 is provided at the connection between the lower bracket 313 and the heating tray 318; the heating rod 317 is connected to the heating tray 318; the heating tray 318 is connected to the vibration mechanism 32, and the heating tray 318 is provided with a accommodating space; the cavity partition bar 315 is arranged in the accommodating space and connected to the heating tray 318, and the cavity partition bar 315 is used to divide the accommodating space into multiple sub-spaces, and the sub-spaces are used to set containers.
[0060] Specifically: a accommodating space is provided in the heating tray 318, and the heating tray 318 is detachably connected to the cavity partition 315, and the accommodating space of the heating tray 318 is divided into several sub-spaces by the cavity partition 315, and preferably, the cavity partition 315 can be a cross-shaped structure, so as to divide the heating tray 318 into four rectangular sub-spaces to match the shape of the frozen blood bag, and a heating rod 317 is provided on this heating tray 318 for constant temperature heating of the frozen blood bag in each sub-space.
[0061] In an optional implementation manner of this embodiment, refer to Figure 3 The vibration mechanism 32 includes a support component and a vibration component. Both the support component and the vibration component are connected to the outer shell structure 1, and the support component is used to support the frame component; the vibration component is connected to the support component, and the vibration component is used to drive the support component to vibrate.
[0062] Specifically: the support component and the vibration component are both connected to the outer shell structure 1, and the support component is used to support the frame component from the bottom, while the vibration component drives the support component to vibrate, so as to ultimately drive the frame component to vibrate. During this process, the frozen blood bag can continue to vibrate during constant temperature heating.
[0063] Further, refer to Figure 3 The supporting assembly includes a swinging member 321, a reinforcing plate 322 and a fixed bracket 324, and the fixed bracket 324 is connected to the outer shell structure 1; one side of the swinging member 321 is connected to the reinforcing plate 322, and the other side is connected to the heating mechanism 31, the swinging member 321 is connected to the fixed bracket 324, and the swinging member 321 is used to support the frame assembly.
[0064] Specifically: the bottom of the swing member 321 is connected to the reinforcing plate 322, and the swing member 321 is used to support the frame assembly. It should be noted that the swing member 321 includes a frame structure for connecting to the fixed bracket 324, and a rubber plate connected to the frame structure. This rubber plate is elastic and supports the frame assembly; and the vibration assembly is connected to the swing member 321 to achieve the effect of driving it to vibrate.
[0065] In an optional implementation manner of this embodiment, refer to Figure 3 The vibration assembly includes an eccentric wheel 323, a steel ball 325, a support plate 326, a motor bracket 327 and a motor 328. The motor bracket 327 is connected to the outer shell structure 1; the motor 328 is connected to the motor bracket 327, and the output end of the motor 328 is connected to the support assembly through the eccentric wheel 323; the support plate 326 is connected to the motor bracket 327, and the support plate 326 is rotatably provided with a steel ball 325, and the steel ball 325 is used to support the support assembly.
[0066] Specifically: the motor 328 is installed on the motor bracket 327, and the output end of the motor 328 is set upward, and a support plate 326 is detachably installed on the top of the motor bracket 327, and a steel ball 325 is provided on the support plate 326, and the steel ball 325 is used to support the bottom of the reinforcing plate 322; the output end of the top of the motor 328 is provided with an eccentric wheel 323, and the eccentric wheel 323 passes through the swinging member 321 and the reinforcing plate 322 in sequence and is connected to the heating mechanism 31.
[0067] In an optional implementation manner of this embodiment, refer to Figure 4 The flip mechanism 12 includes an upper cover 121, an elastic member 122, an infrared detection member 123, a telescopic cover 124 and a lower cover 125. The upper cover 121 is connected to the lower cover 125, and the lower cover 125 is provided with a mounting portion, and the telescopic cover 124 is slidably connected to the mounting portion; the infrared detection member 123 is connected to the telescopic cover 124; the upper cover 121 is connected to the telescopic cover 124 through the elastic member 122.
[0068] Specifically: the upper cover 121 and the lower cover 125 are detachably connected, and a mounting portion is provided on the lower cover 125, which is used to install the telescopic cover 124, and the telescopic cover 124 is slidably connected to the mounting hole. Each telescopic cover 124 is provided with an infrared detection element 123, and each telescopic cover 124 is connected to the upper cover 121 through an elastic member 122, and this elastic member 122 is preferably a spring.
[0069] In an optional implementation manner of this embodiment, refer to Figure 1 or Figure 2 The outer shell structure 1 also includes an outer shell body 11 and a base assembly 13. The outer shell body 11 is rotatably connected to the flip mechanism 12, and the outer shell body 11 is used to accommodate the vibration heating structure 3; the base assembly 13 is connected to the outer shell body 11.
[0070] Specifically, the top of the shell body 11 is connected to the flip cover mechanism 12 , and the bottom thereof is connected to the base assembly 13 , thereby realizing a space for accommodating the vibration heating structure 3 enclosed by the shell body 11 , the flip cover mechanism 12 and the base assembly 13 .
[0071] Further, refer to Figure 4 The base assembly 13 includes a base body 131, a foot pad 132 and a counterweight 133. The base body 131 is connected to the shell body 11; the counterweight 133 is connected to the base body 131; and a plurality of foot pads 132 are provided at the bottom of the base body 131.
[0072] Specifically, a groove is provided in the base body 131, and a counterweight 133 is provided in the groove to prevent the entire device from vibrating severely; and a foot pad 132 is provided at the bottom of the base body 131 to reduce vibration.
[0073] In an optional implementation manner of this embodiment, refer to Figure 1 or Figure 2 The frozen blood resuscitation device also includes a display screen 2, a power supply 4, a main control board 5 and a switch seat 6. The outer shell structure 1 is provided with a mounting groove 111, and the display screen 2 is connected to the mounting groove 111; the power supply 4, the main control board 5 and the switch seat 6 are all connected to the outer shell structure 1, and the display screen 2, the power supply 4, the main control board 5 and the switch seat 6 are electrically connected.
[0074] Specifically: the outer shell structure 1 is provided with a mounting groove 111, and the mounting groove 111 is clamped with a display screen 2, and the power supply 4 and the main control board 5 and the display screen 2 located in the outer shell structure 1 are electrically connected, so as to realize power supply through the power supply 4 and control the opening of each electrical appliance through the main control board 5. Preferably, the main control board 5 is electrically connected to the heating rod 317 and the infrared detection element 123, and the switch seat 6 also provided on the outer shell structure 1 is electrically connected to the power supply 4.
[0075] It should be noted that, referring to Figure 3 An electromagnet 314 is provided on the lower bracket 313 , and an iron block is provided on the upper bracket 311 , so as to buckle the upper bracket 311 on the lower bracket 313 through the adsorption effect of the electromagnet 314 .
[0076] Finally, it should be noted that: the various embodiments in this specification are described in a progressive manner, and each embodiment focuses on the differences from other embodiments. The same or similar parts between the various embodiments can be referred to each other; the above embodiments in this specification are only used to illustrate the technical solution of the utility model, rather than to limit it; although the utility model is described in detail with reference to the aforementioned embodiments, ordinary technicians in this field should understand that: it is still possible to modify the technical solutions recorded in the aforementioned embodiments, or to replace some or all of the technical features therein with equivalents; and these modifications or replacements do not cause the essence of the corresponding technical solution to deviate from the scope of the technical solution of the various embodiments of the utility model.
Claims
1. A frozen blood resuscitation device, characterized in that: It comprises an outer shell structure (1) and a vibration heating structure (3), wherein the vibration heating structure (3) is arranged in the outer shell structure (1) and connected to the outer shell structure (1); The vibrating heating structure (3) comprises a heating mechanism (31) and a vibration mechanism (32), wherein the heating mechanism (31) is connected to the vibration mechanism (32), and the heating mechanism (31) is provided with a receiving space, and the receiving space is used to receive a container provided with frozen blood, and the heating mechanism (31) is used to heat the container; The vibration mechanism (32) is used to drive the heating mechanism (31) to vibrate, so that the container vibrates during the heating process; The outer shell structure (1) comprises a flip cover mechanism (12), and the flip cover mechanism (12) comprises an infrared detection element (123). The infrared detection element (123) is used to detect the temperature of the frozen blood in the container.
2. The frozen blood resuscitation device according to claim 1, characterized in that: The heating mechanism (31) comprises a frame assembly and a heating rod (317); the frame assembly is provided with the accommodating space, and the frame assembly is respectively connected to the flip mechanism (12) and the vibration mechanism (32); The heating rod (317) is connected to the frame assembly, and the heating rod (317) is used to heat the container in the accommodating space.
3. The frozen blood resuscitation device according to claim 2, characterized in that: The frame assembly comprises an upper bracket (311), a lower bracket (313), a cavity partition bar (315) and a heating tray (318); the upper bracket (311) is rotatably connected to the lower bracket (313) via a rotating shaft damper (312), and one end of the upper bracket (311) facing away from the lower bracket (313) is connected to the flip cover mechanism (12); The lower bracket (313) is connected to the heating tray (318), and a sealing ring (316) is provided at the connection between the lower bracket (313) and the heating tray (318); The heating rod (317) is connected to the heating tray (318); The heating tray (318) is connected to the vibration mechanism (32), and the heating tray (318) is provided with the accommodating space; The cavity dividing strip (315) is arranged in the accommodating space and connected to the heating tray (318), and the cavity dividing strip (315) is used to divide the accommodating space into a plurality of subspaces, and the subspaces are used to arrange the containers.
4. The frozen blood resuscitation device according to claim 2, characterized in that: The vibration mechanism (32) comprises a support assembly and a vibration assembly, both of which are connected to the outer shell structure (1), and the support assembly is used to support the frame assembly; The vibration component is connected to the support component, and the vibration component is used to drive the support component to vibrate.
5. The frozen blood resuscitation device according to claim 4, characterized in that: The support assembly comprises a swinging member (321), a reinforcing plate (322) and a fixing bracket (324), wherein the fixing bracket (324) is connected to the outer shell structure (1); One side of the swing member (321) is connected to the reinforcing plate (322), and the other side is connected to the heating mechanism (31). The swing member (321) is connected to the fixed bracket (324), and the swing member (321) is used to support the frame assembly.
6. The frozen blood resuscitation device according to claim 4 or 5, characterized in that: The vibration assembly comprises an eccentric wheel (323), a steel ball (325), a support plate (326), a motor bracket (327) and a motor (328), wherein the motor bracket (327) is connected to the outer shell structure (1); The motor (328) is connected to the motor bracket (327), and the output end of the motor (328) is connected to the support assembly through the eccentric wheel (323); The support plate (326) is connected to the motor bracket (327), and the support plate (326) is rotatably provided with the steel ball (325), and the steel ball (325) is used to support the support assembly.
7. The frozen blood resuscitation device according to claim 1, characterized in that: The flip cover mechanism (12) comprises an upper cover (121), an elastic member (122), an infrared detection member (123), a telescopic cover plate (124) and a lower cover (125); the upper cover (121) is connected to the lower cover (125); the lower cover (125) is provided with a mounting portion, and the telescopic cover plate (124) is slidably connected to the mounting portion; The infrared detection element (123) is connected to the telescopic cover (124); The upper cover (121) is connected to the telescopic cover plate (124) via the elastic member (122).
8. The frozen blood resuscitation device according to claim 1, characterized in that: The outer shell structure (1) further comprises an outer shell body (11) and a base assembly (13); the outer shell body (11) is rotatably connected to the flip cover mechanism (12), and the outer shell body (11) is used to accommodate the vibration heating structure (3); The base assembly (13) is connected to the housing body (11).
9. The frozen blood resuscitation device according to claim 8, characterized in that: The base assembly (13) includes a base body (131), a foot pad (132) and a counterweight (133), and the base body (131) is connected to the housing body (11); The counterweight block (133) is connected to the base body (131); A plurality of foot pads (132) are provided at the bottom of the base body (131).
10. The frozen blood resuscitation device according to claim 1, characterized in that: It also includes a display screen (2), a power supply (4), a main control board (5) and a switch seat (6); the outer shell structure (1) is provided with a mounting groove (111), and the display screen (2) is connected to the mounting groove (111); The power supply (4), the main control board (5) and the switch seat (6) are all connected to the outer shell structure (1), and the display screen (2), the power supply (4), the main control board (5) and the switch seat (6) are electrically connected.