Kit for early detection of sepsis
By designing a combined structure of protective chamber and buffer mechanism, the problems of damage and water thawing during transportation of sepsis test kits were solved, achieving the stability and safety of the kits and ensuring transportation efficiency and the effectiveness of the test reagents.
Patent Information
- Application Number
- CN202511305002.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-09-12
- Publication Date
- 2025-11-14
AI Technical Summary
In the existing technology, sepsis test kits lack protective mechanisms during transportation, and the direct cooling with ice causes meltwater to affect the kits, resulting in inconvenience and potential damage.
A transport structure including a protective chamber and a buffer mechanism was designed. The reagent kit is stably fixed by a combination of a fixing clip and a spring. Cooling and melt water discharge are achieved by a combination of an ice tank and a water guide tube. Temperature monitoring is achieved by a combination of a temperature sensor and a display.
It effectively protects the reagent kit from impacts and pressure, maintains a low-temperature environment and prevents leakage of melting water, ensures stability and safety during transportation, and guarantees the activity and accuracy of the test reagents.
Smart Images

Figure CN120942748A_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of sepsis detection kits, and particularly to early sepsis detection kits. Background Technology
[0002] A sepsis detection kit is an in vitro diagnostic tool for the rapid diagnosis of sepsis. This kit typically assesses infection severity and systemic inflammatory response by detecting biomarkers in blood or other body fluids (such as procalcitonin PCT, C-reactive protein CRP, interleukin-6, etc.). It is characterized by its ease of use and rapid results (usually within hours), assisting clinicians in early identification of sepsis risk, timely intervention, and improved patient prognosis. Some advanced kits also incorporate molecular detection or multiple biomarker techniques to enhance sensitivity and specificity, making them suitable for emergency and ICU settings.
[0003] Currently, reagents for sepsis testing are usually stored in test kits. During transportation, these kits are often stacked together, and there is no structure in the existing technology to protect them. In addition, the kits need to be cooled during transportation. Therefore, the existing technology usually places ice directly in the transport device to cool the kits. When the ice melts, it will affect the kits, causing considerable inconvenience. Summary of the Invention
[0004] The purpose of this invention is to provide an early detection kit for sepsis, which solves the problems in the prior art where there is no mechanism to protect the kit during transportation and it is inconvenient to cool the kit during transportation.
[0005] To achieve the aforementioned objectives, the technical solution adopted by this invention is: an early detection kit for sepsis, characterized in that it comprises:
[0006] The protective compartment is equipped with a control door;
[0007] The protective chamber is equipped with a fixing mechanism, which includes an installation chamber. The installation chamber is fixedly installed inside the protective chamber. Multiple support frames are fixedly installed inside the installation chamber. Multiple fixing clips are slidably installed inside the support frames. A pair of first square grooves are carved inside the support frames. A first sliding rod is fixedly installed inside the first square grooves.
[0008] The installation compartment facilitates the placement of the reagent kit, thus providing support. A gap between the compartment and the protective compartment allows for faster penetration. The support frame facilitates the proper functioning of the reagent kit. The sliding of the fixing clip, combined with the cushioning rebound of the first and second springs, secures the reagent kit, ensuring installation stability. Furthermore, the pads on the reagent kit prevent damage during installation.
[0009] A buffer mechanism is installed under the protective chamber. The buffer mechanism includes an ice inlet trough that penetrates the protective chamber. A water pipe is installed on one side of the protective chamber that penetrates the protective chamber. Multiple cotton pads are fixedly installed inside the installation chamber.
[0010] The ice inlet trough facilitates the penetration of the protective chamber, making it easy to add ice blocks between the protective chamber and the installation chamber. The water pipe facilitates water drainage, allowing melted ice water to be discharged outside the protective chamber. The cotton pad absorbs moisture, preventing water droplets from forming due to low temperatures.
[0011] As an improvement, the fixing clip is slidably mounted on the first slide rod, the first slide rod is fitted with a first spring, and a limiting rod is provided between the pair of fixing clips.
[0012] The installation of the first spring facilitates a buffering effect and allows the clamp to spring back to its original position. The installation of the limit rod facilitates the sliding of the clamp, while the groove provides space for the clamp to slide.
[0013] As an improvement, the fixing clamp is provided with a groove that matches the limiting rod, and the limiting rod is fitted with a second spring.
[0014] The installation of the second spring has a buffering effect and facilitates the rebound of the fixing clip, so that the fixing clip can fix the reagent kit when it is squeezed and rebounds.
[0015] As an improvement, the protective compartment is provided with a base, and a number of retractable rods are installed between the protective compartment and the base. A number of first hinge rods are hinged between the protective compartment and the base.
[0016] The base design facilitates the installation of a cushioning mechanism between the protective chamber and the base, ensuring the stability of the reagent kit during transportation. The retractable rod provides support for the protective chamber, preventing it from floating up and down. The first hinge rod facilitates hinged movement, allowing the first hinge rod to engage and push the second hinge rod when the protective chamber floats up and down.
[0017] As an improvement, multiple sliders are slidably installed inside the base, and a second square groove matching the sliders is carved inside the base.
[0018] When the second hinge rod is subjected to force, it will push the slider to slide, thus making it easier for the slider to receive the thrust.
[0019] As an improvement, a second hinge rod is installed between the slider and the first hinge rod, a second slide rod is fixedly installed in the second square groove, and a third spring is provided on the outer sleeve of the second slide rod.
[0020] The installation of the second hinge rod facilitates the transmission of the received force to the slider, thereby enabling buffering through the third spring, while the installation of the second slide rod ensures the stability of the slider's sliding motion.
[0021] As an improvement, a temperature sensor is installed inside the installation compartment, and a display is installed on the control door, with the display electrically connected to the temperature sensor.
[0022] The beneficial effects of this invention are as follows: By providing a dedicated transport protection structure for sepsis test kits, the problems of easy damage to stacked test kits and the impact of melted water on test kits caused by direct cooling with ice in the prior art are effectively solved. At the same time, the mechanism for protecting the test kits can effectively avoid collisions and squeezing during transportation, thereby maintaining a low temperature environment and preventing melted water leakage, ensuring the stability and safety of the test kits during transportation, thus guaranteeing the activity and accuracy of the test reagents, improving transportation efficiency and reducing the risk of loss. Attached Figure Description
[0023] Figure 1 This is a front cross-sectional view of the early sepsis detection kit of the present invention.
[0024] Figure 2 for Figure 1 Schematic diagram of the structure at point A in the middle.
[0025] Figure 3 This is a front view of the sepsis early detection kit of the present invention.
[0026] In the diagram: 1. Protective chamber; 2. Fixing mechanism; 201. Protective chamber; 202. Support frame; 203. Fixing clamp; 204. First sliding rod; 205. First spring; 206. Limiting rod; 207. Second spring; 3. Buffer mechanism; 301. Ice inlet tank; 302. Water guide pipe; 303. Cotton pad; 304. Base; 305. Retracting rod; 306. First hinge rod; 307. Sliding block; 308. Second hinge rod; 309. Second sliding rod; Third spring; Third spring. Detailed Implementation
[0027] To make the content of this invention easier to understand, the technical solutions of the embodiments of this invention will be clearly and completely described below with reference to the accompanying drawings. Identical components are represented by the same reference numerals. It should be noted that the terms "front," "rear," "left," "right," "up," and "down" used in the following description refer to directions in the accompanying drawings, while the terms "inner" and "outer" refer to directions toward or away from the geometric center of a specific component, respectively.
[0028] like Figure 1 and Figure 2 As shown, a control door is installed on the protective compartment 1;
[0029] The protective chamber 1 is equipped with a fixing mechanism 2, which includes an installation chamber 201. The installation chamber 201 is fixedly installed in the protective chamber 1. Multiple support frames 202 are fixedly installed in the installation chamber 201. Multiple fixing clips 203 are slidably installed in the support frames 202. A pair of first square grooves are carved in the support frames 202. A first sliding rod 204 is fixedly installed in the first square grooves.
[0030] The installation compartment 201 facilitates the placement of the reagent kit, thus providing support. A gap between it and the protective compartment 1 allows for faster penetration. The support frame 202 facilitates the detection of the reagent kit. The sliding of the fixing clip 203, along with the buffering rebound of the first spring 205 and the second spring 207, secures the reagent kit, ensuring installation stability. Furthermore, the padding on the reagent kit prevents damage during fixing.
[0031] A buffer mechanism 3 is installed under the protective chamber 1. The buffer mechanism 3 includes an ice inlet trough 301, which penetrates the protective chamber 1. A water guide pipe 302 is installed on one side of the protective chamber 1, which also penetrates the protective chamber 1. Multiple cotton pads 303 are fixedly installed inside the installation chamber 201.
[0032] The ice inlet trough 301 facilitates the penetration of the protective chamber 1, making it easy to add ice blocks. Ice blocks can be easily placed between the protective chamber 1 and the installation chamber 201. The water guide pipe 302 facilitates water guidance, thus making it easy to drain the melted ice water out of the protective chamber 1. The cotton pad 303 absorbs moisture, thus preventing water droplets from forming due to low temperature.
[0033] like Figure 1 and Figure 2 As shown, the fixing clip 203 is slidably mounted on the first slide rod 204, the first slide rod 204 is fitted with a first spring 205, and a limiting rod 206 is provided between the pair of fixing clips 203.
[0034] The installation of the first spring 205 facilitates the buffering effect and also makes it easier to push the fixed clamp 203 back to its original position. The installation of the limiting rod 206 facilitates the sliding of the fixed clamp 203, and the groove provides space for the sliding of the fixed clamp 203.
[0035] like Figure 1 and Figure 2 As shown, the fixing clamp 203 has a groove that matches the limiting rod 206, and the limiting rod 206 is fitted with a second spring 207.
[0036] The installation of the second spring 207 has a buffering effect and facilitates the rebound of the fixing clip 203, so that the fixing clip 203 can fix the reagent kit when it is squeezed and rebounds.
[0037] like Figure 1 and Figure 2 As shown, a base 304 is provided under the protective chamber 1, and several retractable rods 305 are installed between the protective chamber 1 and the base 304. Multiple first hinge rods 306 are hinged between the protective chamber 1 and the base 304.
[0038] The base 304 facilitates the installation of a buffer mechanism between the protective chamber 1 and the base 304, ensuring the stability of the reagent kit during transportation. The retractable rod 305 provides support for the protective chamber 1, preventing it from floating up and down. The first hinge rod 306 facilitates hinged movement, allowing the first hinge rod 306 to hinge when the protective chamber 1 floats up and down, thereby pushing the second hinge rod 308.
[0039] like Figure 1 and Figure 2 As shown, multiple sliders 307 are slidably installed inside the base 304, and a second square groove matching the sliders 307 is carved inside the base 304.
[0040] When the second hinge rod 308 is subjected to force, it will push the slider 307 to slide, so that the slider 307 can easily receive the thrust.
[0041] like Figure 1 and Figure 2 As shown, a second hinge rod 308 is installed between the slider 307 and the first hinge rod 306, a second slide rod 309 is fixedly installed in the second square groove, and a third spring 310 is sleeved on the second slide rod 309.
[0042] The installation of the second hinge rod 308 facilitates the transmission of the received force to the slider 307, thereby facilitating buffering through the third spring 310, while the installation of the second slide rod 309 ensures the stability of the slider 307 during sliding.
[0043] like Figure 3 As shown, a temperature sensor is installed inside the installation compartment 201, and a display is installed on the control door. The display is electrically connected to the temperature sensor.
[0044] During use, the reagent kit is placed between a pair of fixing clips 203. When placing the reagent kit, the fixing clips 203 slide, and the rebound of the first spring 205 will drive the fixing clips 203 to fix the reagent kit. Thus, multiple reagent kits can be fixed on one support frame 202. In order to ensure the temperature of the reagent kit, ice can be injected into the protective chamber 1 through the ice inlet 301. The temperature in the installation chamber 201 can be viewed on the display through the sensor. In order to ensure the stability of the reagent kit during transportation, when the protective chamber 1 is bumpy, it will be squeezed downwards, and the retraction rod 305 will retract. At the same time, the first hinge rod 306 will hinge, transmitting the pressure to the second hinge rod 308. The second hinge rod 308 will push the slider 307 to move, and the third spring 310 will achieve a buffering effect. Therefore, it is easy to ensure that the reagent kit is relatively stable during transportation.
[0045] The above description is merely a preferred embodiment of the present invention and is not intended to limit the present invention. Any modifications, equivalent substitutions, and improvements made within the spirit and principles of the present invention should be included within the scope of protection of the present invention.
Claims
1. A sepsis early detection kit, characterized in that, include: A protective compartment (1) is provided with a control door. A fixing mechanism (2) is installed inside the protective chamber (1). The fixing mechanism (2) includes an installation chamber (201). The installation chamber (201) is fixedly installed inside the protective chamber (1). Multiple support frames (202) are fixedly installed inside the installation chamber (201). Multiple fixing clips (203) are slidably installed inside the support frames (202). A pair of first square grooves are carved inside the support frames (202). A first sliding rod (204) is fixedly installed inside the first square grooves. A buffer mechanism (3) is installed under the protective chamber (1). The buffer mechanism (3) includes an ice inlet trough (301), which penetrates the protective chamber (1). A water guide pipe (302) is installed on one side of the protective chamber (1), which penetrates the protective chamber (1). Multiple cotton pads (303) are fixedly installed inside the installation chamber (201).
2. The early sepsis detection kit according to claim 1, characterized in that, The fixing clip (203) is slidably mounted on the first slide rod (204), the first slide rod (204) is covered with a first spring (205), and a limiting rod (206) is provided between the pair of fixing clips (203).
3. The early sepsis detection kit according to claim 2, characterized in that, The fixing clamp (203) has a groove that matches the limiting rod (206), and the limiting rod (206) is fitted with a second spring (207).
4. The early sepsis detection kit according to claim 1, characterized in that, The protective chamber (1) is provided with a base (304), and a plurality of retractable rods (305) are installed between the protective chamber (1) and the base (304). A plurality of first hinge rods (306) are hinged between the protective chamber (1) and the base (304).
5. The early sepsis detection kit according to claim 4, characterized in that, Multiple sliders (307) are slidably installed inside the base (304), and a second square groove matching the sliders (307) is carved inside the base (304).
6. The early sepsis detection kit according to claim 5, characterized in that, A second hinge rod (308) is installed between the slider (307) and the first hinge rod (306), and a second slide rod (309) is fixedly installed in the second square groove. A third spring (310) is sleeved on the second slide rod (309).
7. The early sepsis detection kit according to claim 1, characterized in that, A temperature sensor is installed inside the installation compartment (201), and a display is installed on the control door. The display is electrically connected to the temperature sensor.