Diagnosis shelter
The diagnostic pod uses a combination of rubber and steel wire isolators to mitigate shock loads, ensuring the DR device's safety and reliability during transportation by absorbing impacts along various axes.
Patent Information
- Application Number
- CN202421933656.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-08-09
- Publication Date
- 2025-07-15
- Estimated Expiration
- 2034-08-09
AI Technical Summary
During transportation, the DR equipment in the diagnosis cabin is prone to impact loads due to poor road conditions or other emergencies, resulting in damage to the equipment and affecting transportation safety.
A plurality of first vibration isolators are arranged in the diagnostic cabin to connect to the bottom wall of the diagnostic equipment and the cabin box, and the second vibration isolators are connected to the diagnostic equipment and the side wall, and the impact load is reduced by using rubber and wire rope vibration isolators to improve equipment safety.
It effectively reduces the risk of damage to diagnostic equipment during transportation, improves the safety of the diagnostic cabin and the vibration resistance of the equipment.
Smart Images

Figure CN223104235U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the field of medical technology, and in particular to a diagnostic mobile cabin. Background Art
[0002] In the related art, with the increase of domestic and foreign public health emergencies and the need for rescue tasks in natural disasters, it is urgent to improve the flexibility, functionality and mobility of medical detection and rescue in complex environments. Among them, the examination of DR (Digital Radiography) equipment is a key and important diagnosis and treatment means. During the transportation of the diagnostic mobile cabin equipped with DR equipment to the destination, poor road conditions, braking impact or other unexpected situations may cause impact loads between the DR equipment and the cabin body, resulting in damage to the DR equipment. Content of the Utility Model
[0003] The utility model aims to solve at least one of the technical problems existing in the prior art. For this reason, an object of the utility model is to provide a diagnostic mobile cabin, which can reduce the impact load between the diagnostic equipment and the cabin body during transportation and improve the safety of the diagnostic mobile cabin during transportation.
[0004] The diagnostic mobile cabin according to the embodiment of the utility model includes: a cabin body that defines a diagnostic space; diagnostic equipment disposed in the diagnostic space; a plurality of first vibration isolators located between the diagnostic equipment and the bottom wall of the diagnostic space, and the plurality of first vibration isolators are connected to both the diagnostic equipment and the bottom wall of the diagnostic space; a second vibration isolator located between the diagnostic equipment and the side wall of the diagnostic space, and the second vibration isolator is connected to both the diagnostic equipment and the side wall of the diagnostic space.
[0005] The diagnostic mobile cabin according to the embodiment of the utility model can reduce the impact load between the diagnostic equipment and the cabin body during transportation by arranging a plurality of first vibration isolators connected to both the diagnostic equipment and the bottom wall of the diagnostic space, and the second vibration isolator connected to the diagnostic equipment and the side wall of the diagnostic space, thereby reducing the risk of damage to the diagnostic equipment and further improving the safety of the diagnostic mobile cabin during transportation.
[0006] In some embodiments of the utility model, the rigidity of the second vibration isolator in the first direction is greater than the rigidity of the second vibration isolator in the second direction, the first direction is perpendicular to the side wall of the diagnostic space, and the second direction is perpendicular to the bottom wall of the diagnostic space.
[0007] In some embodiments of the utility model, along the height direction of the diagnostic equipment, the diagnostic equipment has a median line, and the second vibration isolator is located above the median line.
[0008] In some embodiments of the utility model, the structures of the plurality of first vibration isolators are the same.
[0009] In some embodiments of the present utility model, the first vibration isolator is a rubber vibration isolator, and the second vibration isolator is a wire rope vibration isolator.
[0010] In some embodiments of the present utility model, the diagnostic device includes a detection main body and a support main body. The detection main body and the support main body are connected. The support main body is used to support the patient, and the detection main body is used to detect the patient. A plurality of first vibration isolators form a first group of vibration isolators and a second group of vibration isolators. The first group of vibration isolators is located between the detection main body and the bottom wall of the diagnostic space, and the second group of vibration isolators is located between the support main body and the bottom wall of the diagnostic space.
[0011] In some embodiments of the present utility model, both the first group of vibration isolators and the second group of vibration isolators include a plurality of first vibration isolators, and the number of first vibration isolators included in the first group of vibration isolators is greater than the number of first vibration isolators included in the second group of vibration isolators.
[0012] In some embodiments of the present utility model, the detection main body and the support main body are arranged along a first direction, and the detection main body is located between the side wall of the diagnostic space and the support main body. The second vibration isolator is connected between the detection main body and the side wall of the diagnostic space, and the first direction is perpendicular to the side wall of the diagnostic space.
[0013] In some embodiments of the present utility model, the diagnostic device is an X-ray detection device.
[0014] In some embodiments of the present utility model, a plurality of first vibration isolators are configured to be arranged at different positions of the diagnostic device by the moment balance method.
[0015] Additional aspects and advantages of the present utility model will be given in part in the following description, become apparent in part from the following description, or be understood through the practice of the present utility model. BRIEF DESCRIPTION OF THE DRAWINGS
[0016] The above and / or additional aspects and advantages of the present utility model will become apparent and be readily understood from the description of the embodiments in conjunction with the following drawings, wherein:
[0017] Figure 1 is a schematic structural diagram of a diagnostic shelter according to an embodiment of the present utility model;
[0018] Figure 2 is Figure 1 a sectional view taken along line A-A of
[0019] Figure 3 is Figure 2 an enlarged view of part B of
[0020] Figure 4 is a schematic layout diagram of the first vibration isolator according to an embodiment of the present utility model.
[0021] Reference Numerals:
[0022] Diagnostic cabin 100;
[0023] Cabin body 1;
[0024] Diagnostic space 11; bottom wall 111; side wall 112;
[0025] Diagnostic device 2;
[0026] Detection main body 21; support main body 22;
[0027] First vibration isolator 3;
[0028] First group of vibration isolators 31; second group of vibration isolators 32;
[0029] Second vibration isolator 4. Detailed Implementation Manner
[0030] The embodiments of the present utility model will be described in detail below. Examples of the embodiments are shown in the drawings, where the same or similar reference numerals denote the same or similar elements or elements having the same or similar functions throughout. The embodiments described below with reference to the drawings are exemplary and are only used to explain the present utility model and should not be construed as a limitation of the present utility model.
[0031] In the description of the present utility model, it should be understood that the orientation or positional relationship indicated by the terms "longitudinal", "transverse", "length", "width", "thickness", "upper", "lower", "front", "rear", "left", "right", "vertical", "horizontal", "top", "bottom", "inner", "outer", etc. are based on the orientation or positional relationship shown in the drawings, and are only for the convenience of describing the present utility model and simplifying the description, rather than indicating or implying that the device or element referred to must have a specific orientation, be constructed and operated in a specific orientation, and thus should not be construed as a limitation of the present utility model.
[0032] In addition, the terms "first" and "second" are only used for descriptive purposes and should not be construed as indicating or implying relative importance or implicitly indicating the quantity of the indicated technical features. Thus, the features defined with "first" and "second" may explicitly or implicitly include one or more of such features. In the description of the present utility model, "a plurality of" means at least two, such as two, three, etc., unless otherwise specifically and clearly defined.
[0033] In the present utility model, unless otherwise clearly defined and limited, terms such as "installation", "connection", "linkage", "fixation" shall be understood in a broad sense. For example, it may be a fixed connection, a detachable connection, or an integral body; it may be a mechanical connection, an electrical connection, or a connection allowing mutual communication; it may be a direct connection or an indirect connection through an intermediate medium, and it may be the internal communication between two components or the interaction relationship between two components. For those of ordinary skill in the art, the specific meanings of the above terms in the present utility model can be understood according to specific circumstances.
[0034] Reference will be made below to Figures 1-4 describe the diagnostic cabin 100 according to an embodiment of the present utility model.
[0035] As Figures 1-2 shown, the diagnostic cabin 100 according to an embodiment of the present utility model includes: a cabin body 1, the cabin body 1 defining a diagnostic space 11; a diagnostic device 2, the diagnostic device 2 being disposed in the diagnostic space 11; a plurality of first vibration isolators 3, the plurality of first vibration isolators 3 being located between the diagnostic device 2 and the bottom wall 111 of the diagnostic space 11, and the plurality of first vibration isolators 3 being connected to both the diagnostic device 2 and the bottom wall 111 of the diagnostic space 11; a second vibration isolator 4, the second vibration isolator 4 being located between the diagnostic device 2 and the side wall 112 of the diagnostic space 11, and the second vibration isolator 4 being connected to both the diagnostic device 2 and the side wall 112 of the diagnostic space 11.
[0036] Among them, the cabin body 1 is configured as a transportable van-type workroom with protective performance. The cabin body 1 defines a diagnostic space 11, and patients can enter the cabin body 1 so that patients can receive medical treatment in the diagnostic space 11. The diagnostic device 2 can examine, analyze, and diagnose diseases. As some embodiments of the present application, the diagnostic device 2 can be a DR (Digital Radiography) device. As some embodiments of the present application, the diagnostic device 2 can be connected to both the bottom wall 111 and the side wall 112 of the cabin body 1 so that the diagnostic device 2 is disposed in the diagnostic space 11. By disposing the diagnostic device 2 in the diagnostic space 11, the interference of the external environment on the diagnostic device 2 can be reduced, which is beneficial to improving the working reliability of the diagnostic device 2.
[0037] The diagnostic cabin 100 integrates the cabin body 1 and the diagnostic device 2. In case of emergencies such as natural disasters and accident disasters, the diagnostic cabin 100 can be quickly deployed to the disaster area to provide timely medical diagnosis services for the wounded. In remote areas with scarce medical resources, the diagnostic cabin 100 can also make up for the shortage of local medical resources and improve the accessibility and quality of medical services.
[0038] In some embodiments of the present application, the first vibration isolator 3 may be configured as a rubber vibration isolator. In some embodiments of the present application, the first vibration isolator 3 may be configured as a hydraulic vibration isolator. There may be two, three, five, eight, ten or more first vibration isolators 3, and multiple first vibration isolators 3 are all located between the diagnostic device 2 and the bottom wall 111 of the diagnostic space 11. In some embodiments of the present application, one end of the first vibration isolator 3 may be bolted to the diagnostic device 2, and the other end of the first vibration isolator 3 may be bolted to the bottom wall 111 of the diagnostic space 11, so that multiple first vibration isolators 3 are all connected to the diagnostic device 2 and the bottom wall 111 of the diagnostic space 11. In some embodiments of the present application, one end of the first vibration isolator 3 may be snap-connected to the diagnostic device 2, and the other end of the first vibration isolator 3 may be snap-connected to the bottom wall 111 of the diagnostic space 11, so that multiple first vibration isolators 3 are all connected to the diagnostic device 2 and the bottom wall 111 of the diagnostic space 11.
[0039] During the transportation of the diagnostic shelter 100, by connecting the first vibration isolator 3 between the diagnostic device 2 and the bottom wall 111 of the diagnostic space 11, along the height direction of the diagnostic shelter 100, the impact load between the diagnostic device 2 and the shelter box body 1 can be reduced, thereby reducing the risk of damage to the diagnostic device 2 caused by longitudinal impact.
[0040] In some embodiments of the present application, the second vibration isolator 4 may be configured as a wire rope vibration isolator. The second vibration isolator 4 is located between the diagnostic device 2 and the side wall 112 of the diagnostic space 11. In some embodiments of the present application, one end of the second vibration isolator 4 may be bolted to the diagnostic device 2, and the other end of the second vibration isolator 4 may be bolted to the side wall 112 of the diagnostic space 11, so that the second vibration isolator 4 is connected to the diagnostic device 2 and the side wall 112 of the diagnostic space 11. In some embodiments of the present application, one end of the second vibration isolator 4 may be snap-connected to the diagnostic device 2, and the other end of the second vibration isolator 4 may be snap-connected to the side wall 112 of the diagnostic space 11, so that the second vibration isolator 4 is connected to the diagnostic device 2 and the side wall 112 of the diagnostic space 11.
[0041] During the transportation of the diagnostic shelter 100, by connecting the second vibration isolator 4 between the diagnostic device 2 and the side wall 112 of the diagnostic space 11, along the first direction, the first direction is the direction perpendicular to the side wall 112 of the diagnostic space 11, the impact load between the diagnostic device 2 and the shelter box body 1 can be reduced, thereby reducing the risk of damage to the diagnostic device 2 caused by lateral impact.
[0042] Specifically, ten first vibration isolators 3 are provided. All ten first vibration isolators 3 are rubber vibration isolators. One end of each of the ten first vibration isolators 3 is connected to the diagnostic device 2, and the other end is connected to the bottom wall 111 of the diagnostic space 11, so that the ten first vibration isolators 3 are connected between the diagnostic device 2 and the bottom wall 111 of the diagnostic space 11, reducing the longitudinal impact load between the diagnostic device 2 and the cabin body 1. One second vibration isolator 4 is provided. The second vibration isolator 4 is a wire rope vibration isolator. One end of the second vibration isolator 4 is connected to the diagnostic device 2, and the other end is connected to the side wall 112 of the diagnostic space 11, so that the second vibration isolator 4 is connected between the diagnostic device 2 and the side wall 112 of the diagnostic space 11, reducing the lateral impact load between the diagnostic device 2 and the cabin body 1, thereby reducing the risk of damage to the diagnostic device 2 caused by lateral or longitudinal impact.
[0043] It should be noted that a rubber vibration isolator is a vibration isolation element with a metal part as the skeleton, rubber as the elastic element, and bonded together by vulcanization. Therefore, it is sometimes also called a metal-rubber vibration isolator. It is the most widely used type of vibration isolator at present and can be used in both the compression state and the shear state. Its greatest advantage is that it has sufficient internal damping, is suitable for situations where the static displacement is small and the dynamic displacement is large although short-lived, and can be made into various shapes to meet the space requirements.
[0044] The wire rope vibration isolator is mainly composed of components such as wire ropes and upper and lower fixing points. Its working principle is mainly based on the flexibility and tensile strength of the wire ropes, as well as the slip and friction between the wires and strands of the wire ropes. When the equipment is subjected to external vibration or impact, the wire ropes will undergo bending deformation. In the initial deformation stage, due to the friction between the strands of the wire ropes, no slip occurs, and at this time, the stiffness of the vibration isolator is relatively large, which can effectively support the system load. As the deformation amount increases, the friction force is insufficient to resist the vibration, and slip begins to occur between the strands of the wire ropes. The stiffness of the vibration isolator decreases, and dry friction damping is generated. This damping effect can dissipate a large amount of energy generated by the vibration, thereby achieving the vibration isolation effect.
[0045] Thus, by setting that multiple first vibration isolators 3 are all connected to the diagnostic device 2 and the bottom wall 111 of the diagnostic space 11, and the second vibration isolator 4 is connected to the diagnostic device 2 and the side wall 112 of the diagnostic space 11, the impact load between the diagnostic device 2 and the cabin body 1 during transportation can be reduced, thereby reducing the risk of damage to the diagnostic device 2, and further improving the safety of the diagnostic cabin 100 during transportation.
[0046] In some embodiments of the present invention, as Figures 1-2 shown, the rigidity of the second vibration isolator 4 in the first direction is greater than the rigidity of the second vibration isolator 4 in the second direction. The first direction is perpendicular to the side wall 112 of the diagnostic space 11, and the second direction is perpendicular to the bottom wall 111 of the diagnostic space 11.
[0047] Among them, the first direction is perpendicular to the side wall 112 of the diagnostic space 11, and the first direction is parallel to the bottom wall 111 of the diagnostic space 11. The second direction is perpendicular to the bottom wall 111 of the diagnostic space 11, and the second direction is the height direction of the diagnostic device 2, that is Figure 1 the Z direction in
[0048] In some embodiments of the present invention, such as Figures 1-2 shown, along the height direction of the diagnostic device 2, the diagnostic device 2 has a median line, and the second vibration isolator 4 is located above the median line.
[0049] Among them, along the height direction of the diagnostic device 2, that is Figure 1 the Z direction in
[0050] In some embodiments of the present invention, such as Figure 4 shown, the structures of the plurality of first vibration isolators 3 are the same.
[0051] Among them, the plurality of first vibration isolators 3 can all be constructed as rubber vibration isolators so that the structures of the plurality of first vibration isolators 3 are the same. Such a setting can make the arrangement of the first vibration isolators 3 reasonable. The same structures of the plurality of first vibration isolators 3 can make the performances of the plurality of first vibration isolators 3 consistent, reducing the risk that different vibration isolation effects occur at different positions of the diagnostic device 2 due to different structures of the plurality of first vibration isolators 3, so that different positions of the diagnostic device 2 can be vibration-isolated evenly, reducing the risk of damage to any one of the first vibration isolators 3 due to inconsistent performance, and further improving the combined vibration isolation effect of the plurality of first vibration isolators 3.
[0052] Furthermore, the same structure of multiple first vibration isolators 3 can simplify the design process of the diagnostic cabin 100, eliminating the need to consider the compatibility and matching issues of first vibration isolators 3 with different structures. It can also improve the convenience of later maintenance or replacement, reducing the risk of increased maintenance time caused by the mismatched structure of the first vibration isolator 3, thereby reducing the maintenance cost of the diagnostic cabin 100.
[0053] In some embodiments of the present utility model, as Figures 3-4 shown, the first vibration isolator 3 is a rubber vibration isolator, and the second vibration isolator 4 is a wire rope vibration isolator.
[0054] Among them, by researching the frequency application conditions and performance characteristics of various vibration isolators, the first vibration isolator 3 can be selected as a rubber vibration isolator, and the second vibration isolator 4 can be selected as a wire rope vibration isolator, so that the selection of the first vibration isolator 3 and the second vibration isolator 4 conforms to the equipment characteristics of the diagnostic cabin 100.
[0055] Specifically, by the moment balance method, it can be determined that when the number of the first vibration isolators 3 is ten and the ten first vibration isolators 3 are respectively arranged at different positions between the diagnostic equipment 2 and the bottom wall 111 of the diagnostic space 11, the centroid and the rigid center of the diagnostic cabin 100 can coincide or be approximately coincident, which is beneficial to improving the anti-vibration performance of the diagnostic cabin 100.
[0056] The natural frequency f0 of the diagnostic equipment 2 and the first vibration isolator 3 can be calculated through the formula:
[0057]
[0058] Among them, k = 360000, and the k value is the stiffness of the vibration isolator under actual load obtained through experiments. m is the average load mass borne by a single first vibration isolator 3. The total mass of the diagnostic equipment 2 is 415 kg, and the number of the first vibration isolators 3 is 10. Therefore, the average load mass m borne by a single first vibration isolator 3 = 415 / 10.
[0059] Through formula calculation, it can be obtained that the natural frequency f0 of the first vibration isolator 3 is 14.8 Hz, and the applicable frequency (Hz) of the rubber vibration isolator is: 4 Hz - 15 Hz. From 4 Hz < f0 < 15 Hz, it can be seen that the applicable frequency of the rubber vibration isolator meets the design requirements of the diagnostic equipment 2. Therefore, the first vibration isolator 3 is selected as a rubber vibration isolator.
[0060] Since the diagnostic equipment 2 is relatively tall, the second vibration isolator 4 should also be selected and arranged between the diagnostic equipment 2 and the side wall 112 of the diagnostic space 11 to reduce the risk of large swings at the high position of the diagnostic equipment 2, thereby further reducing the risk of damage to the diagnostic equipment 2 and improving the transportation safety of the diagnostic cabin 100.
[0061] When the wire rope vibration isolator is arranged on the side wall 112 of the diagnostic device 2 and the diagnostic space 11, the rigidity of the wire rope vibration isolator in the first direction is greater than that in the second direction. That is to say, the wire rope vibration isolator has strong anti-impact ability in the first direction and weak anti-impact ability in the second direction compared with that in the first direction. Selecting the second vibration isolator 4 as the wire rope vibration isolator can reduce the influence of the second vibration isolator 4 on the first vibration isolator 3. While the second vibration isolator 4 reduces the lateral impact load between the diagnostic device 2 and the shelter box body 1, it will not affect the vibration reduction effect of the first vibration isolator 3 on the longitudinal impact between the diagnostic device 2 and the shelter box body 1. Therefore, when the first vibration isolator 3 is a rubber vibration isolator and the second vibration isolator 4 is a wire rope vibration isolator, the cooperation effect of the first vibration isolator 3 and the second vibration isolator 4 can be improved, which is beneficial to further reduce the damage risk of the diagnostic device 2.
[0062] As some embodiments of the present application, the open-source computer algebra system software wxMaxima is used for formula writing, symbolic calculation and chart drawing, which can realize the autonomy of the algorithm and ensure the controllability of the software. The calculation programs of related complex formulas and functions such as the natural frequency, transmissibility, and vibration isolation rate of the vibration isolator are written using symbolic numerical expressions that are easy for engineers to read, use and meet industry specifications, and the accurate and rapid drawing of computer-aided visualization charts can be realized, which can improve the calculation efficiency of the selection of the first vibration isolator 3 and the second vibration isolator 4 of the diagnostic shelter 100.
[0063] In some embodiments of the present invention, as Figures 1-2 shown, the diagnostic device 2 may include a detection main body 21 and a support main body 22. The detection main body 21 and the support main body 22 are connected. The support main body 22 is used to support the patient, and the detection main body 21 is used to detect the patient. A plurality of first vibration isolators 3 form a first group of vibration isolators 31 and a second group of vibration isolators 32. The first group of vibration isolators 31 is located between the detection main body 21 and the bottom wall 111 of the diagnostic space 11, and the second group of vibration isolators 32 is located between the support main body 22 and the bottom wall 111 of the diagnostic space 11.
[0064] Among them, the support main body 22 may be configured as a radiographic flat table. As some embodiments of the present application, the patient can lie on the support main body 22 so that the support main body 22 is used to support the patient. As some embodiments of the present application, the patient can sit on the support main body 22 so that the support main body 22 is used to support the patient. The support main body 22 supports the patient, which can reduce the risk of the patient's injury being aggravated due to standing and can also improve the comfort of the patient during the diagnosis and treatment process.
[0065] The detection body 21 can be configured as a flat panel detector. In some embodiments of the present application, the detection body 21 and the support body 22 can be directly connected. In some embodiments of the present application, the detection body 21 and the support body 22 can be indirectly connected through a connecting device. By connecting the detection body 21 and the support body 22, the support body 22 is used to support the patient, and the detection body 21 is used to detect the patient, which can make the layout of the diagnostic device 2 reasonable. When the patient sits or lies on the support body 22, the detection body 21 can be directly used to detect the patient without moving the position of the detection body 21, thereby reducing the risk of prolonging the diagnostic time caused by the separate layout of the detection body 21 and the support body 22, and further improving the patient's medical experience.
[0066] A plurality of first vibration isolators 3 can form a first group of vibration isolators 31 and a second group of vibration isolators 32. Taking ten first vibration isolators 3 as an example, eight first vibration isolators 3 form the first group of vibration isolators 31, and the remaining two first vibration isolators 3 form the second group of vibration isolators 32. Alternatively, six first vibration isolators 3 form the first group of vibration isolators 31, and the remaining four first vibration isolators 3 form the second group of vibration isolators 32. The first group of vibration isolators 31 formed by the first vibration isolators 3 is located between the detection body 21 and the bottom wall 111 of the diagnostic space 11, which is beneficial to improving the anti-vibration performance of the detection body 21 and reducing the risk of damage to the detection body 21 caused by longitudinal impact. The second group of vibration isolators 32 is located between the support body 22 and the bottom wall 111 of the diagnostic space 11, which is beneficial to improving the anti-vibration performance of the support body 22 and reducing the risk of damage to the support body 22 caused by longitudinal impact, thereby improving the overall anti-vibration performance of the diagnostic device 2 and further improving the transportation safety of the diagnostic device 2.
[0067] In some embodiments of the present invention, such as Figure 4 shown, both the first group of vibration isolators 31 and the second group of vibration isolators 32 include a plurality of first vibration isolators 3, and the number of first vibration isolators 3 included in the first group of vibration isolators 31 is greater than the number of first vibration isolators 3 included in the second group of vibration isolators 32.
[0068] Among them, the first group of vibration isolators 31 includes a plurality of first vibration isolators 3. For example: the first group of vibration isolators 31 can but is not limited to include three, four, eight or more first vibration isolators 3. The second group of vibration isolators 32 also includes a plurality of first vibration isolators 3. The second group of vibration isolators 32 can but is not limited to include two, three, six or more first vibration isolators 3. The number of first vibration isolators 3 included in the first group of vibration isolators 31 is greater than the number of first vibration isolators 3 included in the second group of vibration isolators 32. Taking ten first vibration isolators 3 as an example, eight first vibration isolators 3 form the first group of vibration isolators 31, and the remaining two first vibration isolators 3 form the second group of vibration isolators 32. Alternatively, six first vibration isolators 3 form the first group of vibration isolators 31, and the remaining four first vibration isolators 3 form the second group of vibration isolators 32.
[0069] The support body 22 is used to support the patient. The support body 22 only needs to have the function of supporting the patient and is not easily damaged. The detection body 21 is used to detect the patient. Precision components such as an X-ray tube are usually integrated in the detection body 21. When the diagnostic device 2 vibrates, the detection body 21 is more likely to be damaged relative to the support body 22. Moreover, the detection result of the detection body 21 directly affects the doctor's diagnosis and treatment judgment of the patient. Therefore, the importance of the detection body 21 is higher than that of the support body 22.
[0070] In this application, taking eight first vibration isolators 3 forming a first group of vibration isolators 31 and the remaining two first vibration isolators 3 forming a second group of vibration isolators 32 as an example for illustration, the first group of vibration isolators 31 formed by the eight first vibration isolators 3 is located between the detection body 21 and the bottom wall 111 of the diagnostic space 11, which is beneficial to further improving the anti-vibration performance of the detection body 21 and reducing the risk of damage to the precision components inside the detection body 21 caused by longitudinal impact, thereby reducing the risk of inaccurate detection results of the detection body 21.
[0071] The second group of vibration isolators 32 formed by the two first vibration isolators 3 is located between the support body 22 and the bottom wall 111 of the diagnostic space 11, which can reliably improve the anti-vibration performance of the support body 22 and reduce the risk of damage to the support body 22 caused by longitudinal impact, thereby improving the transportation safety and use reliability of the diagnostic device 2, being beneficial for the doctor to accurately diagnose and treat the patient according to the detection result of the diagnostic device 2, and further protecting the life and health safety of the people.
[0072] In some embodiments of the present utility model, as Figures 1-2 shown, the detection body 21 and the support body 22 are arranged along a first direction, and the detection body 21 is located between the side wall 112 of the diagnostic space 11 and the support body 22. The second vibration isolator 4 is connected between the detection body 21 and the side wall 112 of the diagnostic space 11, and the first direction is perpendicular to the side wall 112 of the diagnostic space 11.
[0073] Among them, the height of the detection main body 21 is higher than that of the support main body 22, and the center of gravity of the detection main body 21 relative to the support main body 22 is high. Therefore, the stability of the detection main body 21 relative to the support main body 22 is poor. The first direction is perpendicular to the side wall 112 of the diagnosis space 11. The detection main body 21 and the support main body 22 are arranged in sequence along the first direction, and the detection main body 21 is located between the side wall 112 of the diagnosis space 11 and the support main body 22. Such an arrangement can make the layout of the detection main body 21 and the support main body 22 reasonable, facilitating the connection of the second vibration isolator 4 between the detection main body 21 and the side wall 112 of the diagnosis space 11, effectively reducing the lateral impact load between the diagnostic device 2 and the cabin body 1 of the shelter, thereby reducing the risk of damage to the diagnostic device 2 caused by lateral impact or longitudinal impact, and further being conducive to improving the reliability of the detection results of the detection main body 21.
[0074] In some embodiments of the present utility model, such as Figures 1-2 shown, the diagnostic device 2 is an X-ray detection device.
[0075] Among them, in the medical field, X-ray detection devices are important tools for doctors to make diagnoses and provide treatments. By imaging the internal body of a patient, doctors can clearly observe the structures and conditions of organs such as bones and internal organs, assisting doctors in diagnosing and treating diseases of patients. As some embodiments of the present application, X-ray chest radiographs are one of the important means for examining lung diseases.
[0076] By constructing the diagnostic device 2 as an X-ray detection device and arranging the X-ray detection device in the diagnosis space 11, in the event of emergencies such as natural disasters and industrial accidents, the diagnostic shelter 100 integrating the shelter body 1 and the X-ray detection device can be quickly deployed to the disaster area to provide timely medical diagnosis services for patients in the disaster area, thereby protecting the life and health safety of the people.
[0077] In some embodiments of the present utility model, such as Figure 4 shown, a plurality of first vibration isolators 3 are configured to be arranged at different positions of the diagnostic device 2 by the moment balance method.
[0078] Among them, the arrangement positions of the plurality of first vibration isolators 3 can be determined by the moment balance method. Taking the number of the first vibration isolators 3 as ten as an example, the arrangement positions of the ten first vibration isolators 3 can be determined by the moment balance method. Using the moment balance method to determine the arrangement positions of the plurality of first vibration isolators 3 can make the centroid and the rigid center of the diagnostic shelter 100 coincide or approximately coincide, which is beneficial to improving the anti-vibration performance of the diagnostic shelter 100.
[0079] In some embodiments of the present application, the number of the first vibration isolators 3 can be determined by the moment balance method, and the arrangement positions of a plurality of the first vibration isolators 3 can be determined by the moment balance method. Such a design can make the number of the arranged first vibration isolators 3 reasonable, and can make the centroid and the rigid center of the diagnostic shelter 100 coincide or approximately coincide, which is beneficial to further improving the anti-vibration performance of the diagnostic shelter 100.
[0080] In the description of the present specification, the descriptions with reference to the terms "one embodiment", "some embodiments", "illustrative embodiments", "examples", "specific examples", or "some examples", etc. mean that the specific features, structures, materials, or characteristics described in connection with the embodiment or example are included in at least one embodiment or example of the present utility model. In the present specification, the schematic representations of the above terms do not necessarily refer to the same embodiment or example. Moreover, the specific features, structures, materials, or characteristics described can be combined in any one or more embodiments or examples in a suitable manner.
[0081] Although the embodiments of the present utility model have been shown and described, those of ordinary skill in the art can understand that various changes, modifications, substitutions, and variations can be made to these embodiments without departing from the principles and spirit of the present utility model. The scope of the present utility model is defined by the claims and their equivalents.
Claims
1. A diagnostic shelter, characterized in that, Comprising: A mobile cabin body which defines a diagnostic space; Diagnostic equipment disposed within the diagnostic space; A plurality of first vibration isolators, all of the plurality of first vibration isolators being located between the diagnostic equipment and the bottom wall of the diagnostic space, and all of the plurality of first vibration isolators being connected to the diagnostic equipment and the bottom wall of the diagnostic space; A second vibration isolator located between the diagnostic equipment and the side wall of the diagnostic space, and the second vibration isolator being connected to the diagnostic equipment and the side wall of the diagnostic space.
2. The diagnostic cabin according to claim 1, characterized in that, The rigidity of the second vibration isolator in a first direction is greater than the rigidity of the second vibration isolator in a second direction, the first direction being perpendicular to the side wall of the diagnostic space, and the second direction being perpendicular to the bottom wall of the diagnostic space.
3. The diagnostic cabin according to claim 1, characterized in that, Along the height direction of the diagnostic equipment, the diagnostic equipment has a median line, and the second vibration isolator is located above the median line.
4. The diagnostic cabin according to claim 1, wherein The structures of the plurality of first vibration isolators are the same.
5. The diagnostic cabin according to claim 1, characterized in that, The first vibration isolator is a rubber vibration isolator, and the second vibration isolator is a wire rope vibration isolator.
6. The diagnostic shelter according to claim 1, characterized in that The diagnostic equipment includes a detection main body and a support main body, the detection main body and the support main body are connected, the support main body is used for supporting a patient, the detection main body is used for detecting the patient, the plurality of first vibration isolators form a first group of vibration isolators and a second group of vibration isolators, the first group of vibration isolators is located between the detection main body and the bottom wall of the diagnostic space, and the second group of vibration isolators is located between the support main body and the bottom wall of the diagnostic space.
7. The diagnostic cabin according to claim 6, characterized in that, Both the first group of vibration isolators and the second group of vibration isolators include a plurality of the first vibration isolators, and the number of the first vibration isolators included in the first group of vibration isolators is greater than the number of the first vibration isolators included in the second group of vibration isolators.
8. The diagnostic shelter according to claim 6, characterized in that, The detection main body and the support main body are arranged in a first direction, and the detection main body is located between the side wall of the diagnostic space and the support main body, the second vibration isolator is connected between the detection main body and the side wall of the diagnostic space, and the first direction is perpendicular to the side wall of the diagnostic space.
9. The diagnostic shelter according to any one of claims 1-8, characterized in that, The diagnostic equipment is an X-ray detection device.
10. The diagnostic cabin according to any one of claims 1-8, characterized in that, The plurality of first vibration isolators are configured to be arranged at different positions of the diagnostic equipment by the moment balance method.