Probe and detection device
By introducing a middle shell structure into the body temperature probe to absorb impact and adopting a detachable connection design, the problem of sensor failure due to drops or bumps is solved, improving the probe's protection and ease of maintenance, and providing functions such as no external power supply and electromagnetic interference shielding.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-02-07
- Publication Date
- 2026-03-27
AI Technical Summary
Existing body temperature probes are prone to sensor failure due to impact when dropped or bumped, rendering them unusable.
A probe structure was designed, including an upper shell, a lower shell, and a middle shell. The middle shell is connected between the upper shell and the lower shell. The sensing unit is located in the receiving cavity of the middle shell. The middle shell absorbs impact force to protect the sensing unit and improves the ease of maintenance through a detachable connection.
It effectively reduces the damage to the sensing unit, improves the protection and ease of maintenance of the probe, and has the functions of not requiring external power supply and electromagnetic interference shielding, thereby improving the detection accuracy and reliability.
Smart Images

Figure CN224039208U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to medical instrument technical field, concretely relates to probe and detection device. BACKGROUND
[0002] The existing body temperature probe can be fixed on the human body to realize the sustainable detection of the body temperature of the human body. Specifically, the body temperature probe comprises:
[0003] The upper shell comprises a first accommodating cavity;
[0004] The lower shell comprises a second accommodating cavity, and the lower shell is provided with a detection channel for communication with the outside. The lower shell is fixedly connected with the upper shell to communicate the second accommodating cavity with the first accommodating cavity and form an accommodating space. The lower shell can be fixed on the skin surface of the human body by using medical adhesive tape.
[0005] The sensor is arranged in the accommodating space and fixedly connected with the upper shell and / or the lower shell. The sensor is arranged at the corresponding position of the detection channel, so that the sensor can detect the temperature of the skin through the detection channel.
[0006] However, when the body temperature probe is accidentally dropped on the ground or collides during use, the impact force will be transmitted to the sensor through the upper shell or the lower shell, which may cause the failure of the sensor and result in the inability of the body temperature probe to continue to be used. SUMMARY
[0007] Therefore, the utility model provides a probe and a detection device to solve the problem that when the body temperature probe is accidentally dropped on the ground or collides during use, the impact force will be transmitted to the sensor, which may cause the failure of the sensor and result in the inability of the body temperature probe to continue to be used.
[0008] In a first aspect, the utility model provides a probe, which comprises:
[0009] The upper shell;
[0010] The lower shell is arranged in a spaced-apart manner with the upper shell. The lower shell is used to contact the skin of a user. The lower shell is provided with a detection channel for communication with the outside.
[0011] The middle shell comprises an accommodating cavity. The middle shell is connected between the upper shell and the lower shell. The accommodating cavity is in communication with the detection channel.
[0012] The sensor unit is arranged in the accommodating cavity. The sensor unit is connected with the middle shell. The position of the sensor unit corresponds to the position of the detection channel. The sensor unit is used to detect the physiological indicators of the user through the skin of the user.
[0013] Beneficial effects: By setting the middle shell, the position of the sensing unit is fixed. Based on this, when the probe falls to the ground or is bumped, the middle shell can absorb the impact force brought by the upper shell and the lower shell to reduce the damage degree to the sensing unit, thereby improving the protection strength of the sensing unit, and thus achieving the technical effect of improving the protection of the probe.
[0014] In an alternative embodiment, the sensing unit is detachably connected with the middle shell;
[0015] And / or, the upper shell is detachably connected with the middle shell;
[0016] And / or, the middle shell is detachably connected with the lower shell.
[0017] Beneficial effects: By limiting the detachable connection between the sensing unit and the middle shell, the upper shell and the middle shell, and the middle shell and the lower shell, the sensing unit and the middle shell, the upper shell and the middle shell, and the middle shell and the lower shell can be replaced according to actual needs, thereby achieving the technical effect of improving the convenience of probe maintenance.
[0018] In an alternative embodiment, the sensing unit is detachably connected with the middle shell;
[0019] And / or, the upper shell is detachably connected with the middle shell;
[0020] And / or, the middle shell is detachably connected with the lower shell.
[0021] Beneficial effects: By limiting the detachable connection between the sensing unit and the middle shell, the upper shell and the middle shell, and the middle shell and the lower shell, the sensing unit and the middle shell, the upper shell and the middle shell, and the middle shell and the lower shell can be replaced according to actual needs, thereby achieving the technical effect of improving the convenience of probe maintenance.
[0022] In an alternative embodiment, the sensing unit is detachably connected with the middle shell;
[0023] The body;
[0024] The extension part is provided with at least two, which is arranged on one side of the body, and the space between the at least two extension parts forms the accommodating cavity, and the extension part is provided with a clamping groove for clamping the buckle.
[0025] Beneficial effects: By clamping between the buckle and the clamping groove, the clamping between the sensing unit and the middle shell can be achieved.
[0026] In an alternative embodiment, the middle shell includes:
[0027] The locking unit is arranged on one side of the body, and an elastic protrusion is arranged on the locking unit. The sensing unit is arranged between the elastic protrusion and the extension portion, and is used for clamping the sensing unit.
[0028] Beneficial effects: through the cooperation between the elastic protrusion and the extension portion, the stability of the sensing unit arranged in the accommodating cavity can be improved, and the clamping force on the sensing unit can be improved, so that the technical effect of improving the clamping stability between the sensing unit and the middle shell is achieved.
[0029] In an alternative embodiment, the probe comprises:
[0030] The bottom cover is arranged on the side of the lower shell away from the middle shell;
[0031] And / or, the power supply unit is arranged in the accommodating cavity, and the power supply unit is connected with the middle shell and electrically connected with the sensing unit;
[0032] And / or, the sealing unit is arranged between the middle shell and the lower shell;
[0033] And / or, the control unit is arranged in the accommodating cavity, and the control unit is electrically connected with the sensing unit.
[0034] Beneficial effects: through the arrangement of the bottom cover, the impact force can be further absorbed to further protect the probe, so that the technical effect of improving the protection intensity of the sensing unit is achieved;
[0035] Through the arrangement of the power supply unit, the sensing unit can be powered without external power supply, so that the probe can be applied to a power-free scene, thereby achieving the technical effect of reducing the use scene limitation of the power supply unit;
[0036] Through the arrangement of the control unit, the on-off of the sensing unit in the circuit can be controlled, so as to drive the opening and closing of the sensing unit;
[0037] Through the arrangement of the sealing unit, the tightness of the connection position between the middle shell and the lower shell can be improved, so as to avoid the water or other liquids from entering the accommodating cavity through the connection gap between the middle shell and the lower shell to affect the safety of the sensing unit, thereby achieving the technical effect of improving the protection intensity of the sensing unit.
[0038] In an alternative embodiment, the probe comprises:
[0039] The damping unit is arranged between the lower shell and the bottom cover;
[0040] And / or, the probe comprises:
[0041] The fixing unit is arranged on the side of the bottom cover away from the lower shell, and is used for fixing to the skin surface of the user.
[0042] And / or, the power supply unit comprises:
[0043] A power supply structure, electrically connected with the sensing unit;
[0044] A charging structure, electrically connected with the power supply structure, used for electrically connecting with an external power supply;
[0045] And / or, the control unit comprises:
[0046] A control structure;
[0047] A diagnosis structure, electrically connected with the control structure, used for monitoring the working state of the probe.
[0048] Beneficial effects: the shock absorbing unit can protect the lower shell and reduce the impact force on the lower shell, thereby improving the protection of the lower shell and reducing the impact of the impact force on the sensing unit;
[0049] By setting the fixing unit, the fixing unit can be directly adsorbed on the user's skin, so as to realize the fixation between the probe and the user, thereby improving the use convenience of the probe;
[0050] By setting the charging structure, the power supply structure can be used without replacement, thereby reducing the use quantity of the power supply structure and the use cost of the probe;
[0051] By setting the diagnosis structure, the working state of the probe, the errors found in the working process and the error types can be collected and arranged, so that the user can handle the probe according to the error types.
[0052] In an optional embodiment, the upper shell is provided with a recess, and the probe comprises:
[0053] A display unit is arranged in the recess, and the display unit is electrically connected with the control structure.
[0054] Beneficial effects: the display unit can display the temperature measurement results, and the display unit can also display the error types in the working process of the probe, so as to facilitate the user to check the probe according to different error types.
[0055] In an optional embodiment, the middle shell is provided with a shielding unit, and the shielding unit is used for shielding electromagnetic wave interference.
[0056] Beneficial effects: By shielding unit evenly coated on the middle shell, the electronic components inside the probe can be protected from external electromagnetic interference, thereby improving the accuracy and reliability of the probe detection results.
[0057] In a second aspect, the utility model also provides a detection device, including:
[0058] The probe described above;
[0059] The host computer is in communication connection with the probe.
[0060] Beneficial effects: The host computer can receive, process and display the data transmitted by the wireless body temperature probe, and medical staff can export the body temperature data for analysis and record. Further, when the host computer detects that the temperature exceeds the preset safety range, the host computer will alarm to remind medical staff to handle in time. At the same time, the host computer can also collect and analyze the working state and errors of the probe during the working process. BRIEF DESCRIPTION OF DRAWINGS
[0061] In order to more clearly illustrate the specific embodiments of the utility model or the technical solutions in the prior art, the following will briefly introduce the drawings needed to be used in the specific embodiments or the prior art description, and obviously, the drawings in the following description are some embodiments of the utility model, and for those skilled in the art, other drawings can also be obtained without creative labor according to these drawings.
[0062] Figure 1 It is the structural schematic diagram of the probe of the embodiment.
[0063] Figure 2 It is the schematic diagram of the data transmission of the probe and the host computer of the embodiment.
[0064] Explanation of reference signs:
[0065] 1, upper shell;
[0066] 2, lower shell;201, annular portion;202, connecting portion;
[0067] 3, middle shell;301, body;302, extension;
[0068] 4, bottom cover;5, damping unit;6, fixing unit;
[0069] 7, power supply unit;701, power supply structure;702, charging structure;7021, wireless charging unit;7022, wired charging unit;
[0070] 8, sealing unit; 9, control unit; 10, display unit; 11, locking unit; 12, sensing unit; 13, communication unit; 14, host computer; 1401, receiving unit; 1402, display structure; 1403, processing unit; 1404, detection unit; 1405, control board. DETAILED DESCRIPTION
[0071] To make the objects, technical solutions, and advantages of the embodiments of the present application clearer, the following will clearly and completely describe the technical solutions in the embodiments of the present application with reference to the drawings in the embodiments of the present application. Obviously, the described embodiments are some but not all of the embodiments of the present application. Based on the embodiments in the present application, all other embodiments obtained by those skilled in the art without creative work fall within the scope of the present application.
[0072] The embodiments of the present application are described below with reference to the drawings. Figure 1 and Figure 2 .
[0073] According to the embodiments of the present application, a probe is provided, which comprises:
[0074] an upper shell 1;
[0075] a lower shell 2, which is arranged apart from the upper shell 1, and is used to contact the skin of a user, and is provided with a detection channel which is in communication with the outside;
[0076] a middle shell 3, which comprises a receiving cavity, and is connected between the upper shell 1 and the lower shell 2, and the receiving cavity is in communication with the detection channel;
[0077] a sensing unit 12, which is arranged in the receiving cavity, and is connected with the middle shell 3, and the position of the sensing unit 12 corresponds to the position of the detection channel, and is used to detect the physiological index of the user through the skin of the user.
[0078] In the probe of the present embodiment, the middle shell 3 is arranged to fix the position of the sensing unit 12. Based on this, when the probe falls to the ground or is bumped, the middle shell 3 can absorb the impact force brought by the upper shell 1 and the lower shell 2, so as to reduce the damage degree of the sensing unit 12, thereby improving the protection degree of the sensing unit 12, and further achieving the technical effect of improving the protection of the probe.
[0079] In the present embodiment, the sensing unit 12 is a temperature sensor, which emits infrared rays, and the infrared rays pass through the detection channel to detect the body temperature of the user. Of course, in other embodiments, the type of the sensing unit 12 and the detection object can be adjusted according to the design of the probe.
[0080] In addition, in the embodiment, the probe can continuously detect the body temperature of the user in real time, or the probe can detect the body temperature of the user only once as needed.
[0081] In addition, in combination with Figure 1 In the embodiment, the probe includes:
[0082] The bottom cover 4 is arranged on the side of the lower shell 2 away from the middle shell 3. Specifically, the bottom cover 4 can be fixedly connected to the lower shell 2. The impact force can be further absorbed through the bottom cover 4 to further protect the sensing unit 12, thereby achieving the technical effect of improving the protection strength of the sensing unit 12. Of course, in other embodiments, the bottom cover 4 can also be fixedly connected to the middle shell 3 or other structures, which is not limited here.
[0083] The power supply unit 7 is arranged in the accommodation cavity, and the power supply unit 7 is connected with the middle shell 3 and electrically connected with the sensing unit 12. The sensing unit 12 can be powered through the power supply unit 7 without external power supply, so that the probe can be applied to a power-free scene, thereby achieving the technical effect of reducing the limitation of the use scene of the probe.
[0084] The control unit 9 is arranged in the accommodation cavity, and the control unit 9 is electrically connected with the sensing unit 12. The control unit 9 controls the on-off of the sensing unit 12 in the circuit to drive the opening and closing of the sensing unit 12.
[0085] The sealing unit 8 is arranged between the middle shell 3 and the lower shell 2. The sealing unit 8 can improve the tightness of the connection position between the middle shell 3 and the lower shell 2, so that liquid cannot enter the accommodation cavity through the connection gap between the middle shell 3 and the lower shell 2 to damage the sensing unit 12, thereby achieving the technical effect of improving the protection strength of the sensing unit 12. The sealing unit 8 can be a sealing strip.
[0086] Of course, in other embodiments, the type of the sealing unit 8 can be adjusted according to the design of the probe.
[0087] In other embodiments, the probe can not include the bottom cover 4, the power supply unit 7, the sealing unit 8 and the control unit 9, or the probe can include one or a combination of the bottom cover 4, the power supply unit 7, the sealing unit 8 and the control unit 9, which are all within the protection scope of the utility model.
[0088] In addition, in the embodiment, the sensing unit 12 and the control unit 9 are integrally arranged, that is, the sensing unit 12 and the control unit 9 are integrated as a whole, which can reduce the number of installation parts, thereby achieving the technical effect of improving the convenience of installation of the sensing unit 12 and the control unit 9.
[0089] In addition, in the embodiment, the control unit 9 includes:
[0090] Control structure;
[0091] The diagnostic structure, electrically connected to the control structure, is used to monitor the probe's operating status.
[0092] By setting up a diagnostic structure, the probe's operating status, errors detected during operation, and the types of errors can be collected and organized, allowing users to take appropriate action based on the type of error. The control and diagnostic structures are mature technologies and will not be elaborated upon further here.
[0093] Of course, in other embodiments, the control unit 9 may not have a diagnostic structure.
[0094] In addition, in this embodiment, combined with Figure 1 As shown, the probe includes a shock-absorbing unit 5, which is disposed between the lower shell 2 and the bottom cover 4. The shock-absorbing unit 5 protects the lower shell 2, reducing the impact force on it, thereby enhancing the protection of the lower shell 2 and reducing the impact of the impact force on the sensing unit 12. The shock-absorbing unit 5 can be made of shock-absorbing rubber. Alternatively, the shock-absorbing unit 5 can be any other shock-absorbing structure that can provide shock absorption.
[0095] The lower shell 2 is detachably connected to the shock-absorbing unit 5. This allows for easy disassembly and replacement of either the lower shell 2 or the shock-absorbing unit 5 as needed.
[0096] Specifically, the lower shell 2 includes an annular portion 201 and a connecting portion 202. The connecting portion 202 is located on one side of the annular portion 201. The annular portion 201 includes a first hollow structure, the position of which corresponds to the position of the detection channel. By setting the first hollow structure, it is ensured that the sensing unit 12 passes through the first hollow structure and comes into contact with the user's skin, avoiding the lower shell 2 from affecting the sensing unit 12's detection of the user's temperature, thereby achieving the technical effect of improving the accuracy of the user's temperature detection.
[0097] The shock-absorbing unit 5 includes a shock-absorbing body, which includes a second hollow structure. The first hollow structure and the second hollow structure are positioned correspondingly. The shock-absorbing body is provided with a connecting groove so that the connecting groove can be inserted into the connecting part 202 to realize a detachable connection between the shock-absorbing unit 5 and the lower shell 2.
[0098] Preferably, the annular portion 201 is provided with a protrusion, and the annular portion 201 is press-fitted with the connecting groove through the protrusion, thereby achieving the technical effect of improving the tightness of the connection between the lower shell 2 and the shock-absorbing unit 5, and thus achieving the technical effect of improving the stability of the connection between the lower shell 2 and the shock-absorbing unit 5.
[0099] As the transformable embodiment, the inner wall of the annular part 201 can also not be provided with the protrusion.
[0100] Of course, in other embodiments, the detachable connection between the damping unit 5 and the lower shell 2 can be adjusted according to the design of the probe, for example, through the clamp connection.
[0101] In other embodiments, the damping unit 5 can be fixedly connected with the lower shell 2. Compared with other embodiments, the damping unit 5 and the lower shell 2 can be disassembled and replaced as needed in this embodiment, thereby achieving the technical effect of improving the convenience of using the probe.
[0102] In other embodiments, the structure of the damping unit 5 and the lower shell 2 can be adjusted according to the design of the probe.
[0103] In addition, the probe comprises a fixing unit 6 arranged on the side of the bottom cover 4 away from the lower shell 2, and used for being fixed to the skin surface of a user.
[0104] The fixing unit 6 can be a suction cup, which is adsorbed on the skin of the user to realize the connection and fixation between the probe and the user. Of course, in other embodiments, the structure of the fixing unit 6 can be adjusted according to the design of the probe, for example, the fixing unit 6 can also be an annular elastic rope, which is sleeved on the required position of the user to realize the connection and fixation between the probe and the user. Compared with other embodiments, the suction cup in this embodiment has a simple structure, and the suction cup can be directly adsorbed on the skin of the user, thereby achieving the technical effect of improving the convenience of using the probe.
[0105] In addition, in combination with Figure 1 It is shown that, in this embodiment, the power supply unit 7 comprises:
[0106] The power supply structure 701 is electrically connected with the sensing unit 12, and the on-off of the electrical connection between the power supply structure 701 and the sensing unit 12 can be controlled by the control structure to realize the opening and closing control of the sensing unit 12.
[0107] The charging structure 702 is electrically connected with the power supply structure 701, and the charging structure 702 is used for being electrically connected with an external power supply.
[0108] The charging unit comprises:
[0109] The wireless charging unit 7021 is arranged in the accommodating cavity, and the wireless charging unit 7021 is electrically connected with the power supply structure 701;
[0110] The wired charging unit 7022 is arranged on one side of the middle shell 3, one end of the wired charging unit 7022 is used for being electrically connected with an external power supply, and the other end of the wired charging unit 7022 is used for being electrically connected with the power supply structure 701.
[0111] Based on this, wired charging or wireless charging of the probe can be selected as needed, thereby achieving the technical effect of improving the convenience of charging the probe.
[0112] Of course, in other embodiments, the power supply unit 7 can not include the charging structure 702, and when the power supply structure 701 is insufficient, the power supply structure 701 can be replaced to meet the power demand of the probe. Compared with other embodiments, by arranging the charging structure 702 in this embodiment, the power demand of the probe can be met without replacing the power supply structure 701, thereby reducing the number of power supply structures 701 used, thereby achieving the technical effect of reducing the use cost of the probe.
[0113] In other embodiments, the charging unit can only include a wireless charging unit 7021 or only include a wired charging unit 7022.
[0114] As a convertible implementation, it can also be limited that the probe includes the damping unit 5, the probe includes the fixing unit 6, the power supply unit 7 includes the power supply structure 701 and the charging structure 702, and the control unit 9 includes one structure or a combination of multiple structures of the control structure and the diagnostic structure, all of which are within the protection scope of the utility model.
[0115] In addition, in this embodiment, in the direction from the middle shell 3 to the lower shell 2, the wireless charging unit 7021, the power supply structure 701 and the control unit 9 are arranged in sequence. When the probe is working, the heat generated by the power supply structure 701 can be dissipated through the wireless charging unit 7021 and the middle shell 3, and the control unit 9 can be directly dissipated through the lower shell 2, and there are no other electronic elements between the control unit 9 and the lower shell 2, thereby achieving the technical effect of improving the heat dissipation capacity of the control unit 9, and further achieving the technical effect of improving the service life of the probe.
[0116] Of course, in other embodiments, the positions of the electronic elements in the accommodation cavity can be adjusted according to the design of the probe.
[0117] In addition, in this embodiment, the sensing unit 12 and the middle shell 3, the upper shell 1 and the middle shell 3, and the middle shell 3 and the lower shell 2 are detachably connected. Based on this, the sensing unit 12 and the middle shell 3, the upper shell 1 and the middle shell 3, and the middle shell 3 and the lower shell 2 can be disassembled and replaced according to actual needs, thereby achieving the technical effect of improving the convenience of probe maintenance.
[0118] Preferably, the sensing unit 12 and the middle shell 3, the upper shell 1 and the middle shell 3, and the middle shell 3 and the lower shell 2 are clamped.
[0119] Specifically, one side of the sensing unit 12 is provided with a buckle, and the middle shell 3 comprises:
[0120] the body 301;
[0121] the extension 302 is provided at one side of the body 301, and a space between at least two extensions 302 forms a receiving cavity, and the extension 302 is provided with a clasp slot for clamping the buckle.
[0122] Through the clamping between the buckle and the clasp slot, the clamping between the sensing unit 12 and the middle shell 3 can be realized. As a transformable embodiment, the extension 302 can be provided with a buckle, and the sensing unit 12 can be provided with a clasp slot.
[0123] Among them, the extension 302 is provided at the side of the body 301 away from the upper shell 1. As a transformable embodiment, the extension 302 can be provided at the side of the body 301 close to the upper shell 1.
[0124] Specifically, in this embodiment, the extension 302 is provided with two, one of which can be provided with a clasp slot, and the other extension 302 is not provided with a clasp slot, and the clamping of the sensing unit 12 is realized through the clasp slot and the inner wall of the extension 302 without the clasp slot.
[0125] At the same time, the clamping mode between the upper shell 1 and the middle shell 3 and between the middle shell 3 and the lower shell 2 can be the clamping mode between the buckle and the clasp slot, and can also be adjusted as needed, which will not be described in detail here.
[0126] Further, the connection mode of the power supply structure 701 and the middle shell 3 and the connection mode between the wireless charging unit 7021 and the middle shell 3 are the same as the connection mode between the sensing unit 12 and the middle shell 3, which will not be described in detail here.
[0127] Of course, in other embodiments, the number of extensions 302 and the number of clasp slots can be adjusted according to the design of the probe.
[0128] In other embodiments, the detachable connection mode between the sensing unit 12 and the middle shell 3, the upper shell 1 and the middle shell 3, and the middle shell 3 and the lower shell 2 can be adjusted, for example, through the clamp detachable connection.
[0129] Of course, in other embodiments, according to the design of the probe, the sensing unit 12 and the middle shell 3, the upper shell 1 and the middle shell 3, and the middle shell 3 and the lower shell 2 can also be fixedly connected.
[0130] As a transformable embodiment, one or several of the sensing unit 12 and the middle shell 3, the upper shell 1 and the middle shell 3, and the middle shell 3 and the lower shell 2 can be detachably connected.
[0131] In addition, in the embodiment, the middle shell 3 comprises:
[0132] The locking unit 11 is arranged on one side of the body 301, and the elastic protrusion is arranged on the locking unit 11. The sensing unit 12 is arranged between the elastic protrusion and the extension 302, and is used for clamping the sensing unit 12.
[0133] The locking unit 11 can be arranged on the extension 302 without the clamping groove. Through the cooperation between the elastic protrusion and the extension 302, the stability of the sensing unit 12 arranged in the accommodating cavity can be improved, and the clamping force on the sensing unit 12 can be improved, so that the technical effect of improving the clamping stability between the sensing unit 12 and the middle shell 3 is achieved.
[0134] Further, in the embodiment, the elastic protrusion can be a spring. Of course, in other embodiments, the structure of the elastic protrusion can be adjusted according to the design of the probe.
[0135] As a convertible embodiment, the middle shell 3 can not include the locking unit 11.
[0136] Of course, in other embodiments, the setting position of the locking unit 11 can be adjusted according to the design of the probe.
[0137] In addition, in the embodiment, the upper shell 1 is provided with a groove, and the probe comprises:
[0138] The display unit 10 is arranged in the groove, and the display unit 10 is electrically connected with the control structure. Through the display unit 10, the temperature measurement result can be displayed, and the display unit 10 can also display the error type in the working process of the probe, so that the user can check the probe according to different error types.
[0139] Preferably, the display unit 10 comprises a screen assembly, and the screen assembly has anti-scratching and anti-fingerprint functions. For example, the display unit 10 is made of Kunlun glass, so as to achieve the technical effect of improving the wear resistance of the display unit 10.
[0140] Of course, in other embodiments, the type of the display unit 10 can be adjusted according to the design of the probe.
[0141] In addition, in the embodiment, the middle shell 3 is provided with a shielding unit, and the shielding unit is used for shielding electromagnetic wave interference. By uniformly coating the shielding unit on the middle shell 3, the electronic elements inside the probe can be prevented from being interfered by external electromagnetic interference, so as to improve the accuracy and reliability of the detection result of the probe.
[0142] The shielding unit can be conductive paint. Of course, in other embodiments, the type of the shielding unit can be adjusted according to the design of the probe.
[0143] In other embodiments, according to the design of the probe, the shielding unit can be unevenly coated on the middle shell 3, for example, the thickness of the shielding unit coated on the middle shell 3 corresponding to the electronic element is greater than the thickness of the shielding unit coated on the middle shell 3 without the electronic element.
[0144] According to the embodiments of the utility model, on the other hand, a detection device is also provided, which comprises:
[0145] The probe of the embodiment;
[0146] The host computer 14 is in communication connection with the probe.
[0147] The host computer 14 can receive and process the data detected by the probe and display the data transmitted by the probe, and the medical staff can export the body temperature data for analysis and recording. Further, when the host computer 14 detects that the temperature exceeds the preset safety range, the host computer 14 will alarm to remind the medical staff to handle it in time. At the same time, the host computer 14 can also collect and analyze the working state of the probe and the errors in the working process.
[0148] Among them, the host computer 14 can be a monitor. Of course, in other embodiments, the type of host computer 14 can be adjusted according to the design of the detection device.
[0149] In addition, in the embodiment, the probe comprises a communication unit 13, that is, the communication unit 13 comprises a Bluetooth module and a WIFI module, and the communication unit 13 is in wireless communication connection with the host computer 14. Wireless communication connection is a mature technology, which is not limited here.
[0150] The host computer 14 comprises a receiving unit 1401, a display structure 1402, a processing unit 1403, a detection unit 1404, a control board 1405 and an alarm unit. Among them, the detection unit 1404 is other detection structure for detecting physiological indicators.
[0151] The communication unit 13 of the probe is in communication connection with the receiving unit 1401, the receiving unit 1401 is electrically connected with the detection unit 1404 and the processing unit 1403, the display structure 1402 is electrically connected with the processing unit 1403, and the control board 1405 is electrically connected with the receiving unit 1401, the display structure 1402, the processing unit 1403 and the detection unit 1404 to control the working state of the receiving unit 1401, the display structure 1402, the processing unit 1403, the detection unit 1404 and the alarm unit.
[0152] Specifically, the receiving unit 1401 receives the data transmitted by the probe and the detection unit 1404, and transmits to the processing unit 1403, the processing unit 1403 processes the received data, and displays the type of physiological indicators and corresponding data, when the probe detects the temperature data exceeds the preset range, the control panel 1405 controls the alarm unit to issue an alarm.
[0153] Of course, in other embodiments, the probe can be connected with the host computer 14 through wired communication. Compared with other embodiments, the wireless communication in the present embodiment can reduce the entanglement between the cables, thereby reducing the risk caused by the cable problem, and also greatly improving the comfort of the user in the process of accepting the temperature monitoring, so that the user can also freely move when detecting the temperature, thereby achieving the technical effect of improving the simplicity of the detection device.
[0154] Specifically, in combination with Figure 2 As shown in the figure, the use process of the detection device of the present embodiment is as follows:
[0155] Fix the probe on the user's skin, turn on the probe and the host computer 14, the communication unit 13 of the probe and the receiving unit 1401 of the host computer 14 perform wireless communication pairing, the probe collects the user's temperature data and uploads it to the host computer 14, the receiving unit 1401 and the processing unit 1403 receive, save and process the temperature data and other physiological indicator data detected by the host computer 14, and display them through the display structure 1402. When the host computer 14 detects that the temperature data exceeds the preset range, the alarm unit issues a sound or a display alarm, so that medical staff can timely understand the user's temperature condition.
[0156] Although the embodiments of the present application are described in conjunction with the drawings, those skilled in the art can make various modifications and variations without departing from the spirit and scope of the present application, and such modifications and variations all fall within the scope defined by the appended claims.
Claims
1. A probe, characterized in that, include: Upper shell (1); The lower shell (2) is spaced apart from the upper shell (1). The lower shell (2) is used to contact the user's skin. The lower shell (2) is provided with a detection channel that communicates with the outside world. The middle shell (3) includes a receiving cavity, the middle shell (3) is connected between the upper shell (1) and the lower shell (2), and the receiving cavity is in communication with the detection channel; A sensing unit (12) is disposed in the receiving cavity. The sensing unit (12) is connected to the middle shell (3). The position of the sensing unit (12) corresponds to the position of the detection channel and is used to detect the physiological indicators of the user through the user's skin.
2. The probe according to claim 1, characterized in that, The sensing unit (12) is detachably connected to the middle shell (3); And / or, the upper shell (1) and the middle shell (3) are detachably connected; And / or, the middle shell (3) and the lower shell (2) are detachably connected.
3. The probe according to claim 2, characterized in that, The sensing unit (12) is snapped into the middle shell (3); And / or, the upper shell (1) is snapped into the middle shell (3); And / or, the middle shell (3) is snapped into the lower shell (2).
4. The probe according to claim 3, characterized in that, The sensing unit (12) has a snap fastener on one side, and the middle shell (3) includes: Ontology(301); At least two extensions (302) are provided on one side of the main body (301), and the space between the at least two extensions (302) forms the receiving cavity. The extensions (302) are provided with slots for engaging with the buckle.
5. The probe according to claim 4, characterized in that, The middle shell (3) includes: A locking unit (11) is provided on one side of the body (301). The locking unit (11) has an elastic protrusion. The sensing unit (12) is provided between the elastic protrusion and the extension (302) for engaging the sensing unit (12).
6. The probe according to any one of claims 1-5, characterized in that, The probe includes: The bottom cover (4) is located on the side of the lower shell (2) away from the middle shell (3); And / or, a power supply unit (7) is provided in the receiving cavity, the power supply unit (7) is connected to the middle shell (3) and electrically connected to the sensing unit (12); And / or, a sealing unit (8) is disposed between the middle shell (3) and the lower shell (2); And / or, a control unit (9) is disposed within the receiving cavity, the control unit (9) being electrically connected to the sensing unit (12).
7. The probe according to claim 6, characterized in that, The probe includes: A shock-absorbing unit (5) is disposed between the lower shell (2) and the bottom cover (4); And / or, the probe includes: A fixing unit (6) is provided on the side of the bottom cover (4) away from the lower shell (2) for fixing to the user's skin surface; And / or, the power supply unit (7) includes: The power supply structure (701) is electrically connected to the sensing unit (12); A charging structure (702) is electrically connected to the power supply structure (701), and the charging structure (702) is used to be electrically connected to an external power source; And / or, the control unit (9) includes: Control structure; The diagnostic structure, electrically connected to the control structure, is used to monitor the working status of the probe.
8. The probe according to claim 7, characterized in that, The upper shell (1) is provided with a groove, and the probe includes: A display unit (10) is disposed in the groove, and the display unit (10) is electrically connected to the control structure.
9. The probe according to any one of claims 1-5, characterized in that, The middle shell (3) is provided with a shielding unit, which is used to shield electromagnetic interference.
10. A detection device, characterized in that, include: The probe according to any one of claims 1-9; The host computer (14) is connected to the probe for communication.