WO2022011601A1 - 快速体温测量装置及监护系统 - Google Patents

快速体温测量装置及监护系统 Download PDF

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Publication number
WO2022011601A1
WO2022011601A1 PCT/CN2020/102144 CN2020102144W WO2022011601A1 WO 2022011601 A1 WO2022011601 A1 WO 2022011601A1 CN 2020102144 W CN2020102144 W CN 2020102144W WO 2022011601 A1 WO2022011601 A1 WO 2022011601A1
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WIPO (PCT)
Prior art keywords
rapid
temperature measurement
probe
cavity
body temperature
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Ceased
Application number
PCT/CN2020/102144
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English (en)
French (fr)
Inventor
严明
孟海滨
童涛
韩江
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
Shenzhen Mindray Bio Medical Electronics Co Ltd
Original Assignee
Shenzhen Mindray Bio Medical Electronics Co Ltd
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
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Publication date
Application filed by Shenzhen Mindray Bio Medical Electronics Co Ltd filed Critical Shenzhen Mindray Bio Medical Electronics Co Ltd
Priority to CN202080102950.9A priority Critical patent/CN115884711B/zh
Priority to PCT/CN2020/102144 priority patent/WO2022011601A1/zh
Publication of WO2022011601A1 publication Critical patent/WO2022011601A1/zh
Anticipated expiration legal-status Critical
Ceased legal-status Critical Current

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Classifications

    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61BDIAGNOSIS; SURGERY; IDENTIFICATION
    • A61B5/00Measuring for diagnostic purposes; Identification of persons
    • A61B5/02Detecting, measuring or recording for evaluating the cardiovascular system, e.g. pulse, heart rate, blood pressure or blood flow
    • A61B5/0205Simultaneously evaluating both cardiovascular conditions and different types of body conditions, e.g. heart and respiratory condition

Definitions

  • the present application relates to the field of medical devices, in particular to a device capable of rapidly measuring body temperature.
  • a rapid body temperature measurement device is a device for rapidly predicting body temperature, which can be installed on other medical equipment (such as monitors) and used together.
  • the rapid body temperature measuring device usually calculates and predicts body temperature quickly through the temperature change curve of the rapid temperature measuring probe.
  • the initial temperature of the fast temperature measurement probe plays an important reference role. Therefore, it is usually required that the initial temperature of the fast temperature measurement probe does not exceed 34°C, otherwise the measurement accuracy prediction time will be affected.
  • An existing rapid body temperature measurement device is set inside the monitor host. Due to the large amount of heat generated by the monitor host during operation, the internal temperature of the host increases, which will cause the initial temperature of the rapid temperature probe to increase due to the influence of the ambient temperature. .
  • a fan is added to the host, and the fan is used to cool the fast temperature measuring probe and dissipate heat to the host at the same time.
  • the disadvantage of this method is that the operation of the fan causes increased noise, and the fan is not easy to clean and sterilize, and maintenance is relatively troublesome.
  • Another existing rapid body temperature measurement device is installed on the shell of the monitor host.
  • the host can realize a fanless design, which solves the problem of fan noise.
  • the rapid temperature measurement. probe After the internal ambient temperature of the host increases, it will still be transmitted to the rapid temperature measurement. probe, causing the initial temperature of the rapid temperature probe to rise.
  • the present application mainly provides a rapid body temperature measurement device and a monitoring system, so that the rapid temperature measurement probe of the rapid body temperature measurement device can maintain a lower initial temperature.
  • An embodiment of the present application provides a rapid body temperature measurement device, including:
  • the support device has a mounting portion, the mounting portion is used for assembling the support device on the corresponding medical equipment, the support device has at least one thermal insulation cavity for reducing heat transfer;
  • the probe placement device is arranged on the support device;
  • a rapid temperature measurement probe the rapid temperature measurement probe is placed on the probe placement device in a removable manner, the rapid temperature measurement probe has a measurement end for measuring body temperature, and the heat insulation cavity is used to reduce The heat from the medical device is transferred from the mounting portion to the rapid temperature measuring probe;
  • control unit is signally connected with the fast temperature measuring probe.
  • the thermal insulation cavity is located between the mounting portion and the rapid temperature measuring probe.
  • At least one thermal insulation layer is further included, and the thermal insulation layer is located outside the mounting portion and is used to separate the mounting portion from the corresponding medical equipment.
  • At least one heat insulating layer is further included, and the heat insulating layer is arranged in the support device and located between the mounting portion and the quick temperature measuring probe.
  • the support device has a through gas flow channel, and at least a measurement end of the rapid temperature measuring probe is located in the gas flow channel for reducing the temperature of the measurement end.
  • one end of the gas flow channel is located at the bottom of the support device, and the other end is located at the top or side of the support device, and the rapid temperature measuring probe is placed with the measuring end facing downwards. in the gas flow channel.
  • the gas flow channel is arranged substantially vertically, the probe placement device is at least partially located in the gas flow channel, and there is a gap between the rapid temperature probe and the probe placement device, and the gap is In communication with the gas flow channel, the gas can flow through the gap.
  • the support device has a first housing and a second housing, the first housing has a first cavity, the second housing has a second cavity, the first cavity The cavity and the second cavity are used as the heat insulation cavity, the control unit is installed in the first cavity or the second cavity, the installation part is arranged on the first housing, and the probe placement device is arranged in the first cavity. in the second cavity.
  • the second housing is provided with an opening, and the opening communicates with the second cavity to form the gas flow channel.
  • control unit is located in the middle of the first cavity or the second cavity.
  • the measuring end of the rapid temperature measuring probe at least partially protrudes out of the supporting device, exposing the measuring end.
  • the probe placement device is located on a side of the support device opposite to the mounting portion.
  • An embodiment of the present application provides a monitoring system, which is characterized in that it includes a monitor and the rapid body temperature measurement device according to the first embodiment above, wherein the installation part of the rapid body temperature measurement device is installed on the monitoring device.
  • the main body of the monitor is provided with at least one thermal insulation layer.
  • An embodiment of the present application provides a rapid body temperature measurement device, including:
  • the support device has an installation part, the installation part is used for assembling the support device on the corresponding medical equipment, and the support device has a gas flow channel passing through;
  • the probe placement device is arranged on the support device;
  • a rapid temperature measurement probe the rapid temperature measurement probe is placed on the probe placement device in a removable manner, the rapid temperature measurement probe has a measuring end for measuring body temperature, and at least one of the rapid temperature measurement probes The measuring end is located in the gas flow channel for reducing the temperature of the measuring end;
  • control unit is signally connected with the fast temperature measuring probe.
  • one end of the gas flow channel is located at the bottom of the support device, and the other end is located at the top or side of the support device, and the rapid temperature measuring probe is placed with the measuring end facing downwards. in the gas flow channel.
  • the gas flow channel is arranged substantially vertically, the probe placement device is at least partially located in the gas flow channel, and there is a gap between the rapid temperature probe and the probe placement device, and the gap is In communication with the gas flow channel, the gas can flow through the gap.
  • At least one thermal insulation layer is further included, and the thermal insulation layer is located outside the mounting portion and is used to separate the mounting portion from the corresponding medical equipment.
  • At least one heat insulating layer is further included, and the heat insulating layer is arranged in the support device and located between the mounting portion and the quick temperature measuring probe.
  • the support device has a first housing and a second housing, the first housing has a first cavity, the second housing has a second cavity, the first cavity The cavity and the second cavity are used as the heat insulation cavity, the control unit is installed in the first cavity or the second cavity, the installation part is arranged on the first housing, and the probe placement device is arranged in the first cavity. in the second cavity.
  • the second housing is provided with an opening, and the opening communicates with the second cavity to form the gas flow channel.
  • An embodiment of the present application provides a monitoring system, including a monitor and the rapid body temperature measurement device according to any one of the above, wherein the installation part of the rapid body temperature measurement device is installed on the main body of the monitor.
  • the shortest distance between the rapid temperature measuring probe and the host of the monitor is ⁇ 0.8 cm.
  • the rapid body temperature measuring device is installed outside the medical equipment, and a fan specially used for the rapid body temperature measuring device does not need to be set inside the medical equipment.
  • the rapid body temperature measurement device has a support device, the support device has at least one heat insulation cavity for reducing heat transfer, the heat insulation cavity is a cavity structure, most of the heat is dissipated into the air of the heat insulation cavity, and the heat insulation cavity is a kind of cavity structure.
  • the cavity structure can reduce the area of the heat transfer part, and then block part of the heat from the mounting part of the medical equipment from the mounting part of the self-supporting device to transfer to the fast temperature measurement probe, so that the fast temperature measurement probe can be kept at a relatively low level (now for other solutions in the prior art). in terms of) the initial temperature.
  • the rapid body temperature measuring device is installed outside the medical equipment, and a fan specially used for the rapid body temperature measuring device does not need to be set inside the medical equipment.
  • the rapid body temperature measurement device has a support device, the support device has a through gas flow channel, and at least the measurement end of the rapid temperature measurement probe is located in the gas flow channel, so that the flowing gas takes away the temperature of the measurement end of the rapid temperature measurement probe, so that the temperature of the measurement end is The initial temperature can be the same as or close to the outside temperature.
  • FIG. 1 is a simplified schematic diagram of the structure of a rapid body temperature measurement device in an embodiment of the application
  • FIG. 2 is a schematic diagram of the appearance structure of a rapid body temperature measurement device in an embodiment of the application
  • FIG. 3 is an exploded view of a rapid body temperature measurement device in an embodiment of the application.
  • FIG. 4 is a schematic longitudinal cross-sectional view of a rapid body temperature measurement device in an embodiment of the present application.
  • FIG. 5 is a schematic diagram of a bottom view of a transverse section of a rapid body temperature measurement device according to an embodiment of the present application. .
  • connection and “connection” mentioned in this application, unless otherwise specified, include both direct and indirect connections (connections).
  • This embodiment provides a rapid body temperature measurement device, which can be used to quickly predict body temperature.
  • the rapid body temperature measuring device can be used alone or in conjunction with other medical equipment, such as is commonly used with monitors.
  • the rapid body temperature measurement device includes a support device 200 , a probe placement device 300 , a rapid temperature measurement probe 400 and a control unit 500 .
  • the support device 200 is the support structure of the entire rapid body temperature measurement device, which can be various structures, such as a shell-type support structure, a bracket-type support structure, and the like.
  • the support device 200 can be installed on various medical equipment 100 such as a monitor. Therefore, the support device 200 has a mounting portion 201, and the mounting portion 201 can adopt various types of (detachable or non-detachable) or movably connected structure, for example, the mounting portion 201 can be screwed, snapped, fitted with shaft holes, tightly fitted, welded, magnetically fixed, bonded, and the like with the medical device 100 .
  • the mounting portion 201 Through the mounting portion 201 , the support device 200 can be assembled on the corresponding medical device 100 , so that the entire rapid body temperature measurement device can be mounted on the medical device 100 .
  • the probe placement device 300 is used to place the rapid temperature measurement probe 400.
  • the probe placement device 300 has a placement structure, and the rapid temperature measurement probe 400 is placed on the placement structure of the probe placement device 300 in a removable manner, such as a rapid temperature measurement probe.
  • 400 is placed on the probe placement device 300 by means of shaft-hole matching, the placement structure of the probe placement device 300 may have placement holes, and the quick temperature measuring probe 400 is placed in the corresponding placement holes.
  • the placement structure can also be other structures such as hooks, clamping blocks, magnetic parts, and the like.
  • the quick temperature measuring probe 400 can be detachably fixed to prevent it from moving.
  • the fixing structure may not be provided, and the quick temperature measuring probe 400 may not be fixed.
  • the quick temperature measuring probe 400 is usually placed in the probe placement device 300, and when in use, the quick temperature measuring probe 400 can be taken away for measurement. After the measurement is completed, the quick temperature measuring probe 400 is put back into the probe placement device 300 .
  • the probe placement device 300 is arranged on the support device 200 .
  • the quick temperature measuring probe 400 usually has a measuring end 410 for measuring the body temperature, and the measuring end 410 is used for measuring the temperature of the object to be measured.
  • the control unit 500 is signal-connected with the quick temperature probe 400 .
  • the signal connection can be realized by wired or wireless means, for example, signal transmission can be realized by means of WIFI, Bluetooth, cable, etc.
  • the control unit 500 usually has components such as a processor and a memory, and is used to control the rapid temperature measurement probe 400 and receive data feedback from the rapid temperature measurement probe 400 .
  • the measurement end 410 is the main measurement part, and its initial temperature affects the final result.
  • the support device 200 has at least one thermal insulation cavity 202 for reducing heat transfer.
  • the heat insulating cavity 202 is used to reduce the heat transfer from the medical device 100 to the quick temperature measuring probe 400 from the mounting part 201 .
  • the insulating cavity 202 is a cavity structure, most of which is a cavity, and most of the heat is dissipated into the air of the insulating cavity 202 , and the cavity structure can reduce the physical structure, thereby reducing the area of the heat transfer part , so that less heat is transferred from the mounting portion 201 of the supporting device 200 to the rapid temperature measuring probe 400 , so that the rapid temperature measuring probe 400 can be maintained at a relatively low initial temperature (for other solutions in the prior art).
  • the heat insulating cavity 202 is located between the mounting portion 201 and the quick temperature measuring probe 400 , so as to more effectively block the heat transfer from the mounting portion 201 to the quick temperature measuring probe 400 .
  • the number of the heat insulating chambers 202 can be one or more than two, and the distribution positions thereof can also be set flexibly.
  • the probe placement device 300 in order to further reduce the influence of the medical equipment 100 on the initial temperature of the rapid temperature measuring probe 400, is located on the side of the support device 200 opposite to the mounting portion 201, That is, the probe placement device 300 and the mounting portion 201 are respectively disposed on two sides of the support device 200 , so that the rapid temperature measuring probe 400 is kept as far away from the medical equipment 100 as possible.
  • the probe placement device 300 and the rapid temperature measurement probe 400 may also be disposed on the side of the support device 200 adjacent to the mounting portion 201 .
  • the shortest distance between the rapid temperature probe 400 and the host of the medical device 100 is ⁇ 0.8 cm.
  • the supporting device 200 adopts a casing structure.
  • the supporting device 200 has a first casing 210 and a second casing 220 .
  • the first housing 210 has a first cavity
  • the second housing 220 has a second cavity.
  • the first cavity and the second cavity serve as the insulating cavity 202 .
  • the control unit 500 is installed in the first cavity or the second cavity.
  • the mounting portion 201 is disposed on the first housing 210, and the probe placement device 300 is disposed in the second cavity.
  • the first cavity and the second cavity can form a structure of a double thermal insulation cavity 202 , which further prevents the heat from being transmitted to the rapid temperature measuring probe 400 .
  • control unit 500 is located in the middle of the first cavity or the second cavity. As shown in FIGS. 1 and 4 , the control unit 500 is located in the middle of the first cavity, and the periphery of the control unit 500 can be a cavity except for the necessary connection structures, which further prevents the transmission of heat.
  • a thermal insulation layer is further included, and the thermal insulation layer is made of thermal insulation material, which can block the transfer of a part of the heat to the rapid temperature measuring probe 400 .
  • the heat insulating layer 230 is located outside the mounting portion 201 for separating the mounting portion 201 from the corresponding medical device 100 .
  • the thermal insulation layer 230 separates the medical device 100 from the mounting part 201, reduces the heat transfer from the medical device 100 to the mounting part 201, and further prevents the heat in the medical device 100 from affecting the rapid measurement The initial temperature of the temperature probe 400 .
  • the heat insulating layer 230 is disposed in the supporting device 200 and is located between the mounting portion 201 and the quick temperature measuring probe 400 .
  • the heat insulating layer 230 can be arranged in many positions, as long as it is located on the heat transfer route between the mounting part 201 and the quick temperature measuring probe 400. For example, in FIG.
  • the heat insulating layer 230 is located on the first housing 210 close to the second A side wall of the housing 220, in addition, the heat insulating layer 230 can also be provided on a side wall of the first housing 210 close to the installation portion 201, or the heat insulating layer 230 can be provided on the second housing 220 near the first housing
  • the side wall of the housing 210 may also be disposed between the probe placement device 300 and the second housing 220 or between the probe placement device 300 and the rapid temperature measurement probe 400 .
  • the thermal insulation layer 230 may also be disposed in the medical device 100, for example, on the side wall of the main body of the medical device 100 close to the support device 200, either on the outside of the side wall or on the side wall of the medical device 100. the inside of the side wall.
  • the support device 200 has a through In the gas flow channel 240 , at least the measurement end 410 of the quick temperature measuring probe 400 is located in the gas flow channel 240 for reducing the temperature of the measurement end 410 .
  • the gas flow in the gas flow channel 240 can take away the heat of the measuring end 410 and other parts of the rapid temperature measuring probe 400, so that the measuring end 410 and the rapid temperature measuring probe 400 can be as consistent or close to the ambient temperature as possible.
  • one end of the gas flow channel 240 is located at the bottom of the support device 200 , and the other end is located at the top or side of the support device 200 .
  • the rapid temperature measuring probe 400 is placed in the gas flow channel 240 with the measuring end 410 facing downward.
  • the gas flow channel 240 is arranged substantially vertically, and the probe placement device 300 is located at least partially within the gas flow channel 240 . There is a gap between the rapid temperature measuring probe 400 and the probe placement device 300, and the gap communicates with the gas flow channel 240, so that the gas can flow through the gap.
  • the second casing 220 is provided with an opening, and the opening communicates with the second cavity to form a gas flow channel 240 .
  • the top and bottom of the second housing 220 are provided with openings 221 and 222 , and the placement structure of the probe placement device 300 communicates with the second cavity to facilitate gas flow.
  • the measuring end 410 of the rapid temperature measuring probe 400 may be designed to at least partially protrude out of the support device 200 to expose the measuring end 410 .
  • the measuring end 410 is directly exposed to the atmosphere, and its initial temperature can be kept as consistent with the outside as possible.
  • the structure of the gas flow channel 240 may be used alone, or may be used in combination with at least one of the structure of the heat insulation chamber 202 and the structure of the heat insulation layer 230 .
  • the structure of the heat insulation layer 230 can also be used alone, or used in combination with at least one of the structure of the heat insulation cavity 202 and the structure of the gas flow channel 240 .
  • this embodiment also provides a monitoring system, the monitoring system includes a monitor and a rapid body temperature measurement device, and the monitor can use various types of equipment capable of monitoring.
  • the rapid body temperature measurement device is selected from the rapid body temperature measurement device shown in any of the above embodiments, wherein the installation part 201 of the rapid body temperature measurement device is installed on the main body of the monitor.

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Abstract

一种快速体温测量装置及监护系统,该快速体温测量装置安装在医用设备(100)外部,医用设备(100)内部不需要设置专门用于该快速体温测量装置的风扇。该快速体温测量装置具有支撑装置(200),该支撑装置(200)具有至少一个用于减少热量传递的隔热腔(202),该隔热腔(202)为一种腔体结构,大部分热量散发到隔热腔(202)的空气中,而且该腔体结构能够减少热传递部分的面积,进而阻隔部分来自医用设备(100)的热量自支撑装置(200)的安装部(201)向快速测温探头(400)传递,使快速测温探头(400)能够保持在比较低的初始温度。

Description

快速体温测量装置及监护系统 技术领域
本申请涉及医疗器械领域,具体涉及一种能够快速测量体温的装置。
背景技术
快速体温测量装置为一种用于快速预测体温的装置,其可安装在其他医用设备(如监护仪)上一起使用。该快速体温测量装置通常通过快速测温探头的温度变化曲线,来快速计算和预测体温。在计算过程中,快速测温探头的初始温度起到重要参考作用,因此,通常要求快速测温探头的初始温度不超过34℃,否则测量精度预判时间会受到影响。
现有的一种快速体温测量装置设置在监护仪主机内部,由于监护仪主机运行时大量发热,造成主机内部温度升高,从而将会导致快速测温探头的初始温度受环境温度影响而升高。为了解决这个问题,现有技术在主机上增设风扇,利用风扇给快速测温探头降温,同时给主机散热。这种方式缺陷在于,风扇运行造成噪音升高,而且风扇不易清洁、消毒,维护比较麻烦。
现有的另一种快速体温测量装置安装在监护仪主机的壳体上,主机可以实现无风扇设计,解决了风扇噪音的问题,但主机内部环境温度升高后,依然会传递至快速测温探头,造成快速测温探头的初始温度升高。
技术问题
本申请主要提供一种快速体温测量装置及监护系统,用以使快速体温测量装置的快速测温探头能够保持更低的初始温度。
技术解决方案
本申请一种实施例中提供一种快速体温测量装置,包括:
支撑装置,所述支撑装置具有安装部,所述安装部用于将所述支撑装置装配在对应的医用设备上,所述支撑装置具有至少一个用于减少热量传递的隔热腔;
探头放置装置,所述探头放置装置设于所述支撑装置上;
快速测温探头,所述快速测温探头以可取放的方式放置在所述探头放置装置上,所述快速测温探头具有用于进行体温侧量的测量端,所述隔热腔用于减少来自所述医用设备的热量自所述安装部向所述快速测温探头传递;
以及控制单元,所述控制单元与快速测温探头信号连接。
一种实施例中,所述隔热腔位于所述安装部和快速测温探头之间。
一种实施例中,还包括至少一个隔热层,所述隔热层位于所述安装部的外侧,用于将所述安装部与对应的医用设备隔开。
一种实施例中,还包括至少一个隔热层,所述隔热层设置在支撑装置中,并位于所述安装部与快速测温探头之间。
一种实施例中,所述支撑装置具有贯通的气体流动通道,所述快速测温探头中至少测量端位于所述气体流动通道内,用于降低所述测量端的温度。
一种实施例中,所述气体流动通道的一端位于所述支撑装置的底部,另一端位于所述支撑装置的顶部或侧部,所述快速测温探头以所述测量端朝向下的姿态放置在所述气体流动通道中。
一种实施例中,所述气体流动通道大致沿竖向设置,所述探头放置装置至少部分位于所述气体流动通道内,所述快速测温探头与探头放置装置之间具有间隙,所述间隙与所述气体流动通道相通,使气体能够从所述间隙流过。
一种实施例中,所述支撑装置具有第一壳体和第二壳体,所述第一壳体具有第一空腔,所述第二壳体具有第二空腔,所述第一空腔和第二空腔作为所述隔热腔,所述控制单元安装在第一空腔或第二空腔中,所述安装部设置于第一壳体上,所述探头放置装置设于第二空腔中。
一种实施例中,所述第二壳体设有开口,所述开口与第二空腔连通形成所述气体流动通道。
一种实施例中,所述控制单元位于所述第一空腔或第二空腔的中部。
一种实施例中,所述快速测温探头的测量端至少部分伸出到所述支撑装置之外,露出所述测量端。
一种实施例中,所述探头放置装置位于所述支撑装置上与所述安装部相对的一侧。
本申请一种实施例中提供一种监护系统,其特征在于,包括监护仪和如上述第一种实施例所述的快速体温测量装置,所述快速体温测量装置的安装部安装在所述监护仪的主机上,所述监护仪的主机内设有至少一个隔热层。
本申请一种实施例中提供一种快速体温测量装置,包括:
支撑装置,所述支撑装置具有安装部,所述安装部用于将所述支撑装置装配在对应的医用设备上,所述支撑装置具有贯通的气体流动通道;
探头放置装置,所述探头放置装置设于所述支撑装置上;
快速测温探头,所述快速测温探头以可取放的方式放置在所述探头放置装置上,所述快速测温探头具有用于进行体温侧量的测量端,所述快速测温探头中至少测量端位于所述气体流动通道内,用于降低所述测量端的温度;
以及控制单元,所述控制单元与快速测温探头信号连接。
一种实施例中,所述气体流动通道的一端位于所述支撑装置的底部,另一端位于所述支撑装置的顶部或侧部,所述快速测温探头以所述测量端朝向下的姿态放置在所述气体流动通道中。
一种实施例中,所述气体流动通道大致沿竖向设置,所述探头放置装置至少部分位于所述气体流动通道内,所述快速测温探头与探头放置装置之间具有间隙,所述间隙与所述气体流动通道相通,使气体能够从所述间隙流过。
一种实施例中,还包括至少一个隔热层,所述隔热层位于所述安装部的外侧,用于将所述安装部与对应的医用设备隔开。
一种实施例中,还包括至少一个隔热层,所述隔热层设置在支撑装置中,并位于所述安装部与快速测温探头之间。
一种实施例中,所述支撑装置具有第一壳体和第二壳体,所述第一壳体具有第一空腔,所述第二壳体具有第二空腔,所述第一空腔和第二空腔作为所述隔热腔,所述控制单元安装在第一空腔或第二空腔中,所述安装部设置于第一壳体上,所述探头放置装置设于第二空腔中。
一种实施例中,所述第二壳体设有开口,所述开口与第二空腔连通形成所述气体流动通道。
本申请一种实施例中提供一种监护系统,包括监护仪和如上述任一项所述的快速体温测量装置,所述快速体温测量装置的安装部安装在所述监护仪的主机上。
一种实施例中,所述快速测温探头与所述监护仪的主机之间的最短距离≥0.8cm。
有益效果
依据上述实施例的快速体温测量装置,该快速体温测量装置安装在医用设备外部,医用设备内部不需要设置专门用于该快速体温测量装置的风扇。该快速体温测量装置具有支撑装置,该支撑装置具有至少一个用于减少热量传递的隔热腔,该隔热腔为一种腔体结构,大部分热量散发到隔热腔的空气中,而且该腔体结构能够减少热传递部分的面积,进而阻隔部分来自医用设备的热量自支撑装置的安装部向快速测温探头传递,使快速测温探头能够保持在比较低(现对于现有技术其他方案而言)的初始温度。
依据上述实施例的快速体温测量装置,该快速体温测量装置安装在医用设备外部,医用设备内部不需要设置专门用于该快速体温测量装置的风扇。该快速体温测量装置具有支撑装置,该支撑装置具有贯通的气体流动通道,快速测温探头中至少测量端位于气体流动通道内,使流动的气体带走快速测温探头测量端的温度,使测量端的初始温度能够与外界温度一致或接近。
附图说明
1为本申请一种实施例中快速体温测量装置的结构简化示意图;
图2为本申请一种实施例中快速体温测量装置的外观结构示意图;
图3为本申请一种实施例中快速体温测量装置的分解图;
图4为本申请一种实施例中快速体温测量装置纵向剖面示意图;
图5为本申请一种实施例中快速体温测量装置横向剖面底部视角的示意图。。
本发明的实施方式
下面通过具体实施方式结合附图对本发明作进一步详细说明。其中不同实施方式中类似元件采用了相关联的类似的元件标号。在以下的实施方式中,很多细节描述是为了使得本申请能被更好的理解。然而,本领域技术人员可以毫不费力的认识到,其中部分特征在不同情况下是可以省略的,或者可以由其他元件、材料、方法所替代。在某些情况下,本申请相关的一些操作并没有在说明书中显示或者描述,这是为了避免本申请的核心部分被过多的描述所淹没,而对于本领域技术人员而言,详细描述这些相关操作并不是必要的,他们根据说明书中的描述以及本领域的一般技术知识即可完整了解相关操作。
另外,说明书中所描述的特点、操作或者特征可以以任意适当的方式结合形成各种实施方式。同时,方法描述中的各步骤或者动作也可以按照本领域技术人员所能显而易见的方式进行顺序调换或调整。因此,说明书和附图中的各种顺序只是为了清楚描述某一个实施例,并不意味着是必须的顺序,除非另有说明其中某个顺序是必须遵循的。
本文中为部件所编序号本身,例如“第一”、“第二”等,仅用于区分所描述的对象,不具有任何顺序或技术含义。而本申请所说“连接”、“联接”,如无特别说明,均包括直接和间接连接(联接)。
本实施例提供了一种快速体温测量装置,该快速体温测量装置可用于快速预测体温。该快速体温测量装置可单独使用,也可以与其他医用设备一起使用,例如通常与监护仪一起使用。
请参考图1至4,一种实施例中,该快速体温测量装置包括支撑装置200、探头放置装置300、快速测温探头400以及控制单元500。
该支撑装置200为整个快速体温测量装置的支撑结构,其可以为各种结构,例如壳体型支撑结构,支架型支撑结构等等。该支撑装置200可安装在诸如监护仪等各种医用设备100上,因此,该支撑装置200具有安装部201,该安装部201可以采用各种能够实现与医用设备100固定连接(可拆式或不可拆式)或活动连接的结构,例如该安装部201可与医用设备100螺接、卡接、轴孔配合、紧配合、焊接、磁吸固定、粘接等等。通过该安装部201,可将支撑装置200装配在对应的医用设备100上,从而将整个快速体温测量装置安装在医用设备100。
该探头放置装置300用于放置快速测温探头400,通常,探头放置装置300具有放置结构,快速测温探头400以可取放的方式放置在探头放置装置300的放置结构上,例如快速测温探头400通过轴孔配合的方式放置在探头放置装置300上,探头放置装置300的放置结构可以具有放置孔,快速测温探头400置于对应放置孔内。此外,该放置结构也可以为挂钩、卡块、磁吸件等其他结构。当然,当快速测温探头400放置到探头放置装置300上时,可将快速测温探头400可拆卸的固定,以便防止其窜动。在其他实施例中,也可不设置固定结构,不对快速测温探头400进行固定。该快速测温探头400通常放置在探头放置装置300中,使用时,可将快速测温探头400取走,进行测量。测量完成后,再将快速测温探头400放回到探头放置装置300中。
该探头放置装置300设于支撑装置200上。其中,快速测温探头400通常具有用于进行体温侧量的测量端410,该测量端410用于对待测温对象进行温度测量。控制单元500与快速测温探头400信号连接。该信号连接可通过有线或无线的方式实现,例如通过WIFI、蓝牙、线缆等方式实现信号的传递。该控制单元500通常具有处理器、存储器等部件,用于控制快速测温探头400和接收快速测温探头400的数据反馈。
测量端410作为主要的测量部位,其初始温度的高低影响着最后的结果。为了避免医用设备100内部发热,例如监护仪的主机运行时所产生的热量,影响测量端410的初始温度,一种实施例中,支撑装置200具有至少一个用于减少热量传递的隔热腔202,该隔热腔202用于减少来自医用设备100的热量自安装部201向快速测温探头400传递。该隔热腔202为一种腔体结构,其大部分区域为空腔,大部分热量散发到隔热腔202的空气中,而且,腔体结构能够减少实体结构,进而减少热传递部分的面积,使更少的热量自支撑装置200的安装部201向快速测温探头400传递,使快速测温探头400能够保持在比较低(对于现有技术其他方案而言)的初始温度。
其中,一种实施例中,请参考图1和4,该隔热腔202位于安装部201和快速测温探头400之间,以便更有效的阻隔热量自安装部201向快速测温探头400传递。该隔热腔202可以为一个或两个以上,其分布位置也可灵活设置。
请参考图1至4,一种实施例中,为了进一步地降低医用设备100对快速测温探头400初始温度的影响,该探头放置装置300位于支撑装置200上与安装部201相对的一侧,即该探头放置装置300和安装部201分设在支撑装置200的两侧,这样使快速测温探头400尽可能地远离医用设备100。当然,某些实施例中,该探头放置装置300及快速测温探头400也可设置于支撑装置200与安装部201相邻的侧面。
一种实施例中,该快速测温探头400与医用设备100(如监护仪)的主机之间的最短距离≥0.8cm。
请参考图1至4,一种实施例中,支撑装置200采用壳体结构,具体地,该支撑装置200具有第一壳体210和第二壳体220。第一壳体210具有第一空腔,第二壳体220具有第二空腔。第一空腔和第二空腔作为隔热腔202。控制单元500安装在第一空腔或第二空腔中。安装部201设置于第一壳体210上,探头放置装置300设于第二空腔中。该第一空腔和第二空腔可形成双重隔热腔202结构,进一步地阻隔热量向快速测温探头400传递。
一种实施例中,该控制单元500位于第一空腔或第二空腔的中部。如图1和4所示,该控制单元500位于第一空腔的中部,其四周除了必要的连接结构外,都可为腔体,进一步阻隔热量的传递。
进一步地,为了提高隔热效果,一种实施例中,还包括隔热层,该隔热层采用隔热材料制成,能够阻断一部分热量向快速测温探头400传递。
请参考图1和4,一种实施例中,该隔热层230位于安装部201的外侧,用于将安装部201与对应的医用设备100隔开。当支撑装置200安装到医用设备100上时,该隔热层230将医用设备100与安装部201隔开,减少热量自医用设备100向安装部201传递,进一步避免医用设备100内热量影响快速测温探头400的初始温度。
另一种实施例中,该隔热层230设置在支撑装置200中,并位于安装部201与快速测温探头400之间。该隔热层230可设置在很多位置,只要位于安装部201和快速测温探头400的热量传递路线上即可,例如,图1中,该隔热层230位于第一壳体210靠近第二壳体220的一个侧壁,此外,该隔热层230也可设置在第一壳体210靠近安装部201的一个侧壁,或者该隔热层230可设置在第二壳体220靠近第一壳体210的侧壁上,或者还可以设置在探头放置装置300与第二壳体220之间或者探头放置装置300与快速测温探头400之间。
此外,在其他实施例中,该隔热层230还可设置在医用设备100内,例如医用设备100的主机靠近支撑装置200的侧壁上,既可以是该侧壁的外侧,也可以是该侧壁的内侧。
进一步地,为了进一步地避免快速测温探头400,尤其是测量端410的初始温度过高,一种实施例中,请参考图1和4,一种实施例中,该支撑装置200具有贯通的气体流动通道240,快速测温探头400中至少测量端410位于气体流动通道240内,用于降低测量端410的温度。气体流动通道240内气体流动可带走测量端410以及快速测温探头400其他部位的热量,从而使测量端410以及快速测温探头400尽可能的与外界环境温度一致或接近。
一种实施例中,气体流动通道240的一端位于支撑装置200的底部,另一端位于支撑装置200的顶部或侧部。快速测温探头400以测量端410朝向下的姿态放置在气体流动通道240中。
该气体流动通道240大致沿竖向设置,探头放置装置300至少部分位于气体流动通道240内。快速测温探头400与探头放置装置300之间具有间隙,间隙与气体流动通道240相通,使气体能够从间隙流过。
一种实施例中,该第二壳体220设有开口,开口与第二空腔连通形成气体流动通道240。具体到图2至4所示结构中,该第二壳体220顶部和底部均设有开口221、222,探头放置装置300的放置结构与第二腔体连通,便于气体流动。
此外,在另一种实施例中,该快速测温探头400的测量端410可以设计为至少部分伸出到支撑装置200之外,露出测量端410。该测量端410直接裸露在大气环境中,其初始温度可尽量保持与外界一致。
对于以上各实施例来说,也可进行变形。例如,一种快速体温测量装置中,该气体流动通道240结构可单独使用,也可与隔热腔202结构、隔热层230结构中至少一个组合使用。同理,该隔热层230结构也可单独使用,或与隔热腔202结构、气体流动通道240结构中至少一个组合使用。
另一方面,本实施例还提供了一种监护系统,该监护系统包括监护仪和快速体温测量装置,该监护仪可采用各类能够起到监护作用的设备。该快速体温测量装置选用上述任一实施例所示的快速体温测量装置,其中,该快速体温测量装置的安装部201安装在监护仪的主机上。
以上应用了具体个例对本申请进行阐述,只是用于帮助理解本申请,并不用以限制本申请。对于本领域的一般技术人员,依据本申请的思想,可以对上述具体实施方式进行变化。

Claims (22)

  1. 一种快速体温测量装置,其特征在于,包括:
    支撑装置,所述支撑装置具有安装部,所述安装部用于将所述支撑装置装配在对应的医用设备上,所述支撑装置具有至少一个用于减少热量传递的隔热腔;
    探头放置装置,所述探头放置装置设于所述支撑装置上;
    快速测温探头,所述快速测温探头以可取放的方式放置在所述探头放置装置上,所述快速测温探头具有用于进行体温侧量的测量端,所述隔热腔用于减少来自所述医用设备的热量自所述安装部向所述快速测温探头传递;
    以及控制单元,所述控制单元与快速测温探头信号连接。
  2. 如权利要求1所述的快速体温测量装置,其特征在于,所述隔热腔位于所述安装部和快速测温探头之间。
  3. 如权利要求1所述的快速体温测量装置,其特征在于,还包括至少一个隔热层,所述隔热层位于所述安装部的外侧,用于将所述安装部与对应的医用设备隔开。
  4. 如权利要求1所述的快速体温测量装置,其特征在于,还包括至少一个隔热层,所述隔热层设置在支撑装置中,并位于所述安装部与快速测温探头之间。
  5. 如权利要求1所述的快速体温测量装置,其特征在于,所述支撑装置具有贯通的气体流动通道,所述快速测温探头中至少测量端位于所述气体流动通道内,用于降低所述测量端的温度。
  6. 如权利要求5所述的快速体温测量装置,其特征在于,所述气体流动通道的一端位于所述支撑装置的底部,另一端位于所述支撑装置的顶部或侧部,所述快速测温探头以所述测量端朝向下的姿态放置在所述气体流动通道中。
  7. 如权利要求6所述的快速体温测量装置,其特征在于,所述气体流动通道大致沿竖向设置,所述探头放置装置至少部分位于所述气体流动通道内,所述快速测温探头与探头放置装置之间具有间隙,所述间隙与所述气体流动通道相通,使气体能够从所述间隙流过。
  8. 如权利要求5-7任一项所述的快速体温测量装置,其特征在于,所述支撑装置具有第一壳体和第二壳体,所述第一壳体具有第一空腔,所述第二壳体具有第二空腔,所述第一空腔和第二空腔作为所述隔热腔,所述控制单元安装在第一空腔或第二空腔中,所述安装部设置于第一壳体上,所述探头放置装置设于第二空腔中。
  9. 如权利要求8所述的快速体温测量装置,其特征在于,所述第二壳体设有开口,所述开口与第二空腔连通形成所述气体流动通道。
  10. 如权利要求8所述的快速体温测量装置,其特征在于,所述控制单元位于所述第一空腔或第二空腔的中部。
  11. 如权利要求1所述的快速体温测量装置,其特征在于,所述快速测温探头的测量端至少部分伸出到所述支撑装置之外,露出所述测量端。
  12. 如权利要求1所述的快速体温测量装置,其特征在于,所述探头放置装置位于所述支撑装置上与所述安装部相对的一侧。
  13. 一种快速体温测量装置,其特征在于,包括:
    支撑装置,所述支撑装置具有安装部,所述安装部用于将所述支撑装置装配在对应的医用设备上,所述支撑装置具有贯通的气体流动通道;
    探头放置装置,所述探头放置装置设于所述支撑装置上;
    快速测温探头,所述快速测温探头以可取放的方式放置在所述探头放置装置上,所述快速测温探头具有用于进行体温侧量的测量端,所述快速测温探头中至少测量端位于所述气体流动通道内,用于降低所述测量端的温度;
    以及控制单元,所述控制单元与快速测温探头信号连接。
  14. 如权利要求13所述的快速体温测量装置,其特征在于,所述气体流动通道的一端位于所述支撑装置的底部,另一端位于所述支撑装置的顶部或侧部,所述快速测温探头以所述测量端朝向下的姿态放置在所述气体流动通道中。
  15. 如权利要求13所述的快速体温测量装置,其特征在于,所述气体流动通道大致沿竖向设置,所述探头放置装置至少部分位于所述气体流动通道内,所述快速测温探头与探头放置装置之间具有间隙,所述间隙与所述气体流动通道相通,使气体能够从所述间隙流过。
  16. 如权利要求13所述的快速体温测量装置,其特征在于,还包括至少一个隔热层,所述隔热层位于所述安装部的外侧,用于将所述安装部与对应的医用设备隔开。
  17. 如权利要求13所述的快速体温测量装置,其特征在于,还包括至少一个隔热层,所述隔热层设置在支撑装置中,并位于所述安装部与快速测温探头之间。
  18. 如权利要求13-17任一项所述的快速体温测量装置,其特征在于,所述支撑装置具有第一壳体和第二壳体,所述第一壳体具有第一空腔,所述第二壳体具有第二空腔,所述第一空腔和第二空腔作为所述隔热腔,所述控制单元安装在第一空腔或第二空腔中,所述安装部设置于第一壳体上,所述探头放置装置设于第二空腔中。
  19. 如权利要求18所述的快速体温测量装置,其特征在于,所述第二壳体设有开口,所述开口与第二空腔连通形成所述气体流动通道。
  20. 一种监护系统,其特征在于,包括监护仪和如权利要求1-19任一项所述的快速体温测量装置,所述快速体温测量装置的安装部安装在所述监护仪的主机上。
  21. 如权利要求20所述的监护系统,其特征在于,所述快速测温探头与所述监护仪的主机之间的最短距离≥0.8cm。
  22. 一种监护系统,其特征在于,包括监护仪和如权利要求1所述的快速体温测量装置,所述快速体温测量装置的安装部安装在所述监护仪的主机上,所述监护仪的主机内设有至少一个隔热层。
PCT/CN2020/102144 2020-07-15 2020-07-15 快速体温测量装置及监护系统 Ceased WO2022011601A1 (zh)

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