WO2012097505A1 - 测量设备 - Google Patents

测量设备 Download PDF

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Publication number
WO2012097505A1
WO2012097505A1 PCT/CN2011/070366 CN2011070366W WO2012097505A1 WO 2012097505 A1 WO2012097505 A1 WO 2012097505A1 CN 2011070366 W CN2011070366 W CN 2011070366W WO 2012097505 A1 WO2012097505 A1 WO 2012097505A1
Authority
WO
WIPO (PCT)
Prior art keywords
signal
module
data
communication interface
measuring device
Prior art date
Application number
PCT/CN2011/070366
Other languages
English (en)
French (fr)
Inventor
刘树海
徐峰
王维虎
邬鹏
张燕清
Original Assignee
北京超思电子技术有限责任公司
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.)
Filing date
Publication date
Application filed by 北京超思电子技术有限责任公司 filed Critical 北京超思电子技术有限责任公司
Priority to PCT/CN2011/070366 priority Critical patent/WO2012097505A1/zh
Priority to US13/514,471 priority patent/US20120316413A1/en
Priority to CN201180009397.5A priority patent/CN102753088B/zh
Publication of WO2012097505A1 publication Critical patent/WO2012097505A1/zh

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Classifications

    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61BDIAGNOSIS; SURGERY; IDENTIFICATION
    • A61B5/00Measuring for diagnostic purposes; Identification of persons
    • A61B5/24Detecting, measuring or recording bioelectric or biomagnetic signals of the body or parts thereof
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61BDIAGNOSIS; SURGERY; IDENTIFICATION
    • A61B5/00Measuring for diagnostic purposes; Identification of persons
    • A61B5/0002Remote monitoring of patients using telemetry, e.g. transmission of vital signals via a communication network
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61BDIAGNOSIS; SURGERY; IDENTIFICATION
    • A61B5/00Measuring for diagnostic purposes; Identification of persons
    • A61B5/02Detecting, measuring or recording pulse, heart rate, blood pressure or blood flow; Combined pulse/heart-rate/blood pressure determination; Evaluating a cardiovascular condition not otherwise provided for, e.g. using combinations of techniques provided for in this group with electrocardiography or electroauscultation; Heart catheters for measuring blood pressure
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61BDIAGNOSIS; SURGERY; IDENTIFICATION
    • A61B5/00Measuring for diagnostic purposes; Identification of persons
    • A61B5/68Arrangements of detecting, measuring or recording means, e.g. sensors, in relation to patient
    • A61B5/6887Arrangements of detecting, measuring or recording means, e.g. sensors, in relation to patient mounted on external non-worn devices, e.g. non-medical devices
    • A61B5/6898Portable consumer electronic devices, e.g. music players, telephones, tablet computers

Definitions

  • the present invention relates to the field of medical detection technologies, and in particular, to a measurement device. Background technique
  • the medical staff measures various physiological parameters of the patient through various measuring devices, thereby obtaining various relevant data information of the patient.
  • the measuring device can be an electrocardiograph, an oximeter or a temperature detector.
  • the medical staff measures the patient's electrocardiogram through an electrocardiograph and quickly obtains information about the patient's heart by observing the shape of the electrocardiogram.
  • FIG. 1 is a schematic structural view of a handheld electrocardiograph in the prior art. As shown in FIG. 1, the front side of the handheld electrocardiograph has a display 1 for displaying an electrocardiogram, and a display is provided next to the display 1.
  • the button group 2; the left and right sides of the plane of the display screen 1 are respectively provided with the contact electrode 3 and the contact electrode 4, and the side below the plane of the display screen 1 is provided with an electrode interface 5 for connecting the external electrodes.
  • the hand-held ECG measuring instrument has a plurality of measuring methods, including: 1.
  • Hand measurement the two hands contact the contact electrode 3 and the contact electrode 4 on both sides of the electrocardiograph to measure the ECG signal of the hand;
  • Hand and ankle measurement the right hand and left foot ankle (or left and right ankle) respectively contact the contact electrode 3 and the contact electrode 4 on both sides of the electrocardiograph to measure the ECG signal of the ankle and the hand;
  • the right hand touches the contact electrode 3 on the right side of the ECG meter, and the contact electrode 4 on the left side of the ECG is placed under the left chest to measure the ECG signal of the hand and chest;
  • 4 External electrode measurement first connect three patch external connections at the electrode interface 5 The electrodes are then placed on the left/right clavicle and the left lower abdomen to measure the ECG signals.
  • the professional hand-held measuring device can satisfy the measurement requirements of the patient's various physiological parameters to a certain extent.
  • the hand-held measuring device is a professional measuring instrument, which is expensive and not suitable for every user; and the hand-held measuring device is bulky and the user generally does not carry it with him.
  • the present invention provides a measuring device for solving the problem that it is difficult for a user to perform physiological parameter measurement anytime and anywhere in the prior art.
  • the present invention provides a measuring apparatus, including: a main body, a signal processing module disposed inside the main body, a first data communication interface connected to the signal processing module, and a signal processing module Signal collection module;
  • the first data communication interface is configured to be connected to the terminal device
  • the signal collection module is configured to measure a physiological parameter signal, and output the physiological parameter signal to the signal processing module;
  • the signal processing module is configured to process the physiological parameter signal, generate physiological parameter data, and output the physiological parameter data to the terminal device through the first data communication interface, for the terminal device The physiological parameter data is displayed.
  • the body includes a bottom plate and a side edge disposed at an edge of the bottom plate.
  • the side edge is an internal hollow structure, and the signal processing module is located inside the side edge.
  • a convex portion is disposed on an outer side of the bottom plate, and the signal processing module is located in the convex portion.
  • the side edge and the bottom plate form a cavity, and the main body is set in the cavity through the cavity The outside of the terminal device.
  • the side edges surround the edge of the bottom plate.
  • the measuring device further includes an annular first cover member, and the first cover member is buckled on the side.
  • a sliding groove is disposed on two opposite edges of the bottom plate, and a side edge on two opposite edges of the bottom plate is provided with a flange matching the sliding groove, and the side passes The flange slides along the chute.
  • the side edge is disposed on an edge of the bottom plate and a portion of the edge of the adjacent side connected to the edge.
  • the side edges are disposed on opposite edges of the bottom plate.
  • one side of the bottom plate is provided with an opening.
  • the main body further includes a second cover member, and the second cover member is buckled on the opening.
  • the signal collection module includes at least two contact electrodes, and the contact electrodes are disposed on the second cover member;
  • a first conductive member is disposed on an edge of the second cover member that is in contact with the opening, and the second conductive member is disposed on the opening, and the second conductive member is connected to the signal processing module by a wire.
  • the first conductive member and the second conductive member are in contact to achieve electrical connection between the contact electrode on the second cover member and the signal processing module.
  • the main body is a casing, and the signal processing module is located in the casing.
  • the measuring device further includes a power module disposed inside the main body and connected to the signal processing module;
  • the power module is configured to supply power to the signal processing module.
  • the first data communication interface is disposed inside the main body, and the first data communication interface is a wireless interface.
  • the signal collection module includes at least two contact electrodes, the physiological parameter letter
  • the signal processing module includes an electrocardiographic processing sub-module; the physiological parameter data includes electrocardiographic data;
  • the contact electrode is specifically configured to measure an ECG signal, and output the ECG signal to the ECG processing sub-module;
  • the ECG processing sub-module is specifically configured to process the ECG signal, generate ECG data, and output the ECG data to the terminal device through the first data communication interface, where The terminal device displays the ECG data.
  • three outer sides of the bottom plate are provided with three contact electrodes, and the contact electrodes are distributed in an isosceles triangle shape.
  • the contact electrode is disposed outside the side.
  • the contact electrode is connected to the signal processing module by a wire, the side is an internal hollow structure, and the wire is located in the side.
  • the signal collection module includes an external detection device
  • the measurement device further includes: a second data communication interface disposed on the main body and connected to the signal processing module, where the second data communication interface is used Connecting the external detecting device;
  • the external detecting device is specifically configured to measure a physiological parameter signal, and output the physiological parameter signal to the signal processing module through the second data communication interface.
  • the external detecting device is an oximetry module
  • the physiological parameter signal includes a blood oxygen signal
  • the physiological parameter data includes blood oxygen data
  • the signal processing module includes a blood oxygen processing sub-module
  • the blood oxygen measurement module is specifically configured to measure a hemorrhagic oxygen signal, and output the blood oxygen signal to the blood oxygen processing sub-module;
  • the blood oxygenation sub-module is specifically configured to process the blood oxygen signal, generate blood oxygen data, and output the blood oxygen data to the terminal device through the first data communication interface, for the The terminal device displays the blood oxygen data.
  • the external detecting device is a fetal heart rate measuring module
  • the physiological parameter signal includes a fetal heart signal
  • the physiological parameter data includes fetal heart rate data
  • the signal processing module includes a fetal heart processing sub-module
  • the fetal heart rate measurement module is specifically configured to measure a fetal heart rate signal, and output the fetal heart rate signal to the fetal heart processing sub-module;
  • the fetal heart processing sub-module is specifically configured to process the fetal heart signal, generate fetal heart data, and output the fetal heart data to the terminal device through the first data communication interface, for The terminal device displays the fetal heart data.
  • the external detecting device is a temperature measuring module
  • the physiological parameter signal includes a temperature signal
  • the physiological parameter data includes temperature data
  • the signal processing module includes a temperature processing sub-module
  • the temperature measuring module is specifically configured to measure a temperature signal, and output the temperature signal to the temperature processing sub-module;
  • the temperature processing sub-module is specifically configured to process the temperature signal, generate temperature data, and output the temperature data to the terminal device through the first data communication interface, for the terminal device to The temperature data is displayed.
  • the external detecting device is a sensing electrode
  • the physiological parameter signal includes an electrocardiogram signal
  • the physiological parameter data includes electrocardiographic data
  • the signal processing module includes an electrocardiographic processing sub-module
  • the sensing electrode is specifically configured to measure an ECG signal, and output the ECG signal to the ECG processing sub-module;
  • the ECG processing sub-module is specifically configured to process the ECG signal, generate ECG data, and output the ECG data to the terminal device through the first data communication interface, where The terminal device displays the ECG data.
  • the second data communication interface is disposed inside the main body, and the second data communication interface is a wireless interface.
  • a measuring device provided by the present invention, the measuring device comprising a main body, a signal processing module disposed inside the main body, a first data communication interface connected to the signal processing module, and a signal collecting module connected to the signal processing module,
  • the signal collection module outputs the measured physiological parameter signal to the signal processing module
  • the signal processing module processes the physiological parameter signal to generate physiological parameter data, and outputs the physiological parameter data to the terminal device through the first data communication interface for the terminal
  • the device displays the physiological parameter data.
  • the user can directly use the measuring device of the invention to perform physiological parameter measurement without using a professional measuring instrument, and the physiological measuring parameter can be realized anytime and anywhere by using the measuring device of the invention and combining various terminal devices carried at any time. .
  • FIG. 1 is a schematic structural view of a handheld electrocardiograph in the prior art
  • FIG. 1 is a schematic front view of a measuring device according to a first embodiment of the present invention
  • FIG. 3 is a schematic view showing a reverse structure of the measuring device of FIG.
  • Figure 4 is a schematic diagram of the application of the measuring device of Figure 2;
  • FIG. 6 is a schematic front structural view of a measuring device according to Embodiment 2 of the present invention
  • FIG. 7 is a schematic structural view of a reverse surface of the measuring device of FIG.
  • Figure 8 is a schematic diagram of the application of the measuring device of Figure 6;
  • FIG. 9 is a schematic front view of a measuring device according to Embodiment 3 of the present invention.
  • FIG. 10 is a schematic structural view of a reverse side of the measuring device of FIG.
  • Figure 11 is a schematic diagram of the application of the measuring device of Figure 9;
  • FIG. 12 is a schematic front structural view of a measuring device according to Embodiment 4 of the present invention.
  • Figure 13 is a schematic diagram of the reverse structure of the measuring device of Figure 12;
  • Figure 14 is a schematic view showing the application of the measuring device of Figure 12;
  • FIG. 15 is a schematic front structural view of a measuring device according to Embodiment 5 of the present invention.
  • Figure 16 is a schematic view showing the reverse structure of the measuring device of Figure 15;
  • FIG. 17 is a schematic diagram of application of the measuring device of FIG. 15;
  • FIG. 18 is a schematic front structural view of a measuring device according to Embodiment 6 of the present invention;
  • FIG. 19 is a schematic structural view of a reverse side of the measuring device of FIG.
  • FIG. 20 is a schematic diagram of application of the measuring device of FIG. 18;
  • FIG. 21 is a schematic structural diagram of a measuring device according to Embodiment 7 of the present invention.
  • Figure 22 is a schematic diagram of the application of the measuring device of Figure 21. detailed description
  • FIG. 2 is a schematic diagram of a front structure of a measuring device according to Embodiment 1 of the present invention
  • FIG. 3 is a schematic diagram of a reverse structure of the measuring device of FIG. 2
  • FIG. 4 is a schematic diagram of application of the measuring device of FIG. 2, as shown in FIG. 1 and FIG.
  • the measuring device includes: a main body, a signal processing module 11 disposed inside the main body, a first data communication interface 12 connected to the signal processing module 11, and a signal collection module connected to the signal processing module 11.
  • the first data communication interface 12 is configured to be connected to the terminal device 6; the signal collection module is configured to measure the physiological parameter signal, and output the physiological parameter signal to the signal processing module 11; the signal processing module 11 is configured to process the physiological parameter signal
  • the physiological parameter data is generated, and the physiological parameter data is output to the terminal device through the first data communication interface 12, so that the terminal device 6 displays the physiological parameter data.
  • the terminal device 6 can be a smart terminal that is portable and has a display function, and the smart terminal has a function of loading software.
  • the terminal device 6 can be a mobile phone, a computer, an MP4 or an MP3.
  • a technical solution is described by taking a mobile phone as an example.
  • the terminal device 6 is loaded with software that can display physiological parameter data.
  • the software can display the physiological parameter data in the form of a graph on the display screen, so that the user passes the terminal.
  • the device 6 can obtain physiological parameter data.
  • the first data communication interface 12 may be an interface that matches the terminal communication interface 13 of the terminal device 6. In order to facilitate connection with the terminal communication interface 13, the first data communication interface 12 portion Located outside the main body.
  • the first data communication interface 12 can be a standard interface, such as a USB interface; or the first data communication interface 12 can be a dedicated interface of a certain terminal device.
  • the main body includes a bottom plate 14 and side edges 15 disposed at edges of the bottom plate 14.
  • the shape of the bottom plate 14 and the side edges 15 can be designed in accordance with the shape of the terminal device 6.
  • the bottom plate 14 is a flat surface.
  • the shape of the bottom plate 14 is a rectangle having a chamfered structure.
  • the side edge 15 is an internal hollow structure, and the signal processing module 11 can be disposed inside the side edge 15.
  • the side edges 15 form a cavity with the bottom plate 14, and the main body is fitted over the terminal device 6 through a cavity which accommodates the terminal device 6.
  • the display screen of the terminal device 6 faces away from the bottom plate 15.
  • the side 14 surrounds the edge of the bottom plate 15.
  • the side edges 14 are structures that continuously surround the edge of the bottom plate 15.
  • the signal collection module may include two contact electrodes, and the physiological parameter signal includes an electrocardiogram signal, and the physiological parameter data includes electrocardiogram data.
  • FIG. 5 is a schematic structural diagram of a signal processing module according to the present invention. As shown in FIG. 5, the signal processing module 11 includes an electrocardiographic processing sub-module 111. The contact electrode is specifically configured to measure the ECG signal, and output the ECG signal to the ECG processing sub-module 111. The ECG processing sub-module 111 is specifically configured to process the ECG signal to generate ECG data, and The electrocardiogram data is output to the terminal device 6 through the first data communication interface 12 for the terminal device 6 to display the electrocardiographic data.
  • the contact electrodes may be disposed on the outer side of the bottom plate 14 and/or on the outer side of the side edges 14.
  • the inner side refers to the side facing the cavity
  • the outer side refers to the side facing away from the cavity.
  • the number of contact electrodes may be at least two.
  • the outer side of the bottom plate 14 is provided with three contact electrodes, which are a contact electrode 16, a contact electrode 17, and a contact electrode 18, respectively, and the contact electrode 16, the contact electrode 17, and the contact electrode 18 are isosceles triangularly distributed;
  • the bottom plate 14 may also be an internal hollow structure, and the inner hollow structure of the bottom plate 14 and the inner hollow structure of the side edge 15 are in communication, and the contact electrode disposed outside the bottom plate 14 may be connected to the signal processing module 11 through a wire, and the wire is located at the bottom plate.
  • the wires in the present invention each have an insulating sheath.
  • the outer side of the side 15 may be provided with a contact electrode.
  • the outer side of the side 15 is provided with four contact electrodes, which are a contact electrode 19, a contact electrode 20, a contact electrode 21 and a contact electrode 22, respectively;
  • Contact electrode of side 15 The signal processing module 11 can be connected by wires which are located in the side edges 15, in particular the wires are not shown in the figures. Further, the contact electrodes disposed outside the side edges 15 may also be located outside the side edges 15 on the other edges of the bottom plate 14, which are not illustrated. Among them, the contact electrodes are insulated from each other.
  • the signal processing module 11 can be directly powered by the terminal device 6 connected to the measuring device. Specifically, after the first data communication interface 12 and the terminal communication interface 13 are connected, the terminal device 6 can pass through the terminal communication interface 13 And the first data communication interface 12 supplies power to the signal processing module 11.
  • the measuring device further includes a power module disposed inside the main body and connected to the signal processing module 11 for supplying power to the signal processing module 11.
  • the power module may be disposed in the signal processing module 11 in the side of the side 15 It is connected to the signal processing module 11 by wires, and the power module is not shown in the figure.
  • the power module can be a button battery.
  • the signal collection module may include an external detection device
  • the measurement device further includes: a second data communication interface 23 disposed on the main body and connected to the signal processing module 11, and a second data communication interface 23 Used to connect external detection devices.
  • the external detecting device is specifically configured to measure the physiological parameter signal, and output the physiological parameter signal to the signal processing module 11 through the second data communication interface 23.
  • the external detecting device can be directly connected to the second data communication interface 23, and the communication interface of the external detecting device needs to be matched with the second data communication interface 23, and the external detecting device is not shown in the figure.
  • the second data communication interface 23 can be a standard interface, for example: a USB interface; or the second data communication interface 23 can be a dedicated interface of some external detection device.
  • the external detecting device may be an oximetry module
  • the physiological parameter signal includes a blood oxygen signal
  • the physiological parameter data includes blood oxygen data.
  • the signal processing module 11 includes a blood oxygen processing sub-module 112.
  • the blood oxygen measurement module is specifically configured to measure the hemorrhagic oxygen signal, and output the blood oxygen signal to the blood oxygen processing sub-module 112;
  • the blood oxygen processing sub-module 112 is specifically configured to process the blood oxygen signal to generate blood oxygen data, and
  • the blood oxygen data is output to the terminal device 6 through the first data communication interface 12 for the terminal device 6 to display the blood oxygen data.
  • oximetry module can be oximetry
  • the external detecting device may be a fetal heart rate measuring module
  • the physiological parameter signal includes a fetal heart rate signal
  • the physiological parameter data includes fetal heart data.
  • the signal processing module 11 includes a fetal heart processing sub-module 113.
  • the fetal heart rate measurement module is specifically configured to measure the fetal heart rate signal, and output the fetal heart rate signal to the fetal heart processing sub-module 113; the fetal heart processing sub-module 113 is specifically configured to process the fetal heart rate signal to generate fetal heart rate data, and The fetal heart data is output to the terminal device 6 through the first data communication interface 12 for the terminal device 6 to display the fetal heart data.
  • the fetal heart rate measurement module can be a fetal heart rate Doppler probe.
  • the external detecting device may be a temperature measuring module
  • the physiological parameter signal includes a temperature signal
  • the physiological parameter data includes temperature data.
  • the signal processing module 11 includes a temperature processing sub-module 114.
  • the temperature measurement module is specifically configured to measure the temperature signal, and output the temperature signal to the temperature processing sub-module 114.
  • the temperature processing sub-module 114 is specifically configured to process the temperature signal, generate temperature data, and pass the temperature data through the first
  • the data communication interface 12 is output to the terminal device 6 for the terminal device 6 to display the temperature data.
  • the temperature measurement module can be a temperature detector, which can be an infrared non-contact temperature measuring device or a metal heat-conducting temperature measuring device.
  • the external detecting device is a sensing electrode.
  • the sensing electrode is specifically configured to measure an ECG signal, and output the ECG signal to the ECG processing sub-module; the ECG processing sub-module 111 is specifically configured to process an ECG signal to generate ECG data. And outputting the electrocardiogram data to the terminal device 6 through the first data communication interface 12, so that the terminal device 6 displays the ECG data.
  • the sensing electrode includes a lead wire, and a section of the lead wire is provided with an electrode piece, and the other end of the lead wire is connected to the second data communication interface 23.
  • the signal processing module 11 can also be disposed at other locations inside the main body.
  • the bottom plate 14 may also be an internal hollow structure, and the signal processing module 11 may be disposed inside the bottom plate 14; or, the signal processing module 11 may be located in the side 15 on the other edge of the bottom plate 14 as shown in the figure, specifically The case is not shown in the figure; or, the signal processing module 11 may be provided with a convex portion on the outer side of the bottom plate 14, and the signal processing module 11 is located in the convex portion, specifically, in this case Not shown in the figure.
  • the height of the raised portion is measured without affecting the contact with the contact electrode.
  • the height of the raised portion is smaller than the height of the contact electrode on the bottom plate.
  • the terminal device 6 is placed in the cavity of the measuring device such that the measuring device is packaged outside the terminal device 6, and the terminal communication interface 13 is connected to the first communication interface 12.
  • the terminal communication interface 13 can be directly plugged into the first communication interface 12. The user can then measure the ECG through the measuring device.
  • FIG. 6 is a schematic diagram of a front structure of a measuring device according to Embodiment 2 of the present invention
  • FIG. 7 is a schematic diagram of a reverse structure of the measuring device of FIG. 6
  • FIG. 8 is a schematic diagram of application of the measuring device of FIG. 6, FIG. 6 and FIG.
  • the measuring device in the embodiment may further include an annular first cover member 24 , and the first cover member 24 is fastened on the side 15 .
  • the terminal device 6 is more securely nested within the cavity of the measuring device.
  • the terminal communication interface 13 is not shown in the figure, and can be referred to the description in FIG.
  • the terminal device 6 is placed in the cavity of the measuring device such that the measuring device is packaged outside the terminal device 6, and the terminal communication interface 13 is connected to the first communication interface 12.
  • the terminal communication interface 13 can be directly plugged into the first communication interface 12.
  • the first cover member 24 is fastened to the side edge 15. The user can then measure the ECG through the measuring device.
  • FIG. 9 is a schematic diagram of a front structure of a measuring device according to Embodiment 3 of the present invention
  • FIG. 10 is a schematic diagram of a reverse structure of the measuring device of FIG. 9
  • FIG. 11 is a schematic diagram of application of the measuring device of FIG. 9, FIG. 9 and FIG.
  • the difference between this embodiment and the first embodiment is that: in the embodiment, the opposite edges of the bottom plate 14 are provided with sliding grooves 25, and the side edges on the opposite edges of the bottom plate 14 are provided.
  • the partial side 15 is pulled outward to open the side 15 and the terminal device 6 is placed.
  • the measuring device is placed outside the terminal device 6 and the terminal communication interface 13 is connected to the first communication interface 12, for example: the terminal communication interface 13 can be directly plugged into the first communication interface. 12 on.
  • a portion of the side edges 15 are pushed inwardly to close the side edges 15. The user can then measure the ECG through the measuring device.
  • FIG. 12 is a schematic diagram of a front structure of a measuring device according to Embodiment 4 of the present invention
  • FIG. 13 is a schematic diagram of a reverse structure of the measuring device of FIG. 12
  • FIG. 14 is a schematic diagram of application of the measuring device of FIG. 12, as shown in FIG. 12 and FIG. 13 and FIG. 14, the difference between this embodiment and the first embodiment is that: one edge of the bottom plate 14 and a side edge of the adjacent side connected to the edge are provided with side edges 15;
  • the outer contact electrodes are two, which are the contact electrode 21 and the contact electrode 22, respectively.
  • the terminal communication interface 13 is not shown in the figure, and the description in FIG. 4 can be referred to.
  • the terminal device 6 is placed in the cavity of the measuring device such that the measuring device is packaged outside the terminal device 6, and the terminal communication interface 13 is connected to the first communication interface 12.
  • the terminal communication interface 13 can be directly plugged into the first communication interface 12. The user can then measure the ECG through the measuring device.
  • FIG. 15 is a schematic diagram of a front structure of a measuring device according to Embodiment 5 of the present invention
  • FIG. 16 is a schematic diagram of a reverse structure of the measuring device of FIG. 15
  • FIG. 17 is a schematic diagram of application of the measuring device of FIG. 15, as shown in FIG. 15 and FIG.
  • the difference between this embodiment and the first embodiment is that the opposite sides of the bottom plate 14 are provided with side edges 15.
  • the side edge 15 has an upwardly curved structure.
  • the terminal communication interface 13 is not shown in the figure, and can be referred to the description in FIG.
  • the terminal device 6 is placed in the cavity of the measuring device such that the measuring device is packaged outside the terminal device 6, and the terminal communication interface 13 is connected to the first communication interface 12.
  • the terminal communication interface 13 can be directly plugged into the first communication interface 12. The user can then measure the ECG through the measuring device.
  • FIG. 18 is a schematic front view of a measuring device according to Embodiment 6 of the present invention
  • FIG. 19 FIG. 20 is a schematic diagram of the structure of the measuring device in FIG. 18.
  • FIG. 20 is a schematic diagram of the application of the measuring device in FIG. 18.
  • the difference between this embodiment and the first embodiment is as follows: One side of the bottom plate 14 defines an opening 27; the main body further includes a second cover member 28, the second cover member 28 is fastened on the opening 27; the second cover member 28 is provided with a contact electrode, A first conductive member 29 is disposed on the edge of the second cover member 28 in contact with the opening 27, and the second conductive member 30 is disposed on the opening 27.
  • the second conductive member 30 is connected to the signal processing module 11 through a wire, and the first conductive member The second conductive member 30 is in contact with the second conductive member 30 to electrically connect the contact electrode on the second cover member 28 to the signal processing module 11.
  • the material of the first conductive member 29 and the second conductive member 30 may be metal.
  • the wires are not shown in the figure.
  • the contact electrode on the second cap member 28 includes a contact electrode 21 and a contact electrode 22.
  • the terminal communication interface 13 is not shown in the figure, see the description in FIG.
  • the second data communication interface 23 is not shown in the figure. See the description in the first embodiment.
  • the terminal device 6 is placed from the opening 27 into the cavity of the measuring device such that the measuring device is packaged outside the terminal device 6, and the terminal communication interface 13 is connected to the first communication interface 12.
  • the terminal communication interface 13 can be directly plugged into the first communication interface 12.
  • the second cover member 28 is fastened to the opening 27 to bring the first conductive member 29 on the second cover member 28 into contact with the second conductive member 30 of the opening 27. The user can then measure the ECG through the measuring device.
  • the top surface of the contact electrode disposed on the bottom plate 14 and the bottom plate 14 have a certain distance, that is, the contact electrode is higher than the bottom plate 14 by a certain height. Since the bottom plate 14 is flat, and the external surface of the human body is an irregular curved surface, the contact electrode is raised above the plane of the bottom plate 14, so that each contact electrode can be stably contacted with the human body.
  • three electrode mounting portions for mounting the contact electrodes are disposed on the outer plane of the bottom plate 14, and the three electrode mounting portions are distributed in an isosceles triangle shape and are spaced apart from the outer plane of the bottom plate 14 by a distance; specifically, two The electrode mounting portions (mounting portions for mounting the contact electrodes 17 and the contact electrodes 18) are located at both ends of one side of the bottom plate 14; the other electrode mounting portion (mounting portion for mounting the contact electrodes 16) It is located at the middle of the other side of the bottom plate 1.
  • the reason why the electrode mounting portion is higher than the plane of the bottom plate 14 is because the bottom plate 14 is flat, and the external surface of the human body is an irregular curved surface, so that the contact electrode is higher than the plane of the bottom plate 14, Ensure that the contact electrodes are in stable contact with the human body.
  • the specific connection between the contact electrode 16, the contact electrode 17, and the contact electrode 18 and the respective electrode mounting portions can be, for example, screwed, riveted, snapped, etc., in this embodiment,
  • the thread is machined at one end of the contact electrode, the threaded end is inserted through the outside of the bottom plate 14, the corresponding wire is connected to the contact electrode, and then fixed with a suitable nut.
  • the height of each contact electrode can be adjusted by adjusting the tightening depth of the nut to adapt to the physical characteristics of different users.
  • the end faces of the contact electrodes in contact with the human body are all circular planes, but it is not limited thereto, as long as it can be adapted to gather the shape of the physiological parameter signal on the skin surface, for example, the contact
  • the end faces of the electrodes are arranged in a square shape or other polygonal shape, or the central region of the end faces thereof may be provided in a shape that protrudes outward or inwardly.
  • the terminal device is a small-sized device such as a mobile phone, MP4 or MP3, the terminal device can be placed in the cavity of the measuring device by using the solution in the above embodiments.
  • the terminal device is a relatively large device such as a computer, the terminal communication interface 13 and the first communication interface 12 can be connected through the data line without placing the terminal device in the cavity of the measuring device. Therefore, in the present invention, the volume of the measuring device can be designed according to a standard that is convenient to carry.
  • the terminal device can be connected to the measuring device through the data line. Thereby, the user can complete the measurement of the electrocardiogram through the measuring device.
  • the first data communication interface 12 can be a wireless interface, and the first data communication interface 12 can be disposed inside the main body.
  • the first data communication interface 12 can then be communicatively coupled to the wireless interface provided in the terminal device 6.
  • the wireless interface in the first data communication interface 12 and the wireless interface in the terminal device 6 may each be a Bluetooth interface or an infrared interface.
  • the terminal device 6 can be placed in the measuring device.
  • the second data communication interface 23 may be a wireless interface, and the second data communication interface 23 may be disposed inside the main body. Then the second data communication interface 23 can be The wireless interface communication connection set in the external detection device.
  • the wireless interface in the second data communication interface 23 and the wireless interface in the external detection device may both be a Bluetooth interface or an infrared interface. In this case, it is not necessary to plug the external probe device to the second data communication interface 23.
  • the bottom plate 14 and the side edges 15 can be made of a soft rubber material such as silica gel.
  • the soft rubber material should also have insulating properties to ensure mutual insulation between the contact electrodes.
  • the material of the bottom plate 14 and the side edges 15 may be a hard plastic or a woven fabric or the like.
  • the bottom plate 14 and the side edges 15 of the measuring device may be integrally formed, or the structures such as the bottom plate 14 and the side edges 15 may be separately processed, and then the portions may be spliced together.
  • the types of the external detecting devices are not limited to those described in the above embodiments, and may be increased as needed in practical applications.
  • contact electrodes is not limited to the number described in the above embodiments, and may be changed as needed in practical applications.
  • the measuring device provided by the present invention can perform various types of electrocardiographic measurements as described in the background without the hand-held electrocardiograph, such as: hand measurement or hand and ankle measurement. Further, the measurement apparatus provided by the present invention can also perform chest measurement, specifically, the contact electrode 16, the contact electrode 17, and the contact electrode 18 on the measuring device are placed on the skin surface of the human body near the heart position. For example, the three contact electrodes are arranged around the heart. Preferably, three contact electrodes having an isosceles triangle distribution on the measuring device can be placed on the left and right sides of the heart and below the heart, respectively. The line connecting the contact electrode 17 and the contact electrode 18 at the two bottom corners of the waist triangle straddles the position of the heart and the other contact electrode 16 is located directly below the heart.
  • the measuring device provided by the above embodiment of the present invention includes a main body, a signal processing module disposed inside the main body, a first data communication interface connected to the signal processing module, and a signal set connected to the signal processing module.
  • the module, the signal collection module outputs the measured physiological parameter signal to the signal processing module, the signal processing module processes the physiological parameter signal to generate physiological parameter data, and outputs the physiological parameter data to the terminal device through the first data communication interface, End of supply
  • End device displays the physiological parameter data.
  • the user can directly use the measuring device of the present invention to perform physiological parameter measurement without using a professional measuring instrument, and the above embodiment of the present invention is only required to use the measuring device of the present invention in combination with a professional electrocardiographic measuring instrument in operation.
  • the measuring device in the middle is inexpensive, and because the measuring device is small in size, it also has the advantage of being convenient to carry.
  • the measuring device of the above embodiment of the present invention is provided with a contact electrode on the outer side of the bottom plate, so that when the user uses the measuring device of the present invention to perform electrocardiographic measurement, the chest measurement method can be used, that is, only the respective contact electrodes on the bottom plate are needed.
  • the invention has the advantages of simple and easy to use and convenient operation.
  • the second data communication interface is disposed on the main body of the measuring device in the above embodiment of the present invention, and the second data communication interface can be connected to the external detecting device, thereby realizing measurement of various physiological parameters and enhancing the scalability of the measuring device. Sex.
  • FIG. 21 is a schematic structural diagram of a measuring apparatus according to Embodiment 7 of the present invention
  • FIG. 22 is a schematic diagram of application of the measuring apparatus of FIG. 21.
  • the measuring apparatus includes: a main body and is disposed inside the main body
  • the first data communication interface 12 is configured to be connected to the terminal device 6;
  • the signal collection module is configured to measure the physiological parameter signal, and output the physiological parameter signal to the signal processing module;
  • the signal processing module is configured to process the physiological parameter signal to generate
  • the physiological parameter data is output to the terminal device through the first data communication interface 12 for the terminal device 6 to display the physiological parameter data.
  • the main body is a casing 31, and the signal processing module is located in the casing 31.
  • the housing 31 can Think of the internal hollow structure.
  • the shape of the housing 31 is a cube.
  • the housing 31 can also be used in other shapes, and is not exemplified here.
  • the signal processing module is located inside the casing 31, it is not shown in the drawings, which can be referred to in the description of the first embodiment.
  • the signal processing module can be directly powered by the terminal device 6 connected to the measuring device. Specifically, when the first data communication interface 12 and the terminal communication interface 13 are connected, the terminal device 6 can pass through the terminal communication interface 13 and the first The data communication interface 12 supplies power to the signal processing module.
  • the measuring device further includes a power module disposed inside the casing 31 and connected to the signal processing module, wherein the power module is used to supply power to the signal processing module, for example: the power module can be electrically connected to the signal processing module through a wire, specifically a power source.
  • the module is not shown in the figure.
  • the power module can be a button battery.
  • the signal collection module may include an external detection device 32.
  • the measurement device further includes: a second data communication interface 23 disposed on the housing 31 and connected to the signal processing module, and the second data communication interface 23
  • the external detection device 32 is connected.
  • the external detecting device 32 is specifically configured to measure the physiological parameter signal, and output the physiological parameter signal to the signal processing module through the second data communication interface 23.
  • the external detecting device 32 can be directly plugged into the second data communication interface 23, and the communication interface of the external detecting device 32 needs to be matched with the second data communication interface 23.
  • the second data communication interface 23 can be a standard interface, for example: a USB interface; or the second data communication interface 23 can be a dedicated interface of some external detection device 32.
  • the external detecting device 32 and the housing 31 can be respectively placed, and the external detecting device 32 is inserted into the second data communication interface 23 of the housing 31 when used, as shown in FIG.
  • the external detecting device 32 may be an oximetry module, a fetal heart rate measuring module, a temperature measuring module or a sensing electrode.
  • the blood oxygen detecting module, the fetal heart rate measuring module, the temperature measuring module, the sensing electrode, and the corresponding signal processing module refer to the first embodiment, and details are not described herein.
  • the first data communication interface 12 can be a wireless interface, and the first data communication interface 12 can be disposed inside the housing 31. Then the first data communication interface 12 can It is communicatively coupled to the wireless interface provided in the terminal device 6.
  • the wireless interface in the first data communication interface 12 and the wireless interface in the terminal device 6 may each be a Bluetooth interface or an infrared interface. In this case, it is not necessary to plug the terminal device 6 to the first data communication interface 12.
  • the second data communication interface 23 can be a wireless interface, and the second data communication interface 23 can be disposed inside the casing 31.
  • the second data communication interface 23 can then be communicatively coupled to the wireless interface provided in the external probe device 32.
  • the wireless interface in the second data communication interface 23 and the wireless interface in the external detection device may both be a Bluetooth interface or an infrared interface. In this case, it is not necessary to plug the external detecting device 32 to the second data communication interface 23.
  • the casing 31 may be made of a soft rubber material such as silica gel.
  • the material of the casing 31 may be a hard plastic or a woven fabric or the like.
  • the types of the external detecting devices are not limited to those described in the above embodiments, and may be increased as needed in practical applications.
  • the measuring device provided by the above embodiment of the present invention includes a main body, a signal processing module disposed inside the main body, a first data communication interface connected to the signal processing module, and a signal set connected to the signal processing module.
  • the module, the signal collection module outputs the measured physiological parameter signal to the signal processing module, the signal processing module processes the physiological parameter signal to generate physiological parameter data, and outputs the physiological parameter data to the terminal device through the first data communication interface,
  • the terminal device displays the physiological parameter data.
  • the user can directly use the measuring device of the present invention to perform physiological parameter measurement without using a professional measuring instrument, and the above embodiment of the present invention is only required to use the measuring device of the present invention in combination with a professional electrocardiographic measuring instrument in operation.
  • the measuring device in the middle is inexpensive, and because the measuring device is small in size, it also has the advantage of being convenient to carry.
  • the second data communication interface is disposed on the main body of the measuring device in the above embodiment of the present invention, and the second data communication interface can be connected to the external detecting device, thereby realizing measurement of various physiological parameters and enhancing the scalability of the measuring device. Sex.

Abstract

本发明公开了一种测量设备,该测量设备包括:主体、设置于主体内部的信号处理模块、与信号处理模块连接的第一数据通信接口和与信号处理模块连接的信号采集模块;第一数据通信接口,用于与终端设备连接;信号采集模块,用于测量出生理参数信号,并将生理参数信号输出给所述信号处理模块;信号处理模块,用于对生理参数信号进行处理,生成生理参数数据,并将生理参数数据通过第一数据通信接口输出给终端设备,以供终端设备对生理参数数据进行显示。用户可直接采用本发明的测量设备进行生理参数测量,无需配备专业的测量仪器,只需采用本发明的测量设备并结合随时携带的各种终端设备即可实现随时随地的进行生理参数测量。

Description

测量设备 技术领域
本发明涉及医疗检测技术领域, 特别涉及一种测量设备。 背景技术
现代社会中, 威胁人类健康和生命安全的各种疾病越来越多。 目前, 对 于多数疾病的治疗主要是以预防和观察为主。 通常医务人员通过各种测量设 备测量出患者的各项生理参数, 从而获得患者的各种相关数据信息。 测量设 备可以为心电测量仪、 血氧测量仪或者温度探测仪等。 以心脏疾病为例, 医 务人员会通过心电测量仪测量出患者的心电图, 并通过观察心电图的形态快 速获知患者心脏的相关信息。
为了方便患者随时对身体状态进行检测和记录, 相关领域的技术人员研 发了多种专门用于测量各项生理参数的手持式测量设备。 下面以手持式心电 测量仪为例进行说明。 图 1为现有技术中手持式心电测量仪的结构示意图, 如图 1所示, 该手持式心电测量仪的正面具有用于显示心电图的显示屏 1 , 显示屏 1的旁边设有控制按键组 2 ; 显示屏 1所在平面的左右两个侧面分别 设置有接触电极 3和接触电极 4 , 显示屏 1所在平面下方的侧面设有用于连 接外接电极的电极接口 5。 该手持式心电测量仪具有多种测量方式, 具体包 括: 1.手部测量, 双手分别接触心电测量仪两侧的接触电极 3和接触电极 4 , 以测量手部的心电信号; 2.手部和脚踝测量, 右手与左脚脚踝(或左手与右 脚脚踝)分别接触心电测量仪两侧的接触电极 3和接触电极 4 , 以测量脚踝 和手部的心电信号; 3. 手部和胸部测量, 右手接触心电测量仪右侧的接触电 极 3 , 并使心电测量仪左侧的接触电极 4置于左侧胸口下方, 以测量手部和 胸部的心电信号; 4. 外接电极测量, 先在电极接口 5处连接三个贴片式外接 电极,然后将各外接电极分别贴放在左 /右锁骨下方及左下腹位置, 以测量此 三处的心电信号。
从上述现有的手持式心电测量仪可以看出, 专业的手持式测量设备在一 定程度上可满足患者对自身各项生理参数的测量需求。 但是, 其同时不可避 免地存在下述缺点: 手持式测量设备是专业的测量仪器, 价格昂贵, 并非每 个用户都能配备; 并且手持式测量设备体积较大, 用户一般不会随身携带。
发明内容
本发明提供一种测量设备, 用以解决现有技术中用户难以随时随地的进 行生理参数测量的问题。
为实现上述目的, 本发明提供一种测量设备, 包括: 主体、 设置于所述 主体内部的信号处理模块、 与所述信号处理模块连接的第一数据通信接口和 与所述信号处理模块连接的信号釆集模块;
所述第一数据通信接口, 用于与终端设备连接;
所述信号釆集模块, 用于测量出生理参数信号, 并将所述生理参数信号 输出给所述信号处理模块;
所述信号处理模块, 用于对所述生理参数信号进行处理, 生成生理参数 数据, 并将所述生理参数数据通过所述第一数据通信接口输出给所述终端设 备, 以供所述终端设备对所述生理参数数据进行显示。
进一步地, 所述主体包括底板和设置于所述底板的边缘的侧边。
进一步地, 所述侧边为内部中空结构, 所述信号处理模块位于所述侧边 内部。
进一步地, 所述底板的外侧设置有凸起部, 所述信号处理模块位于所述 凸起部内。
进一步地, 所述侧边与底板形成空腔, 所述主体通过所述空腔套装在所 述终端设备的外部。
进一步地, 所述侧边环绕在所述底板的边缘。
进一步地, 所述测量设备还包括环形的第一盖状部件, 所述第一盖状部 件扣设于所述侧边上。
进一步地, 所述底板上两个相对的边缘上设置有滑槽, 位于所述底板上 两个相对的边缘上的侧边设置有与所述滑槽相匹配的凸缘, 所述侧边通过所 述凸缘沿所述滑槽滑动。
进一步地, 所述底板上一个边缘以及与该边缘相连接的邻侧的部分边缘 上设置有所述侧边。
进一步地, 所述底板上相对的两个边缘上设置有所述侧边。
进一步地, 所述底板上的一个侧边开设有开口。
进一步地, 所述主体还包括第二盖状部件, 所述第二盖状部件扣设于所 述开口上。
进一步地, 所述信号釆集模块包括至少二个接触电极, 所述第二盖状部 件上设置有所述接触电极;
所述第二盖状部件上与所述开口接触的边缘上设置有第一导电部件, 所 述开口上设置有第二导电部件, 所述第二导电部件通过导线与所述信号处理 模块连接, 所述第一导电部件和所述第二导电部件相接触以实现所述第二盖 状部件上的接触电极与所述信号处理模块电连接。
进一步地, 所述主体为壳体, 所述信号处理模块位于所述壳体内。 进一步地, 所述测量设备还包括设置于所述主体的内部并与所述信号处 理模块连接的电源模块;
所述电源模块, 用于向所述信号处理模块供电。
进一步地, 所述第一数据通信接口设置于所述主体内部, 所述第一数据 通信接口为无线接口。
进一步地, 所述信号釆集模块包括至少二个接触电极, 所述生理参数信 号包括心电信号, 所述生理参数数据包括心电数据, 则所述信号处理模块包 括心电处理子模块;
所述接触电极具体用于测量出心电信号, 并将所述心电信号输出给所述 心电处理子模块;
所述心电处理子模块具体用于对所述心电信号进行处理, 生成心电数 据, 并将所述心电数据通过所述第一数据通信接口输出给所述终端设备, 以 供所述终端设备对所述心电数据进行显示。
进一步地, 所述底板的外侧设置有三个接触电极, 所述接触电极呈等腰 三角形分布。
进一步地, 所述侧边的外侧设置有所述接触电极。
进一步地, 所述接触电极与所述信号处理模块通过导线连接, 所述侧边 为内部中空结构, 所述导线位于所述侧边内。
进一步地,所述信号釆集模块包括外接探测设备,所述测量设备还包括: 设置于所述主体上并与所述信号处理模块连接的第二数据通信接口, 所述第 二数据通信接口用于连接所述外部探测设备;
则所述外接探测设备具体用于测量出生理参数信号, 并将所述生理参数 信号通过所述第二数据通信接口输出给所述信号处理模块。
进一步地, 所述外接探测设备为血氧测量模块, 所述生理参数信号包括 血氧信号, 所述生理参数数据包括血氧数据, 则所述信号处理模块包括血氧 处理子模块;
所述血氧测量模块具体用于测量出血氧信号, 并将所述血氧信号输出给 所述血氧处理子模块;
所述血氧处理子模块具体用于对所述血氧信号进行处理, 生成血氧数 据, 并将所述血氧数据通过所述第一数据通信接口输出给所述终端设备, 以 供所述终端设备对所述血氧数据进行显示。
进一步地, 所述外接探测设备为胎心测量模块, 所述生理参数信号包括 胎心信号, 所述生理参数数据包括胎心数据, 则所述信号处理模块包括胎心 处理子模块;
所述胎心测量模块具体用于测量出胎心信号, 并将所述胎心信号输出给 所述胎心处理子模块;
所述胎心处理子模块具体用于对所述胎心信号进行处理, 生成胎心数 据, 并将所述胎心数据通过所述第一数据通信接口输出给所述终端设备, 以 供所述终端设备对所述胎心数据进行显示。
进一步地, 所述外接探测设备为温度测量模块, 所述生理参数信号包括 温度信号, 所述生理参数数据包括温度数据, 则所述信号处理模块包括温度 处理子模块;
所述温度测量模块具体用于测量出温度信号, 并将所述温度信号输出给 所述温度处理子模块;
所述温度处理子模块具体用于对所述温度信号进行处理, 生成温度数 据, 并将所述温度数据通过所述第一数据通信接口输出给所述终端设备, 以 供所述终端设备对所述温度数据进行显示。
进一步地, 所述外接探测设备为感应电极, 所述生理参数信号包括心电 信号, 所述生理参数数据包括心电数据, 则所述信号处理模块包括心电处理 子模块;
所述感应电极具体用于测量出心电信号, 并将所述心电信号输出给所述 心电处理子模块;
所述心电处理子模块具体用于对所述心电信号进行处理, 生成心电数 据, 并将所述心电数据通过所述第一数据通信接口输出给所述终端设备, 以 供所述终端设备对所述心电数据进行显示。
进一步地, 所述第二数据通信接口设置于所述主体内部, 所述第二数据 通信接口为无线接口。
本发明具有下述有益效果: 本发明上提供的测量设备, 该测量设备包括主体、 设置于所述主体内部 的信号处理模块、 与信号处理模块连接的第一数据通信接口和与所述信号处 理模块连接的信号釆集模块, 信号釆集模块将测量出的生理参数信号输出给 信号处理模块, 信号处理模块对生理参数信号进行处理生成生理参数数据, 并将生理参数数据通过第一数据通信接口输出给终端设备, 以供终端设备对 生理参数数据进行显示。 用户可直接釆用本发明的测量设备进行生理参数测 量, 无需配备专业的测量仪器, 只需釆用本发明的测量设备并结合随时携带 的各种终端设备即可实现随时随地的进行生理参数测量。 附图说明
图 1为现有技术中手持式心电测量仪的结构示意图;
图 1为本发明实施例一提供的一种测量设备的正面结构示意图; 图 3为图 2中测量设备的反面结构示意图;
图 4为图 2中测量设备的应用示意图;
图 6为本发明实施例二提供的一种测量设备的正面结构示意图; 图 7为图 6中测量设备的反面结构示意图;
图 8为图 6中测量设备的应用示意图;
图 9为本发明实施例三提供的一种测量设备的正面结构示意图; 图 10为图 9中测量设备的反面结构示意图;
图 11为图 9中测量设备的应用示意图;
图 12为本发明实施例四提供的一种测量设备的正面结构示意图;
图 1 3为图 12中测量设备的反面结构示意图;
图 14为图 12中测量设备的应用示意图;
图 15为本发明实施例五提供的一种测量设备的正面结构示意图;
图 16为图 15中测量设备的反面结构示意图;
图 17为图 15中测量设备的应用示意图; 图 18为本发明实施例六提供的一种测量设备的正面结构示意图; 图 19为图 18中测量设备的反面结构示意图;
图 20为图 18中测量设备的应用示意图;
图 21为本发明实施例七提供的一种测量设备的结构示意图;
图 22为图 21中测量设备的应用示意图。 具体实施方式
为使本领域的技术人员更好地理解本发明的技术方案, 下面结合附图对 本发明提供的测量设备进行详细描述。
图 2为本发明实施例一提供的一种测量设备的正面结构示意图, 图 3为 图 2中测量设备的反面结构示意图, 图 4为图 2中测量设备的应用示意图, 如图 1、 图 3和图 4所示, 测量设备包括: 主体、 设置于主体内部的信号处 理模块 11、与信号处理模块 11连接的第一数据通信接口 12和与信号处理模 块 11连接的信号釆集模块。 第一数据通信接口 12用于与终端设备 6连接; 信号釆集模块用于测量出生理参数信号, 并将生理参数信号输出给信号处理 模块 11 ; 信号处理模块 11用于对生理参数信号进行处理, 生成生理参数数 据,并将生理参数数据通过第一数据通信接口 12输出给终端设备, 以供终端 设备 6对生理参数数据进行显示。
本发明中, 终端设备 6可以为便于携带并具有显示功能的智能型终端, 该智能型终端具备装载软件的功能。 例如: 该终端设备 6可以为手机、 计算 机、 MP4或者 MP3。 本实施例中以手机为例对技术方案进行描述。 具体地, 终 端设备 6上装载可对生理参数数据进行显示的软件, 当终端设备 6接收到生 理参数数据时可由该软件将生理参数数据以图表的形式在显示屏上进行显 示, 使用户通过终端设备 6就可以获取到生理参数数据。
本发明中, 第一数据通信接口 12可以为与终端设备 6的终端通信接口 1 3匹配的接口。 为便于与终端通信接口 1 3连接, 第一数据通信接口 12部分 位于主体的外部。 该第一数据通信接口 12可以为标准的接口, 例如: USB接 口; 或者该第一数据通信接口 12可以为某种终端设备的专用接口。
其中, 主体包括底板 14和设置于底板 14的边缘的侧边 15。 底板 14和 侧边 15的形状可根据终端设备 6的形状进行设计。 并且优选地, 底板 14为 平面。 本实施例中, 底板 14的形状为带有倒角结构的长方形。 优选地, 侧边 15为内部中空结构, 则信号处理模块 11可设置于侧边 15内部。 侧边 15与 底板 14形成空腔,主体通过空腔套装在终端设备 6的外部,该空腔可容纳终 端设备 6。 其中, 终端设备 6的显示屏背向底板 15。 侧边 14环绕在底板 15 的边缘。 本实施例中, 侧边 14为连续环绕在底板 15边缘的结构。
进一步地, 本实施例中, 信号釆集模块可包括二个接触电极, 则生理参 数信号包括心电信号, 生理参数数据包括心电数据。 图 5为本发明中信号处 理模块的结构示意图, 如图 5所示, 信号处理模块 11 包括心电处理子模块 111。接触电极具体用于测量出心电信号,并将心电信号输出给所述心电处理 子模块 111 ; 心电处理子模块 111具体用于对心电信号进行处理, 生成心电 数据, 并将心电数据通过第一数据通信接口 12输出给终端设备 6 , 以供终端 设备 6对心电数据进行显示。 接触电极可以设置于底板 14的外侧和 /或侧边 14的外侧。 本发明中, 内侧均是指朝向空腔的一侧, 相应地, 外侧均是指背 向空腔的一侧。 接触电极的数量可以为至少二个。 例如: 本实施例中, 底板 14的外侧设置有三个接触电极, 分别为接触电极 16、 接触电极 17和接触电 极 18 ,接触电极 16、接触电极 17和接触电极 18呈等腰三角形分布;具体地, 底板 14也可以为内部中空结构,且底板 14的内部中空结构和侧边 15的内部 中空结构相连通,则设置于底板 14外侧的接触电极可以通过导线与信号处理 模块 11连接, 导线位于底板 14和侧边 15内, 具体地导线在图中未示出。 并 且优选地,本发明中的导线均具有绝缘外皮。侧边 15的外侧可设置有接触电 极, 本实施例中侧边 15的外侧设置有四个接触电极, 分别为接触电极 19、 接触电极 20、接触电极 21和接触电极 22 ; 其中, 设置于侧边 15的接触电极 与信号处理模块 11可通过导线连接, 导线位于侧边 15内, 具体地导线在图 中未示出。 进一步地, 设置于侧边 15外侧的接触电极, 还可以位于底板 14 的其它边缘上的侧边 15外侧, 在此不——举例说明。 其中,接触电极之间相 互绝缘。
本发明中, 信号处理模块 11可以由与测量设备连接的终端设备 6直接 供电, 具体地, 当第一数据通信接口 12和终端通信接口 1 3连接后, 终端设 备 6可通过终端通信接口 1 3和第一数据通信接口 12向信号处理模块 11供电。 或者测量设备还包括设置于主体的内部并与信号处理模块 11 连接的电源模 块, 该电源模块用于向信号处理模块 11供电, 例如: 电源模块可以设置于侧 边 15内部中信号处理模块 11的旁边并与信号处理模块 11通过导线电连接, 具体地电源模块在图中未示出。 优选地, 电源模块可以为纽扣电池。
进一步地, 本实施例中, 信号釆集模块可包括外接探测设备, 则该测量 设备还包括: 设置于主体上并与信号处理模块 11 连接的第二数据通信接口 23 ,第二数据通信接口 23用于连接外部探测设备。外接探测设备具体用于测 量出生理参数信号,并将生理参数信号通过第二数据通信接口 23输出给信号 处理模块 11。 其中, 可以将外接探测设备直接插接到第二数据通信接口 23 , 此时外接探测设备的通信接口需要与第二数据通信接口 23匹配,外接探测设 备在图中未示出。 其中, 该第二数据通信接口 23可以为标准的接口, 例如: USB接口;或者该第二数据通信接口 23可以为某种外接探测设备的专用接口。
可选地, 外接探测设备可以为血氧测量模块, 生理参数信号包括血氧信 号, 生理参数数据包括血氧数据, 则如图 5所示, 信号处理模块 11包括血氧 处理子模块 112。 血氧测量模块具体用于测量出血氧信号, 并将血氧信号输 出给血氧处理子模块 112 ; 血氧处理子模块 112具体用于对血氧信号进行处 理,生成血氧数据,并将血氧数据通过第一数据通信接口 12输出给终端设备 6 , 以供终端设备 6对血氧数据进行显示。 例如: 血氧测量模块可以为血氧探 可选地, 外接探测设备可以为胎心测量模块, 生理参数信号包括胎心信 号, 生理参数数据包括胎心数据, 则如图 5所示, 信号处理模块 11包括胎心 处理子模块 113。 胎心测量模块具体用于测量出胎心信号, 并将胎心信号输 出给胎心处理子模块 113; 胎心处理子模块 113具体用于对胎心信号进行处 理,生成胎心数据,并将胎心数据通过第一数据通信接口 12输出给终端设备 6 , 以供终端设备 6对胎心数据进行显示。 例如: 胎心测量模块可以为胎心多 普勒探头。
可选地, 外接探测设备可以为温度测量模块, 生理参数信号包括温度信 号, 生理参数数据包括温度数据, 则如图 5所示, 信号处理模块 11包括温度 处理子模块 114。 温度测量模块具体用于测量出温度信号, 并将温度信号输 出给所述温度处理子模块 114; 温度处理子模块 114具体用于对温度信号进 行处理,生成温度数据,并将温度数据通过第一数据通信接口 12输出给终端 设备 6 , 以供终端设备 6对温度数据进行显示。 例如: 温度测量模块可以为 温度探测器, 该温度探测器可以为红外的非接触式温度测量器件或者为金属 导热式的温度测量器件。
可选地, 外接探测设备为感应电极。 所述感应电极具体用于测量出心电 信号, 并将所述心电信号输出给所述心电处理子模块; 心电处理子模块 111 具体用于对心电信号进行处理, 生成心电数据, 并将心电数据通过第一数据 通信接口 12输出给终端设备 6 ,以供终端设备 6对心电数据进行显示。例如: 感应电极包括导联线, 该导联线的一段设置有电极片, 该导联线的另一端用 于与第二数据通信接口 23连接。
进一步地, 信号处理模块 11还可以设置于主体内部的其它位置。 例如: 底板 14也可以为内部中空结构, 则信号处理模块 11可设置于底板 14内部; 或者,信号处理模块 11可以位于图中所示的底板 14的其它边缘上的侧边 15 内, 具体地, 此种情况在图中未示出; 或者, 信号处理模块 11 可以在底板 14的外侧设置凸起部, 信号处理模块 11位于凸起部内, 具体地, 此种情况 在图中未示出。 凸起部的高度以不影响釆用接触电极进行测量为准,优选地, 该凸起部的高度小于底板上接触电极的高度。
在实际使用中, 将终端设备 6放置入测量设备的空腔内使测量设备套装 在终端设备 6的外部,并将终端通信接口 1 3与第一通信接口 12连接。例如: 可以将终端通信接口 1 3直接插接在第一通信接口 12上。 而后用户可以通过 测量设备对心电进行测量。
图 6为本发明实施例二提供的一种测量设备的正面结构示意图, 图 7为 图 6中测量设备的反面结构示意图, 图 8为图 6中测量设备的应用示意图, 如图 6、 图 7和图 8所示, 本实施例与上述实施例一的区别在于: 本实施例 中测量设备还可以包括环形的第一盖状部件 24 , 第一盖状部件 24扣设于侧 边 15上,从而使终端设备 6更加牢固的被套装在测量设备的空腔内。其余描 述可参见实施例一, 此处不再赘述。 其中, 终端通信接口 1 3在图中未示出, 可参见图 4中的描述。
在实际使用中, 将终端设备 6放置入测量设备的空腔内使测量设备套装 在终端设备 6的外部,并将终端通信接口 1 3与第一通信接口 12连接。例如: 可以将终端通信接口 1 3直接插接在第一通信接口 12上。 并且将第一盖状部 件 24扣设于侧边 15上。 而后用户可以通过测量设备对心电进行测量。
图 9 为本发明实施例三提供的一种测量设备的正面结构示意图, 图 10 为图 9中测量设备的反面结构示意图,图 11为图 9中测量设备的应用示意图, 如图 9、 图 10和图 11所示, 本实施例与上述实施例一的区别在于: 本实施 例中底板 14上两个相对的边缘上设置有滑槽 25 ,位于底板 14上两个相对的 边缘上的侧边 15设置有与滑槽 25相匹配的凸缘 26 , 侧边 14通过凸缘 26沿 滑槽 25滑动,将部分侧边 15向外拉以使侧边 15打开,并且还可以将该部分 侧边 15向内推以使侧边 15闭合。 从而便于将终端设备 6放置入测量设备的 空腔内。 其余描述可参见实施例一, 此处不再赘述。
在实际使用中, 将部分侧边 15向外拉使侧边 15打开, 将终端设备 6放 置入测量设备的空腔内使测量设备套装在终端设备 6的外部, 将终端通信接 口 1 3与第一通信接口 12连接,例如: 可以将终端通信接口 1 3直接插接在第 一通信接口 12上。并将部分侧边 15向内推以使侧边 15闭合。 而后用户可以 通过测量设备对心电进行测量。
图 12为本发明实施例四提供的一种测量设备的正面结构示意图, 图 1 3 为图 12中测量设备的反面结构示意图,图 14为图 12中测量设备的应用示意 图, 如图 12、 图 1 3和图 14所示, 本实施例与上述实施例一的区别在于: 底 板 14上一个边缘以及与该边缘相连接的邻侧的部分边缘上设置有侧边 15 ; 设置于侧边 15的外侧的接触电极为二个,分别为接触电极 21和接触电极 22。 其余描述可参见实施例一, 此处不再赘述。 其中, 终端通信接口 1 3在图中未 示出, 可参见图 4中的描述。
在实际使用中, 将终端设备 6放置入测量设备的空腔内使测量设备套装 在终端设备 6的外部,并将终端通信接口 1 3与第一通信接口 12连接。例如: 可以将终端通信接口 1 3直接插接在第一通信接口 12上。 而后用户可以通过 测量设备对心电进行测量。
图 15为本发明实施例五提供的一种测量设备的正面结构示意图, 图 16 为图 15中测量设备的反面结构示意图,图 17为图 15中测量设备的应用示意 图, 如图 15、 图 16和图 17所示, 本实施例与上述实施例一的区别在于: 底 板 14上相对的两个边缘上设置有侧边 15。 侧边 15呈向上弯曲结构。 其余描 述可参见实施例一, 此处不再赘述。 其中, 终端通信接口 1 3在图中未示出, 可参见图 4中的描述。
在实际使用中, 将终端设备 6放置入测量设备的空腔内使测量设备套装 在终端设备 6的外部,并将终端通信接口 1 3与第一通信接口 12连接。例如: 可以将终端通信接口 1 3直接插接在第一通信接口 12上。 而后用户可以通过 测量设备对心电进行测量。
图 18为本发明实施例六提供的一种测量设备的正面结构示意图, 图 19 为图 18中测量设备的反面结构示意图,图 20为图 18中测量设备的应用示意 图, 如图 18、 图 19和图 20所示, 本实施例与上述实施例一的区别在于: 本 实施例中, 底板 14上的一个侧边开设有开口 27; 主体还包括第二盖状部件 28 ,第二盖状部件 28扣设于开口 27上;第二盖状部件 28上设置有接触电极, 第二盖状部件 28上与开口 27接触的边缘上设置有第一导电部件 29 ,开口 27 上设置有第二导电部件 30, 第二导电部件 30通过导线与信号处理模块 11连 接,第一导电部件 29和第二导电部件 30相接触以实现第二盖状部件 28上的 接触电极与信号处理模块 11电连接。 优选地, 第一导电部件 29和第二导电 部件 30的材料可以为金属。 其中, 导线在图中未示出。 第二盖状部件 28上 的接触电极包括接触电极 21和接触电极 22。终端通信接口 13在图中未示出, 可参见图 4中的描述。并且第二数据通信接口 23在图中未示出,可参见实施 例一中的描述。
在实际使用中, 将终端设备 6从开口 27放置入测量设备的空腔内使测 量设备套装在终端设备 6的外部, 并将终端通信接口 13与第一通信接口 12 连接。 例如: 可以将终端通信接口 13直接插接在第一通信接口 12上。 并且 将第二盖状部件 28扣设于开口 27上,使第二盖状部件 28上的第一导电部件 29和开口 27的第二导电部件 30接触。 而后用户可以通过测量设备对心电进 行测量。
本发明上述各实施例中, 优选地, 设置于底板 14上的接触电极的顶面 与底板 14之间具备一定的距离,也就是说接触电极高出底板 14一定的高度。 由于底板 14为平面, 而人体外表为不规则的曲面, 使接触电极高出底板 14 平面, 可以保证各个接触电极均能与人体稳定接触。 具体地, 在底板 14的外 侧平面上设置有三个用于安装接触电极的电极安装部, 该三个电极安装部呈 等腰三角形分布, 并且高出底板 14的外侧平面一段距离; 具体为, 两个电极 安装部 (用于安装接触电极 17和接触电极 18 的安装部)位于靠近底板 14 的一条边的两端位置处;另一个电极安装部(用于安装接触电极 16的安装部) 则位于底板 1另一条边的中间位置处,之所以电极安装部高出底板 14平面一 些, 是因为底板 14为平面, 而人体外表为不规则的曲面, 使接触电极高出底 板 14平面, 可以保证接触电极均能与人体稳定接触。 接触电极 16、 接触电 极 17、 接触电极 18与各自的电极安装部之间的具体连接方式, 例如可以釆 用螺接、 铆接、 卡接等等, 本实施例中以釆用螺接的方式为例, 即, 在接触 电极的一端加工螺紋,将螺紋端由底板 14外侧穿入,将对应的导线与接触电 极连接好后用适当的螺母进行固定。 这样, 可以通过调节螺母的旋紧深度而 使各个接触电极的高度可调, 以适应不同使用者的身体特征。 本实施中, 优 选地, 各接触电极与人体相接触的端面均为圓形平面, 但其并不局限于此, 只要能够适于在皮肤表面釆集生理参数信号的形状均可, 例如将接触电极的 端面设置成方形或其它多边形, 或者还可以将其端面的中心区域设置为向外 凸出或向内 iHJ陷的形状。
本发明上述各中, 若终端设备为手机、 MP4或 MP 3等体积较小的设备时, 可以釆用上述各实施例中的方案将终端设备放置入测量设备的空腔中。 若终 端设备为计算机等体积较大的设备时,则可以将终端通信接口 1 3和第一通信 接口 12通过数据线连接, 而无需将终端设备放入测量设备的空腔内。 因此, 本发明中, 测量设备的体积可以根据便于携带的标准进行设计, 当终端设备 的体积较大而无法放入测量设备的空腔内时, 可以通过数据线将终端设备与 测量设备连接, 从而使用户通过测量设备即可完成心电的测量。
进一步地, 本实施例中, 第一数据通信接口 12 可以为无线接口, 该第 一数据通信接口 12可设置于主体的内部。 则该第一数据通信接口 12可以与 终端设备 6中设置的无线接口通信连接。例如,第一数据通信接口 12中的无 线接口和终端设备 6中的无线接口均可以为蓝牙接口或者红外接口。 此种情 况下, 可以将终端设备 6不放入测量设备中。
进一步地, 本实施例中, 第二数据通信接口 23 可以为无线接口, 该第 二数据通信接口 23可设置于主体的内部。 则该第二数据通信接口 23可以与 外接探测设备中设置的无线接口通信连接。例如,第二数据通信接口 23中的 无线接口和外接探测设备中的无线接口均可以为蓝牙接口或者红外接口。 此 种情况下, 无需将外接探测设备插接到第二数据通信接口 23上。
本发明中, 上述底板 14和侧边 15均可以釆用例如硅胶等的软胶材料制 成,该软胶材料同时应具有绝缘的特性, 以保证各个接触电极之间相互绝缘。 或者底板 14和侧边 15的材料还可以为硬塑料或者纺织物等。 并且测量设备 的底板 14和侧边 15可以一体成型, 也可以分别对底板 14和侧边 15等结构 进行单独加工, 之后再将各部分拼接在一起。
需要指出的是, 外接探测设备的种类并不局限于上述各实施例中所述的 几种, 在实际应用中可根据需要进行增加。
需要指出的是, 接触电极的数量并不局限于上述各实施例中所述的数 量, 在实际应用中可根据需要进行变更。
釆用本发明提供的测量设备可以在不配备手持式心电测量仪的前提下 进行如背景技术中所述的多种方式的心电测量, 例如: 手部测量或者手部和 脚踝测量等。并且釆用本发明提供的测量设备还可以进行胸部测量,具体为, 将测量设备上的接触电极 16、接触电极 17和接触电极 18放置在人体胸部靠 近心脏位置的皮肤表面。例如使上述三个接触电极排列在心脏周围,优选的, 可以将测量设备上呈等腰三角形分布的三个接触电极分别放置在心脏左右两 侧和心脏下方的位置, 具体的, 可以使位于等腰三角形的两个底角处的接触 电极 17和接触电极 18的连线横跨心脏所在的位置, 并使另一个接触电极 16 位于心脏的正下方。
本发明上述实施例提供的测量设备, 该测量设备包括主体、 设置于所述 主体内部的信号处理模块、 与信号处理模块连接的第一数据通信接口和与所 述信号处理模块连接的信号釆集模块, 信号釆集模块将测量出的生理参数信 号输出给信号处理模块, 信号处理模块对生理参数信号进行处理生成生理参 数数据, 并将生理参数数据通过第一数据通信接口输出给终端设备, 以供终 端设备对生理参数数据进行显示。 用户可直接釆用本发明的测量设备进行生 理参数测量, 无需配备专业的测量仪器, 只需釆用本发明的测量设备并结合 术中的专业的心电测量仪器相比,本发明上述实施例中的测量设备价格低廉, 并且由于该测量设备体积较小, 因此还具备携带方便的优点。 本发明上述实 施例中的测量设备的底板外侧设置有接触电极, 使用户釆用本发明的测量设 备进行心电测量时, 可以釆用胸部测量的方式, 即只需将底板上的各个接触 电极与患者心脏部位的皮肤充分接触即可, 该方式避免了现有技术中的由于 用户握持心电测量仪姿势不当导致心电测量结果不准确的问题, 由于人体胸 部最靠近心脏, 心电信号最强, 因此釆用胸部测量的方式可获得更加准确的 测量结果, 并且釆用胸部测量的方式对用户握持姿势并没有严格要求, 从而 有效简化了手持式心电测量仪的使用方法、 提高了易用性。 本发明具有简单 易用和操作便捷等优点。 本发明上述实施例中的测量设备的主体上设置了第 二数据通信接口, 该第二数据通信接口可以连接外接探测设备, 从而实现了 对多种生理参数的测量, 增强了测量设备的可扩展性。
图 21为本发明实施例七提供的一种测量设备的结构示意图, 图 22为图 21中测量设备的应用示意图,如图 21和图 22所示,该测量设备包括: 主体、 设置于主体内部的信号处理模块、 与信号处理模块连接的第一数据通信接口 12和与信号处理模块连接的信号釆集模块。 第一数据通信接口 12用于与终 端设备 6连接; 信号釆集模块用于测量出生理参数信号, 并将生理参数信号 输出给信号处理模块; 信号处理模块用于对生理参数信号进行处理, 生成生 理参数数据, 并将生理参数数据通过第一数据通信接口 12输出给终端设备, 以供终端设备 6对生理参数数据进行显示。
本实施例中, 对终端设备 6和第一数据通信接口 12的描述可参见实施 例一中的描述。
本实施例中, 主体为壳体 31 , 信号处理模块位于壳体 31内。 壳体 31可 以为内部中空结构。 优选地, 壳体 31的形状为立方体。 进一步地, 壳体 31 还可以釆用其它形状, 此处不——举例。 具体地, 信号处理模块由于位于壳 体 31内部, 因此在图中未示出, 其可参见实施例一附图中的描述。
本发明中,信号处理模块可以由与测量设备连接的终端设备 6直接供电, 具体地, 当第一数据通信接口 12和终端通信接口 13连接后, 终端设备 6可 通过终端通信接口 13和第一数据通信接口 12向信号处理模块供电。 或者测 量设备还包括设置于壳体 31的内部并与信号处理模块连接的电源模块,该电 源模块用于向信号处理模块供电, 例如: 电源模块可以与信号处理模块通过 导线电连接, 具体地电源模块在图中未示出。 优选地, 电源模块可以为纽扣 电池。
本实施例中,信号釆集模块可包括外接探测设备 32 , 则该测量设备还包 括: 设置于壳体 31上并与信号处理模块连接的第二数据通信接口 23 , 第二 数据通信接口 23用于连接外部探测设备 32。外接探测设备 32具体用于测量 出生理参数信号,并将生理参数信号通过第二数据通信接口 23输出给信号处 理模块。 其中, 可以将外接探测设备 32直接插接到第二数据通信接口 23 , 此时外接探测设备 32的通信接口需要与第二数据通信接口 23匹配。 其中, 该第二数据通信接口 23可以为标准的接口, 例如: USB接口; 或者该第二数 据通信接口 23可以为某种外接探测设备 32的专用接口。 其中, 外接探测设 备 32和壳体 31可以分别放置, 使用时再将外接探测设备 32插接到壳体 31 的第二数据通信接口 23上, 如图 21所示。
可选地, 外接探测设备 32 可以为血氧测量模块、 胎心测量模块、 温度 测量模块或者感应电极。 具体地, 对血氧探测模块、 胎心测量模块、 温度测 量模块、 感应电极以及相应的信号处理模块的描述可参见实施例一, 此处不 再赘述。
进一步地, 本实施例中, 第一数据通信接口 12 可以为无线接口, 该第 一数据通信接口 12可设置于壳体 31的内部。则该第一数据通信接口 12可以 与终端设备 6中设置的无线接口通信连接。例如,第一数据通信接口 12中的 无线接口和终端设备 6中的无线接口均可以为蓝牙接口或者红外接口。 此种 情况下, 无需将终端设备 6插接到第一数据通信接口 12上。
进一步地, 本实施例中, 第二数据通信接口 23 可以为无线接口, 该第 二数据通信接口 23可设置于壳体 31的内部。则该第二数据通信接口 23可以 与外接探测设备 32 中设置的无线接口通信连接。 例如, 第二数据通信接口 23 中的无线接口和外接探测设备中的无线接口均可以为蓝牙接口或者红外 接口。此种情况下,无需将外接探测设备 32插接到第二数据通信接口 23上。
本实施例中, 上述壳体 31 可以釆用例如硅胶等的软胶材料制成。 或者 壳体 31的材料还可以为硬塑料或者纺织物等。
需要指出的是, 外接探测设备的种类并不局限于上述各实施例中所述的 几种, 在实际应用中可根据需要进行增加。
本发明上述实施例提供的测量设备, 该测量设备包括主体、 设置于所述 主体内部的信号处理模块、 与信号处理模块连接的第一数据通信接口和与所 述信号处理模块连接的信号釆集模块, 信号釆集模块将测量出的生理参数信 号输出给信号处理模块, 信号处理模块对生理参数信号进行处理生成生理参 数数据, 并将生理参数数据通过第一数据通信接口输出给终端设备, 以供终 端设备对生理参数数据进行显示。 用户可直接釆用本发明的测量设备进行生 理参数测量, 无需配备专业的测量仪器, 只需釆用本发明的测量设备并结合 术中的专业的心电测量仪器相比,本发明上述实施例中的测量设备价格低廉, 并且由于该测量设备体积较小, 因此还具备携带方便的优点。 本发明上述实 施例中的测量设备的主体上设置了第二数据通信接口, 该第二数据通信接口 可以连接外接探测设备, 从而实现了对多种生理参数的测量, 增强了测量设 备的可扩展性。
可以理解的是, 以上实施方式仅仅是为了说明本发明的原理而釆用的示 例性实施方式, 然而本发明并不局限于此。 对于本领域内的普通技术人员而 言, 在不脱离本发明的精神和实质的情况下, 可以做出各种变型和改进, 这 些变型和改进也视为本发明的保护范围。

Claims

权 利 要 求 书
1、 一种测量设备, 其特征在于, 包括: 主体、 设置于所述主体内部的 信号处理模块、 与所述信号处理模块连接的第一数据通信接口和与所述信号 处理模块连接的信号釆集模块;
所述第一数据通信接口, 用于与终端设备连接;
所述信号釆集模块, 用于测量出生理参数信号, 并将所述生理参数信号 输出给所述信号处理模块;
所述信号处理模块, 用于对所述生理参数信号进行处理, 生成生理参数 数据, 并将所述生理参数数据通过所述第一数据通信接口输出给所述终端设 备, 以供所述终端设备对所述生理参数数据进行显示。
2、 根据权利要求 1 所述的测量设备, 其特征在于, 所述主体包括底板 和设置于所述底板的边缘的侧边。
3、 根据权利要求 2 所述的测量设备, 其特征在于, 所述侧边为内部中 空结构, 所述信号处理模块位于所述侧边内部。
4、 根据权利要求 2 所述的测量设备, 其特征在于, 所述底板的外侧设 置有凸起部, 所述信号处理模块位于所述凸起部内。
5、 根据权利要求 2 所述的测量设备, 其特征在于, 所述侧边与底板形 成空腔, 所述主体通过所述空腔套装在所述终端设备的外部。
6、 根据权利要求 5 所述的测量设备, 其特征在于, 所述侧边环绕在所 述底板的边缘。
7、 根据权利要求 6 所述的测量设备, 其特征在于, 所述测量设备还包 括环形的第一盖状部件, 所述第一盖状部件扣设于所述侧边上。
8、 根据权利要求 6 所述的测量设备, 其特征在于, 所述底板上两个相 对的边缘上设置有滑槽, 位于所述底板上两个相对的边缘上的侧边设置有与 所述滑槽相匹配的凸缘, 所述侧边通过所述凸缘沿所述滑槽滑动。
9、 根据权利要求 5 所述的测量设备, 其特征在于, 所述底板上一个边 缘以及与该边缘相连接的邻侧的部分边缘上设置有所述侧边。
10、 根据权利要求 5所述的测量设备, 其特征在于, 所述底板上相对的 两个边缘上设置有所述侧边。
11、 根据权利要求 6所述的测量设备, 其特征在于, 所述底板上的一个 侧边开设有开口。
12、 根据权利要求 11 所述的测量设备, 其特征在于, 所述主体还包括 第二盖状部件, 所述第二盖状部件扣设于所述开口上。
1 3、 根据权利要求 12 所述的测量设备, 其特征在于, 所述信号釆集模 块包括至少二个接触电极, 所述第二盖状部件上设置有所述接触电极; 所述第二盖状部件上与所述开口接触的边缘上设置有第一导电部件, 所 述开口上设置有第二导电部件, 所述第二导电部件通过导线与所述信号处理 模块连接, 所述第一导电部件和所述第二导电部件相接触以实现所述第二盖 状部件上的接触电极与所述信号处理模块电连接。
14、 根据权利要求 1所述的测量设备, 其特征在于, 所述主体为壳体, 所述信号处理模块位于所述壳体内。
15、 根据权利要求 1所述的测量设备, 其特征在于, 所述测量设备还包 括设置于所述主体的内部并与所述信号处理模块连接的电源模块;
所述电源模块, 用于向所述信号处理模块供电。
16、 根据权利要求 1所述的测量设备, 其特征在于, 所述第一数据通信 接口设置于所述主体内部, 所述第一数据通信接口为无线接口。
17、 根据权利要求 2所述的测量设备, 其特征在于, 所述信号釆集模块 包括至少二个接触电极, 所述生理参数信号包括心电信号, 所述生理参数数 据包括心电数据, 则所述信号处理模块包括心电处理子模块;
所述接触电极具体用于测量出心电信号, 并将所述心电信号输出给所述 心电处理子模块;
所述心电处理子模块具体用于对所述心电信号进行处理, 生成心电数 据, 并将所述心电数据通过所述第一数据通信接口输出给所述终端设备, 以 供所述终端设备对所述心电数据进行显示。
18、 根据权利要求 17 所述的测量设备, 其特征在于, 所述底板的外侧 设置有三个接触电极, 所述接触电极呈等腰三角形分布。
19、 根据权利要求 17 所述的测量设备, 其特征在于, 所述侧边的外侧 设置有所述接触电极。
20、 根据权利要求 17 所述的测量设备, 其特征在于, 所述接触电极与 所述信号处理模块通过导线连接, 所述侧边为内部中空结构, 所述导线位于 所述侧边内。
21、 根据权利要求 1至 20任一所述的测量设备, 其特征在于, 所述信 号釆集模块包括外接探测设备, 所述测量设备还包括: 设置于所述主体上并 与所述信号处理模块连接的第二数据通信接口, 所述第二数据通信接口用于 连接所述外部探测设备;
则所述外接探测设备具体用于测量出生理参数信号, 并将所述生理参数 信号通过所述第二数据通信接口输出给所述信号处理模块。
22、 根据权利要求 21 所述的测量设备, 其特征在于, 所述外接探测设 备为血氧测量模块, 所述生理参数信号包括血氧信号, 所述生理参数数据包 括血氧数据, 则所述信号处理模块包括血氧处理子模块;
所述血氧测量模块具体用于测量出血氧信号, 并将所述血氧信号输出给 所述血氧处理子模块;
所述血氧处理子模块具体用于对所述血氧信号进行处理, 生成血氧数 据, 并将所述血氧数据通过所述第一数据通信接口输出给所述终端设备, 以 供所述终端设备对所述血氧数据进行显示。
23、 根据权利要求 21 所述的测量设备, 其特征在于, 所述外接探测设 备为胎心测量模块, 所述生理参数信号包括胎心信号, 所述生理参数数据包 括胎心数据, 则所述信号处理模块包括胎心处理子模块;
所述胎心测量模块具体用于测量出胎心信号, 并将所述胎心信号输出给 所述胎心处理子模块;
所述胎心处理子模块具体用于对所述胎心信号进行处理, 生成胎心数 据, 并将所述胎心数据通过所述第一数据通信接口输出给所述终端设备, 以 供所述终端设备对所述胎心数据进行显示。
24、 根据权利要求 21 所述的测量设备, 其特征在于, 所述外接探测设 备为温度测量模块, 所述生理参数信号包括温度信号, 所述生理参数数据包 括温度数据, 则所述信号处理模块包括温度处理子模块;
所述温度测量模块具体用于测量出温度信号, 并将所述温度信号输出给 所述温度处理子模块;
所述温度处理子模块具体用于对所述温度信号进行处理, 生成温度数 据, 并将所述温度数据通过所述第一数据通信接口输出给所述终端设备, 以 供所述终端设备对所述温度数据进行显示。
25、 根据权利要求 21 所述的测量设备, 其特征在于, 所述外接探测设 备为感应电极, 所述生理参数信号包括心电信号, 所述生理参数数据包括心 电数据, 则所述信号处理模块包括心电处理子模块;
所述感应电极具体用于测量出心电信号, 并将所述心电信号输出给所述 心电处理子模块;
所述心电处理子模块具体用于对所述心电信号进行处理, 生成心电数 据, 并将所述心电数据通过所述第一数据通信接口输出给所述终端设备, 以 供所述终端设备对所述心电数据进行显示。
26、 根据权利要求 21 所述的测量设备, 其特征在于, 所述第二数据通 信接口设置于所述主体内部, 所述第二数据通信接口为无线接口。
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