Apparatus for measuring biometric information
The biometric information measuring device addresses misrecognition and stability issues by employing a tilting mounting structure and stable electrical connections, ensuring reliable data capture and detection of user abnormalities.
Patent Information
- Application Number
- PCT/KR2025/000361
- Authority / Receiving Office
- WO · WO
- Patent Type
- Applications
- Current Assignee / Owner
- Priority Date
- 2025-01-07
- Filing Date
- 2025-01-08
- Publication Date
- 2025-07-17
AI Technical Summary
Existing biometric information measuring devices for elderly or disabled individuals face challenges such as misrecognition due to user movement, inconvenience of constant attachment, and failure to detect abnormalities during sensor attachment or battery discharge, particularly when users are sleeping.
A biometric information measuring device with a tilting mounting portion and a double-end fastening structure, featuring a base, extension portion, and a sensor system that allows for adjustable tilting angles and stable electrical connections, ensuring consistent data reception and stable power supply.
The device provides consistent biometric data capture with adjustable sensing angles and stable power supply, enhancing the ability to detect user abnormalities like falls or changes in vital signs, even when users are sleeping.
Smart Images

Figure KR2025000361_17072025_PF_FP_ABST
Abstract
Description
Biometric information measuring device
[0001] The present invention relates to a biometric information measuring device, and more preferably, to a biometric information measuring device that provides a mounting portion positioned apart from a base along an extension portion.
[0002] As interest in healthcare grows, interest in services that help the elderly and people with disabilities to lead their daily lives with peace of mind is also increasing.
[0003] Because it is difficult for elderly or disabled people living alone at home to always be with a caregiver, research is being conducted on services to detect when elderly or disabled people suddenly collapse.
[0004] Previously, biometric data detection technology involved attaching sensors to the resident's body. However, this method frequently resulted in misrecognition depending on the resident's movements, and the inconvenience of having to constantly attach the sensors to the resident's body. Furthermore, problems arose in various situations, such as during the sensor attachment process or when the sensor's battery was discharged, preventing the resident from detecting abnormalities. In particular, there is a growing demand for diverse structures for mounting biometric data receivers to measure biometric data while the user is asleep.
[0005] Therefore, research on stationary biometric measurement devices is actively underway.
[0006] The present invention has been devised to solve the above-mentioned problems, and the purpose of the present invention is to provide a bio-information measuring device including a fastening structure of an extension part capable of tilting a mounting part.
[0007] In addition, the present invention provides a bio-information measuring device including a double-end fastening structure of an extension portion positioned between a base and a holder.
[0008] The objectives of the present invention are not limited to the above-mentioned objectives, and other objectives of the present invention not mentioned above can be understood through the following description and further clarified by the embodiments of the present invention. Furthermore, the objectives of the present invention can be realized by the means and combinations thereof set forth in the claims.
[0009] A biometric information measuring device for achieving the above-described object of the present invention comprises the following configuration. The present invention provides a biometric information measuring device comprising: a base; a mounting portion that is electrically connected to the base to measure biometric information; and an extension portion positioned between the mounting portion and the base; wherein the mounting portion is configured to tilt relative to the extension portion.
[0010] In addition, the above-mentioned mounting part provides a bio-information measuring device including an upper cover connected to the extension part; a lower cover rotatably connected to the upper cover; and a sensor for receiving bio-information.
[0011] In addition, a biometric information measuring device is provided, including a plurality of tilting slots positioned on the upper cover; a guide protrusion positioned between the plurality of tilting slots adjacent to each other; and a protrusion positioned on the extension and inserted into and positioned in one of the plurality of tilting slots.
[0012] In addition, the tilting slot provides a biometric measurement device that is continuously positioned on the upper cover to form an angle of at least two or more of the mounting portion based on one end of the extension portion.
[0013] In addition, a bio-information measuring device is provided, including a fixing part positioned on the upper cover; a fixing slot positioned on the lower cover corresponding to the fixing part; an opening positioned at one end of the fixing slot into which the fixing part is inserted; and the fixing part is inserted through the opening and rotated inside the fixing slot.
[0014] In addition, a bio-information measuring device is provided, which further includes a stopper located inside the fixed slot and into which the rotated fixed part is inserted and fastened.
[0015] In addition, the base provides a bio-information measuring device including a case; an external connector connected to the case and to which power is supplied from the outside; a fixing unit for fixing the extension; and a PCBA (Printed Circuit Board Assembly) connected to power supplied to the external connector.
[0016] In addition, the fixed unit provides a bio-information measuring device including an insertion part connected to a recessed part located at one end of the extension part; and a guide part guiding movement of the extension part.
[0017] In addition, a bio-information measuring device is provided, including an internal connector fastened to the PCBA so as to be electrically connected to a conductive part located at the end of the extension part.
[0018] Additionally, the extension portion provides a biometric measurement device including a wire so that the base and the mounting portion are electrically connected.
[0019] The present invention can obtain the following effects through the combination and use of the configuration described above and the following examples.
[0020] The present invention provides a fastening structure between an extension part and a mounting part, wherein the mounting part is configured to have various tilting angles, thereby providing a sensing angle of the mounting part at which highly consistent data is received.
[0021] In addition, the present invention has the effect of providing a highly stable positional relationship of the mounting portion by providing a fixing structure for inserting and fixing the extension portion into the base.
[0022] In addition, the present invention provides a fastening structure that enables stable power supply to the mounting portion through an electrical connection that allows current to pass between the base and the mounting portion through an extension portion.
[0023] FIG. 1 is a side view of a bio-information measuring device as an embodiment of the present invention.
[0024] FIG. 2 is a diagram illustrating a configuration of a bio-information measuring device as an embodiment of the present invention.
[0025] Figures 3 to 5 illustrate the base of a biometric information measuring device as an embodiment of the present invention.
[0026] FIG. 6 is a side view of a mounting portion of a bio-information measuring device as an embodiment of the present invention.
[0027] Figures 7 and 8 illustrate a fastening structure of a mounting portion as an embodiment of the present invention.
[0028] Figures 9a and 9b illustrate a fastening structure of an upper cover and a lower cover as an embodiment of the present invention.
[0029] FIGS. 10A and 10B illustrate an embodiment of the present invention, showing the configuration of a mounting portion having a first angle.
[0030] FIGS. 11a and 11b illustrate an embodiment of the present invention, showing a configuration of a mounting portion having a second angle.
[0031] Fig. 12 is another embodiment of the present invention, showing a fastening structure between a mounting portion and a base.
[0032] Hereinafter, embodiments of the present invention will be described in more detail with reference to the attached drawings. The embodiments of the present invention may be modified in various ways, and the scope of the present invention should not be construed as being limited to the embodiments described below. These embodiments are provided to more fully explain the present invention to those of ordinary skill in the art.
[0033] Additionally, terms such as “... part,” “... unit,” and “... module” described in the specification mean a unit that processes at least one function or operation, which may be implemented by hardware, software, or a combination of hardware and software.
[0034] Additionally, the terminology used in this specification is used only to describe specific embodiments and is not intended to limit the embodiments. Singular expressions include plural expressions unless the context clearly indicates otherwise.
[0035] In addition, the reason why the names of the components are divided into first, second, etc. in this specification is to distinguish them because the names of the components are the same, and the following description is not necessarily limited to that order.
[0036] In addition, various embodiments in this specification can be implemented as software (e.g., a program) including instructions stored in a machine-readable storage medium that can be read by a machine (e.g., a computer). The machine is a device that can call instructions stored from the storage medium and operate according to the called instructions, and may include an electronic device (e.g., a server) according to the disclosed embodiments. The instructions may include code generated or executed by a compiler or interpreter. The machine-readable storage medium may be provided in the form of a non-transitory storage medium. Here, 'non-transitory' only means that the storage medium does not contain a signal and is tangible, and does not distinguish between data being stored semi-permanently or temporarily in the storage medium.
[0037] Furthermore, according to the exemplary embodiments of the present disclosure, the methods according to the various embodiments disclosed in the present document may be provided as included in a computer program product. The computer program product may be traded as a commodity between a seller and a buyer. The computer program product may be distributed in the form of a machine-readable storage medium (e.g., compact disc read-only memory (CD-ROM)) or online through an application store (e.g., Play Store™). In the case of online distribution, at least a portion of the computer program product may be temporarily stored or temporarily generated in a storage medium, such as the memory of a manufacturer's server, an application store's server, or a relay server.
[0038] Hereinafter, the embodiments will be described in detail with reference to the attached drawings. When describing with reference to the attached drawings, identical or corresponding components are assigned the same drawing numbers and redundant descriptions thereof will be omitted.
[0039] The present invention relates to a biometric information measuring device, and provides a measuring device for measuring a user's biometric information at a place where the user sleeps or rests.
[0040] Figures 1 and 2 illustrate a perspective view and a configuration diagram of a bio-information measuring device as an embodiment of the present invention.
[0041] The base (100) includes an external connector (120) configured to allow power to be applied from the outside, and includes a configuration in which the back surface can be fixed and positioned on the ground or a table, etc. Furthermore, the base (100) includes a configuration in which the back surface can be fixed and positioned on a wall, and the back surface can be fixed by forming a flat surface.
[0042] A mounting portion (300) positioned apart from the base (100) is configured to measure the user's biometric information. Here, the mounting portion (300) includes an upper cover (310), a lower cover (320), and a sensor (330) positioned between the upper cover (310) and the lower cover (320).
[0043] The sensor (330) may include at least two measurement modules, and more preferably, the sensor (330) of the present invention may include a first sensor (330) and a second sensor (330).
[0044] The sensor (330) may be any one of an infrared-ultra-wideband (IR-UWB) sensor (330), a lidar, a frequency-modulated continuous wave radar (FMCW RADAR), and a Doppler radar (DOPPLAR RADAR). Preferably, the mounting unit (300) may be an infrared-ultra-wideband (IR-UWB) sensor (330). Ultra-wideband (UWB) refers to a radio technology that uses a frequency band of 500 MHz or more or has a non-bandwidth of 25% or more. The non-bandwidth refers to the bandwidth of a signal compared to the center frequency. Ultra-wideband (UWB) is a radio technology that uses a wide frequency band and has various advantages such as high range resolution, transparency, strong immunity to narrowband noise, and coexistence with other devices that share the frequency. For example, ultra-wideband (UWB) communication has the advantage of being able to detect even the slightest movement of an object with an ultra-precision distance resolution of less than 1 cm.
[0045] IR-UWB (Impulse-Radio Ultra WideBand) radar (hereinafter referred to as UWB radar) technology is a system that combines ultra-wideband communication (UWB) technology with radar. It refers to a radar technology that recognizes the surroundings by transmitting an impulse signal with a very short duration that has wideband characteristics in the frequency domain and receiving the signal that is reflected back from objects and people. A UWB radar system generates an impulse signal with a time width of several nanoseconds to several picoseconds in the signal generation unit and radiates it at a wide or narrow angle through a transmission antenna. The radiated signal is reflected by various objects or people in the environment, and the reflected signal can be converted into a digital signal through the receiving antenna and analog-to-digital converter (ADC).
[0046] The sensor (330) can detect the shortest distance to the user. The sensor (330) can detect the shortest distance to the user based on a specific location of the resident. For example, the specific location may refer to a part of the resident's body, such as the resident's head, torso, or leg, and the specific location may refer to a location where the shortest distance from the sensor (330) to the resident is derived. Therefore, the specific location may refer to a location that changes in real time according to the user's movement. The sensor (330) may include two or more sensors (330), and the first shortest distance between the sensor (330) and the resident and the second shortest distance between the sensor (330) and the resident may be the same or different. The first specific location of the resident detected by the first sensor (330) and the second specific location of the resident detected by the second sensor (330) may be the same or different.
[0047] The sensor (330) can detect biometric information generated at a specific location of a resident. The biometric information may include at least one of the resident's heart rate, movement, or respiration. The sensor (330) can detect the movement of the resident's chest or abdomen by receiving a signal reflected by the resident, thereby detecting the resident's heart rate or respiration. Furthermore, the sensor (330) can detect the resident's movement by receiving the reflected signal in real time. Furthermore, the sensor (330) can detect the resident's size and shape by receiving the reflected signal in real time. Therefore, the sensor (330) can measure biometric information such as the resident's heart rate, movement, or respiration to determine the resident's current status.
[0048] Data measured by the sensor (330) is received by the control unit located in the mounting unit (300), and the control unit determines abnormalities in bio-signals based on the received data. The control unit can detect bio-signals as well as falling and standing behaviors of the resident based on the distance from the user measured by the sensor (330).
[0049] The control unit can set an orthogonal coordinate system with one axis as the direction from the first sensor (330) to the second sensor (330). The control unit (300) can set the coordinates of the first sensor (330) and the coordinates of the second sensor (330) so that the other two coordinates other than the coordinates of the image are the same. That is, the first sensor (330) and the second sensor (330) can be set to be arranged at the same coordinates other than the coordinates of the one axis. Therefore, the control unit can calculate the user's body or the user's posture height by combining the information about the first shortest distance and the second shortest distance and the information about the distance between the first sensor (330) and the second sensor (330).
[0050] A biometric signal may include at least one of a person's heart rate, movement, or respiration. The sensor (330) can detect the movement of the person's chest or abdomen by receiving a signal reflected by the person, thereby detecting the person's heart rate or respiration. Furthermore, the sensor (330) can detect signs of respiratory abnormalities through the person's respiration and heart movement. Furthermore, the subject's body temperature can be detected as a biometric signal.
[0051] Additionally, the sensor (330) is configured to measure one or more of peak expiratory flow, peak inspiratory flow, average flow rates, volumes, flow over time, forced vital capacity, percentage of flow at specific time intervals, and slow and forced volumes at specific time intervals associated with breathing.
[0052] The sensor (330) can detect the movement of a person within a certain range. The sensor (330) can detect the movement of a person by receiving a reflected signal in real time. More preferably, the sensor (330) can distinguish between the movement of the lower body and the upper body and simultaneously determine the time of movement.
[0053] For example, the sensor (330) can detect the movement of an upper body moving within the detection range of the sensor (330). At this time, the movement of the upper body may include a change in the distance between the sensor (330) and the upper body and an angle formed by the upper body relative to the lower body.
[0054] As another example, the sensor (330) can detect the movement of the user's upper body located within the detection range of the sensor (330) and determine the time at which the upper body moves.
[0055] As another example, the sensor (330) can detect a rapid movement of a person's upper body. The sensor (330) can detect whether the person is standing or lying down, and can detect changes in the person's movement. Accordingly, the sensor (330) can detect upper body movement in a standing or lying state and transmit this to the control unit.
[0056] It includes an extension part (200) positioned between the upper cover (310) of the mounting part (300) and the base (100). In one embodiment of the present invention, the extension part (200) may be formed as a rigid rod having a hollow structure, and may include a wire (230) inside the hollow structure. Accordingly, power applied from the base (100) may be transmitted to the mounting part (300) through the wire (230). In another embodiment of the present invention, the extension part (200) may include a flexible material, and may be positioned between the mounting part (300) and the base (100). In this way, the extension part (200) of the present invention may include all components positioned between the base (100) and the mounting part (300), and may perform a function of transmitting power applied to the extension part (200) to the mounting part (300).
[0057] The two ends of the extension (200) include regions that are fastened to the case (110) and the upper cover (310), respectively. More preferably, one end of the extension (200) that is inserted into the tilting slot (340) located in the upper cover (310) includes a fastening portion, and the fastening portion may include a protrusion (220) that is inserted into the tilting slot (340). Furthermore, the other end of the extension (200) may include a recessed portion (210) that is inserted into and fixed to the inside of the case (110). Furthermore, the fastening portion located at one end of the extension (200) may be electrically connected to the conductive portion (240) located at the other end of the extension (200), and the conductive portion (240) and the fastening portion are configured to be electrically connected to each other through a wire (230) located inside the extension (200).
[0058] In one embodiment of the present invention, when a mounting portion (300) is positioned on an extension portion (200) formed of a rigid body, the mounting portion (300) is configured such that the sensing area tilts with respect to the extension portion (200). Furthermore, the mounting portion (300) may be fastened to have at least three tilting angles so as to have different angles with respect to the extension portion (200).
[0059] Here, the sensing area may mean the back surface of the lower cover (320) and may mean one surface forming the mounting portion (300).
[0060] As illustrated in FIG. 3, the base (100) includes a cover portion configured to wrap around the outside, an external connector (120) connected to an external power source on the outside of the cover portion, a fixing unit (130) into which an extension portion (200) is inserted and fixed, and an internal connector (150) connected to a power supply portion (240) of the extension portion (200). Furthermore, power supplied through the external connector (120) is applied to the internal connector (150) through a PCBA (140) (Printed Circuit Board Assembly).
[0061] More preferably, the internal connector (150) may include a four-point fastening structure extending from the PCBA (140) and may be configured to be electrically connected to the conductive portion (240) of the extension portion (200). Furthermore, the conductive portion (240) of the extension portion (200) is connected to the wire (230) so that the applied power is transmitted to the mounting portion (300).
[0062] The extension (200) includes a recessed portion (210) located at one end inserted into the inside of the cover portion, and the recessed portion (210) is inserted into and fixed to the insertion portion (131) of the fixing unit (130). Furthermore, the extension may include a guide portion (132) adjacent to the insertion portion (131) that guides the guide portion to be inserted into the inside of the cover portion.
[0063] More specifically, as illustrated in FIGS. 4 and 5, one end of the extension (200) is positioned to be inserted into the inside of the cover portion, and includes a guide portion (132) configured to surround the upper surface of the extension (200). Furthermore, when the extension (200) is inserted into the inside of the cover portion, the recessed portions (210) positioned on both sides of one end of the extension (200) are positioned to face the insertion portions (131) positioned in the cover portion. Accordingly, the insertion portions (131) are inserted into the recessed portions (210) of the extension (200), and the extension (200) is fixed integrally with the cover portion. In addition, the guide portion (132) can simultaneously contact the upper and lower surfaces of the extension portion (200) to regulate the up and down movement of the extension portion (200) inserted into the inside of the cover portion, and the recessed portion (210) can be located on both sides of the extension portion (200) to regulate the left and right movement of the extension portion (200). Accordingly, the extension portion (200) can be firmly maintained in a state of being inserted into the base (100).
[0064] Furthermore, the end of the extension portion (200) includes a conductive portion (240) configured to be connected to an internal connector (150). In an embodiment of the present invention, the internal connector (150) is configured as a fog pin including four pins, and the conductive portion (240) is configured to be conductive with the fog pin. More preferably, power applied to the internal connector (150) may be applied from the outside to the base (100) through the external connector (120) and applied to the internal connector (150) through the PCBA (140) (Printed Circuit Board Assembly).
[0065] FIG. 6 illustrates a side cross-sectional view of a mounting portion (300) as an embodiment of the present invention.
[0066] As one embodiment of the present invention, the mounting portion (300) may be connected to an upper cover (310) and a lower cover (320), and the sensor (330) may be positioned adjacent to the lower cover (320). Furthermore, the upper cover (310) may be connected to an extension portion (200) and may include a tilting slot (340) so that the mounting portion (300) tilts relative to the extension portion (200).
[0067] Moreover, the power applied to the upper cover (310) through the extension (200) is applied to the sensor (330) located in the lower cover (320) through the control unit. Furthermore, the connection pin (312) located in the upper cover (310) is configured as a pogo pin, and the connection pad (324) located in the lower cover (320) is configured as a pogo pad, and they are mutually fastened according to the combination of the upper cover (310) and the lower cover (320). Therefore, power can be applied to the sensor (330) located inside the lower cover (320) by being energized with the connection pad (324).
[0068] The first connection pad (324) and connection pin (312) are positioned with a predetermined rotational angle apart, and when the lower cover (320) is rotated and fastened based on the upper cover (310), the connection pad (324) and connection pin (312) are rotated and fastened to a position where they face each other.
[0069] Additionally, the control unit may be configured to be located in the upper cover (310) or the lower cover (320) to store data measured through the sensor (330) and transmit the same to the outside.
[0070] Figures 7 and 8 illustrate an upper cover (310) and a lower cover (320), and Figures 9a and 9b illustrate a coupling relationship in which the lower cover (320) is rotated and fixed to the upper cover (310).
[0071] As illustrated, the sensor (330) is positioned between the upper cover (310) and the lower cover (320). More preferably, the upper cover (310) may include an upper plate positioned on one side facing the lower cover (320) and may include a connecting pin (312) that is electrically connected to the extension (200).
[0072] The lower cover (320) may include a lower plate facing the upper cover (310) and may include a control unit and a sensor (330) positioned between the lower plate and the outer cover. Furthermore, a connection pad (324) may be positioned to protrude from the upper surface of the lower plate so as to be electrically connected to a connection pin (312) positioned on the upper plate.
[0073] The connecting pin (312) is configured so that power is supplied from the base (100) through the extension (200), and the upper cover (310) and the lower cover (320) are mutually fastened so that the connecting pin (312) and the connecting pad (324) are joined. Furthermore, the control unit (PCB) and sensor (330) that are electrically connected to the connecting pad (324) can be configured so that power is supplied from the base (100).
[0074] It includes a fixing part (311) located on the back surface of the upper cover (310), and the fixing part (311) is inserted into the fixing slot (321) through an opening (322) located on the upper surface of the lower cover (320). More preferably, the opening (322) is located at one end of the fixing slot (321), and after the fixing part (311) is inserted through the opening (322), the lower cover (320) as a whole is rotated along the fixing slot (321) so that the upper cover (310) and the lower cover (320) can be mutually fastened.
[0075] The fixed part (311) is inserted into the fixed slot (321), and when the lower cover (320) rotates in one direction, the fixed part (311) rotates along the inside of the fixed slot (321). Furthermore, the fixed part (311) is mutually engaged with a stopper (323) located at one end of the fixed slot (321), so that the upper cover (310) and the lower cover (320) are fixed as one piece.
[0076] The fixed slot (321) is positioned in response to the rotation of the lower cover (320), and is positioned so that the distance from the center of rotation of the fixed slot (321) becomes closer along the direction of fastening. More preferably, the fixed slot (321) is configured to have a spiral shape that becomes closer to the center as it gets farther from the opening.
[0077] Moreover, the inner end of the fixed slot (321) includes a stopper (323). Therefore, when the fixed part (311) is positioned inside the fixed slot (321) and the lower cover (320) is rotated, the fixed part (311) moves to one end of the fixed slot (321) facing the stopper (323), and a mutual engaging connection can be performed depending on the shape between the stopper (323) and the fixed part (311).
[0078] Moreover, when the lower cover (320) is rotated, the connecting pin (312) of the upper cover (310) and the connecting pad (324) of the lower cover (320) can be moved to a position where they come into contact with each other. That is, when the fixing part (311) is inserted into the opening (322), the connecting pin (312) of the upper cover (310) and the connecting pad (324) of the lower cover (320) are positioned to have a predetermined angle with each other. Thereafter, when the lower cover (320) is rotated and the fixing part (311) is moved to a position where it is mutually engaged with the stopper (323), the connecting pin (312) and the connecting pad (324) can be moved to a position where they come into contact with each other and are energized.
[0079] Therefore, when the upper cover (310) and the lower cover (320) are rotationally connected, the guide pin and the guide pad are configured to come into contact in mutually opposing positions.
[0080] FIGS. 10A and 10B illustrate the tilting angle of the mounting portion (300) in a state where the protrusion (220) of the guide portion is inserted into the tilting slot (340) as an embodiment of the present invention.
[0081] As one embodiment of the present invention, the tilting slot (340) is configured with three slots that are sequentially positioned in a continuous manner. Furthermore, a guide protrusion (350) is included between the tilting slots (340) to maintain the protrusion (220) of the extension (200) in a locked state. As an example, the tilting slot (340) of the present invention is positioned on the upper cover (310) at a position opposite to the protrusions (220) positioned on both sides of the extension (200), and at least three slots may be sequentially positioned on the surface opposite to the protrusions (220).
[0082] In one embodiment shown in FIG. 10a, the protrusion (220) of the extension (200) is positioned by being inserted into the tilting slot (340) located at the lowest position, and the mounting portion (300) can form the sensor (330) surface to have a predetermined angle with respect to the base (100) as shown in FIG. 10b.
[0083] As one embodiment of the present invention, the fastening portion located at the end of the extension portion (200) is positioned so that at least a portion thereof is inserted into the upper cover (310) including the tilting slot (340). The upper cover (310) can be fixed by having protrusions (220) located on both sides of the fastening portion inserted into the tilting slot (340), and a plurality of tilting slots (340) can be sequentially positioned so as to face both sides of the extension portion (200).
[0084] Furthermore, the tilting slots (340) facing one side of the extension (200) may be sequentially positioned and may include a guide protrusion (350) positioned between two tilting slots (340). The guide protrusion (350) may be configured to allow the protrusion (220) of the extension (200) to slide and may be configured to partition adjacent tilting slots (340).
[0085] The tilting slot (340) is configured radially from the inside to the outside of the upper cover (310), and the protrusion (220) of the extension (200) can be inserted and fixed into the tilting slot (340) configured as a radial groove. More preferably, the tilting slot (340) of the present invention can have three grooves having the same central axis positioned on the upper cover (310).
[0086] The protrusion (220) is configured to be inserted into the tilting slot (340) and to be slidably moved to an adjacent tilting slot (340). More preferably, the protrusion (220) may be formed of an elastic member, or may be positioned so that at least a portion of the protrusion (220) is inserted into the extension (200) and then returned to its original position.
[0087] As shown, when the protrusion (220) of the extension (200) is connected to the lowest end of the tilting slot (340) formed continuously, the sensing surface of the mounting portion (300) is configured to form a 15 degree angle with respect to the base (100).
[0088] In comparison, as shown in FIGS. 11a to 11b, when the protrusion (220) of the extension (200) is inserted and positioned at the top of the continuously formed tilting slot (340), the sensing surface of the mounting portion (300) can be positioned to have a 45 degree angle with respect to the base (100).
[0089] Moreover, the tilting slot (340) can be configured with at least two or more, so that the mounting portion (300) can be tilted so that the sensing surface faces the set angle.
[0090] That is, as illustrated in FIGS. 10b to 11b, the sensing surface of the mounting portion (300) may have tilting slots (340) positioned to have an angle of 15 to 45 degrees, and the angle of the mounting portion (300) may be set to correspond to the number of tilting slots (340). Accordingly, the tilting angle of the mounting portion (300) is selectively configured according to the number of set tilting slots (340).
[0091] Fig. 12 is another embodiment of the present invention, showing an extension (200) made of a flexible material.
[0092] As illustrated, the extension (200) is configured to be positioned between the base (100) and the mounting portion (300). Furthermore, power applied from the external connector (120) of the base (100) through the extension (200) is electrically connected to the connecting pin (312) positioned on the upper cover (310) of the mounting portion (300).
[0093] That is, the power supply part (240) of the extension part (200) is positioned so as to be electrically connected to the internal connector (150), and the wire (230) of the extension part (200) is configured to be electrically connected to the connection pin (312) of the upper cover (310). Accordingly, power applied through the base (100) is transmitted to the connection pad (324) of the lower cover (320) through the connection pin (312) of the mounting part (300). Furthermore, the sensor (330) and the control part located in the lower cover (320) are configured so that power is applied through the connection pad (324).
[0094] The mounting portion (300) can be positioned by being attached to a separate bracket (not shown) and fixed to a wall. That is, as shown, the base (100) and the mounting portion (300) are configured to be adjacent to each other and fixed to the wall via the bracket while being mutually connected to each other via the extension portion (200). Accordingly, the mounting portion (300) can be fixed in a free position and receive user biometric information.
[0095]
[0096] The detailed description above is illustrative of the present invention. Furthermore, the foregoing description illustrates preferred embodiments of the present invention, and the present invention can be used in various other combinations, modifications, and environments. In other words, changes or modifications may be made within the scope of the inventive concept disclosed herein, the scope equivalent to the disclosed disclosure, and / or the scope of technology or knowledge in the art. The described embodiments illustrate the best possible state for implementing the technical idea of the present invention, and various modifications required for specific applications and uses of the present invention are also possible. Therefore, the detailed description of the invention above is not intended to limit the present invention to the disclosed embodiments. Furthermore, the appended claims should be construed to include other embodiments.
Claims
1. Base; A mounting part that is electrically connected to the above base and measures biometric information; and Including an extension portion positioned between the above-mentioned mounting portion and the base; A bio-information measuring device in which the above-mentioned mounting part is configured to tilt based on the above-mentioned extension part.
2. In paragraph 1, The above-mentioned mounting part is, An upper cover connected to the above extension; A lower cover rotatably connected to the upper cover; A biometric information measuring device including a sensor for receiving biometric information.
3. In paragraph 2, A plurality of tilting slots located in the upper cover; a guide projection positioned between said plurality of adjacent tilting slots; and A biometric information measuring device comprising a protrusion positioned on the extension and inserted into one of the plurality of tilting slots.
4. In paragraph 3, A bio-information measuring device in which the tilting slots are continuously positioned on the upper cover to form an angle of at least two or more of the mounting portion based on one end of the extension portion.
5. In paragraph 2, A fixed part located on the upper cover; A fixed slot located in the lower cover corresponding to the fixed portion; An opening positioned at one end of the above fixed slot into which the above fixed part is inserted is included; A bio-information measuring device in which the above-mentioned fixed part is inserted through the above-mentioned opening and rotated inside the above-mentioned fixed slot.
6. In paragraph 5, A bio-information measuring device further comprising a stopper positioned inside the fixed slot and into which the rotated fixed part is inserted and fastened.
7. In paragraph 1, The above base is, case; An external connector connected to the above case and supplied with power from the outside; A fixing unit for fixing the above extension; and A bio-information measuring device including a PCBA (Printed Circuit Board Assembly) connected to a power source supplied through the external connector.
8. In paragraph 7, The above fixed unit is, An insert connected to a recess located at one end of the above extension; and A bio-information measuring device including a guide section that guides the movement of the extension section.
9. In paragraph 7, A bio-information measuring device including an internal connector fastened to the PCBA so as to be electrically connected to a conductive part located at the end of the extension part.
10. In paragraph 9, A bio-information measuring device in which the extension part includes a wire so that the base and the mounting part are electrically connected.
Citation Information
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