MONITORING DEVICE
20180012472 · 2018-01-11
Inventors
Cpc classification
G08B21/0286
PHYSICS
G08B21/0247
PHYSICS
G08B21/023
PHYSICS
International classification
Abstract
A wireless monitoring device, comprising: a housing (10) in which is contained a wireless communication circuit for sending and receiving wireless signals; first and second flexible band portions (12, 14) connected at respective first ends to opposing edges of said housing; at least one antenna coupled to said wireless communication circuit; a connection device (16) for connecting second ends of said first and second band portions (12, 14) together to form a flexible band configured to attach the device to a user; at least one magnet (22) positioned in said first band portion (12); and a magnetic field sensor positioned in said second band portion, wherein said magnetic field sensor (20) is arranged to detect said at least one magnet (22) when said band portions (12, 14) are connected together.
Claims
1-14. (canceled)
15. A wireless monitoring device, comprising a housing in which is contained a wireless communication circuit for sending and receiving wireless signals; a flexible band configured to attach the device to a user; and an antenna coupled to said wireless communication circuit; wherein said wireless communication circuit is configured to: normally operate in a low-power hibernation mode and, periodically and/or in response to a manual location request signal received from a remote location, operate in an active mode in which it searches for a location data source, wirelessly transmits location data to a remote location if a location data source is identified, and wirelessly transmits an alert signal to a remote location if a location data source is not found, before returning to said low-power hibernation mode.
16. The device according to claim 15, wherein said antenna is positioned in said flexible band and connected to said wireless communications circuit.
17. The device according to claim 15, wherein in said low-power hibernation mode, said wireless communication circuit and said antenna are substantially inoperative, and operative only to receive a manual location request signal.
18. The wireless monitoring device, comprising: a housing in which is contained a wireless communication circuit for sending and receiving wireless signals; first and second flexible band portions connected at respective first ends to opposing edges of said housing; at least one antenna coupled to said wireless communication circuit; a connection device for connecting second ends of said first and second band portions together to form a flexible band configured to attach the device to a user; at least one indicator device having a physical property positioned in said first band portion; and a sensor configured to detect said physical property positioned in said second band portion, wherein said sensor is arranged to detect said at least one indicator device when said band portions are connected together.
19. The device according to claim 18, wherein said indicator device comprises a magnet and said sensor is a magnetic field sensor.
20. The device according to claim 18, wherein said at least one antenna is positioned in at least one of said first and second band portions, and connected to said wireless communication circuit.
21. The device according to claim 19, wherein an elongate magnetic strip is positioned in the first band portion, which extends along at least a portion of its length from a position close to its second end.
22. The device according to claim 19, wherein a row or array of individual magnets may be positioned along at least a portion of the length of the first band portion.
23. The device according to claim 18, wherein the connection device comprises a loop or ring on said second band portion, wherein the first band portion is configured to be threaded through the loop or ring in order to connect the second ends of the first and second band portions together.
24. The device according to claim 23, wherein at least one of the opposing longitudinal side edges of the first band portion is serrated, in order to provide a frictional connection between the first band portion and the loop or ring.
25. The device according to claim 23, wherein an opening is provided near the distal end of the second band portion and configured to allow the distal end of the first band portion to be threaded therethrough before being inserted through the loop or ring in order to connect the first and second band portions together.
26. The device according to claim 19, wherein the magnetic proximity sensor is configured to transmit a signal to the wireless communication circuit in the event that magnetic proximity with the at least one magnet is lost.
27. The device according to claim 19, wherein the magnetic proximity sensor is configured to transmit a continuous or intermittent signal to the wireless communication circuit whilst magnetic proximity is detected and cease transmission of said signal in the event that magnetic proximity is lost.
28. The device according to claim 26, wherein the wireless communication circuit is configured to transmit an alert signal to a remote location in the event that magnetic proximity is determined to have been lost.
Description
[0014] These and other aspects of the present invention will be apparent from the following specific description in which embodiments of the present invention are described by way of examples only and with reference to the accompanying drawings, in which:
[0015]
[0016]
[0017]
[0018]
[0019]
[0020] Referring to
[0021] Referring additionally to
[0022] An array of magnets or a magnetic strip 22 is embedded within the first band portion 12 and a magnetic field detection module including, for example, a magnetic proximity switch 20 is embedded adjacent the distal end of the second band portion 14. When the band portions are correctly secured together, the magnetic proximity switch is active and transmits a signal, via a flexible conductor 23 embedded in the first band portion 12, to the electronic circuitry held within the housing 10. In the event that the proximity switch signal stops, thus indicating that the band portions are no longer correctly secured together, the circuitry is configured to detect this and generate an alert. In one exemplary embodiment, such an alert may comprise the generation and transmission of an SMS message to the user application of the monitoring person.
[0023] As stated above, a magnetic proximity switch 20 is provided in a first band portion 12 of the monitoring device, and a circuit diagram of a typical magnetic proximity switch is illustrated in
[0024] Referring to
[0025] The device 100 further receives signals from the above-mentioned magnetic proximity sensor, which function is illustrated in
[0026] Referring to
Step 200: The monitoring device is affixed to a monitored person's wrist, by means of the process described above, so that it is securely fastened and the magnetic strip is in proximity of the magnetic proximity sensor.
Step 201: The circuitry within the device receives a signal from the magnetic proximity sensor and transmits an actuation signal to the server; and the server returns an acknowledgement signal.
Step 202: if the monitoring device and the parent's mobile application are not already paired, the device transmits an SMS message to the parent's mobile telephone number, in response to which the mobile application transmits an SMS message back from the parent's mobile telephone to the monitoring device, in response to receipt of which, the device and the application are paired.
Step 203: The device circuitry is configured to first look for a GPS satellite signal. If this is found, location data therefrom is received and location data is transmitted to the server.
Step 204, if no GPS signal is found, the device circuitry looks for a mapped Wi-fi or mobile telephone base station. If this is found, location data therefrom is received and location data is transmitted to the server.
Step 206: if no location data can be obtained, the device is configured to transmit an alert signal to the server which, in turn, causes an alert message, possibly in the form of an SMS message, to be transmitted to the parent's mobile application to alert them that no location data can be obtained at that time. The device does not continuously “look” for location data: it periodically looks for the GPS signal and then the base station signal and, if neither is found, an SMS message is sent to the parent's mobile application, via the server, before the device returns to its low power hibernating mode, in which it is only “listening” for a manual location request. In this manner, and in contrast to know location finding devices, the battery power can be optimised.
Step 208: If location data is received from the device by the server, the server transmits such location data to the paired mobile application. This may be done periodically, and/or at the request of the parent's mobile application. In one exemplary embodiment, and in order to save power wherever possible, the device may be configured to automatically obtain and send location data every, say, 15 minutes (unless a specific request for location data is received, via the server, from the parent's mobile application), such that, for the majority of time, the device and antenna is in a low power hibernating state, in which it is only “listening” for a manual location request. Such location data is transmitted by the server to the parent's mobile application, where it may be displayed as, for example, a marker on a map.
Step 210: Concurrently to the location data, the device is configured to transmit status data to the server. Status data indicates the status of the device. Thus, it may indicate that the status of the device is operative and location data is available. It may also indicate that the device is no longer securely attached to the child, as the magnetic proximity sensor is no longer transmitting a signal. It may also indicate that no location data is available, or that the device battery has failed. The server may be configured to transmit corresponding status data to the paired mobile application, possibly in the form of an informative SMS message or the like.
[0027] A charger (not shown) may be provided for receiving and pairing the device contacts with a battery charging facility. In some circumstances, it may be desirable to unpair devices from respective mobile applications after use, and the charger may, therefore, be configured to send a message to the server accordingly when the battery reaches a certain level of charge, for example.
[0028] It will be apparent to a person skilled in the art, from the foregoing description, that modifications and variations can be made to the described embodiments without departing from the scope of the invention, as claimed