Safety device and method for using a safety device

The safety device addresses the challenge of detecting manipulation in RFID systems by using sensors to monitor the presence and state on a carrier, ensuring continuous and reliable monitoring and alerting mechanisms.

DE102011001169B4Active Publication Date: 2025-06-26MAXIM INTEGRATED PROD GMBH
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Patent Information

Application Number
DE102011001169
Authority / Receiving Office
DE · DE
Patent Type
Patents
Current Assignee / Owner
Filing Date
2011-03-09
Publication Date
2025-06-26
Estimated Expiration
2031-03-09

AI Technical Summary

Technical Problem

Existing RFID systems with sensors cannot reliably detect if the system has been manipulated or removed from a monitored object and reattached, which can lead to undetected irregularities in storage conditions.

Method used

A safety device equipped with sensors that monitor the intact state and presence on a predetermined carrier, using capacitive and inductive sensors to detect material properties and movements, with an electronic system for signal evaluation and triggering actions upon deviation from setpoint signals.

Benefits of technology

The safety device effectively prevents removal or reattachment by detecting changes in material properties and movements, ensuring continuous monitoring and alerting mechanisms to prevent manipulation.

✦ Generated by Eureka AI based on patent content.

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Abstract

safety device, - which has sensors (5, 6) for checking the intact condition of the safety device (1) and the presence of a predetermined carrier (9) of the safety device (1), - wherein the carrier (9) is an object, in particular a mechanical or electronic component, characterized in that the sensors (5, 6) are configured such that they - Determine the material properties of the carrier (9) and the safety device (1) and - generate a signal for the material properties and - the sensors (5, 6) for signal evaluation are connected to an electronic system (3) which is configured to compare an actual value of the signal with a predetermined target value and to trigger an action if the actual value deviates from the predetermined target value.
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Description

[0001] The present invention relates to a safety device with sensors for checking the intact condition of the safety device and the presence of a predetermined carrier of the safety device, wherein the carrier is in particular a mechanical or electronic component, and to a method for using a safety device.

[0002] An RFID system with a sensor is known from US Pat. No. 7,106,199 B2. The RFID system is arranged in a label and contains an IC component and a coil. Furthermore, a sensor is assigned to the RFID system. The sensor is designed to measure specific information, which can determine, for example, temperature, humidity, pressure, lighting, or other characteristics. With such an RFID system with a sensor, the product properties of the object to which the RFID system is attached can be determined and monitored. Such RFID systems can therefore be used, for example, in the storage of sensitive foodstuffs where it is necessary to keep the food under certain conditions, e.g., within a certain temperature range.

[0003] The disadvantage of such an RFID system is that it is impossible to verify whether the RFID system has been tampered with. For example, the RFID system could be removed from the monitored goods and then reattached at a later date. This would prevent the sensor from detecting any impermissible irregularities in the storage of the goods.

[0004] EP 0 511 807 A1 discloses a sensor unit that can detect when it has been moved to another location, for example, to conceal the failure of a cold storage room. Accordingly, the device for such applications comprises a base unit that cooperates with a sensor unit so that the separation of the sensor unit from the base unit can be detected or otherwise ascertained. The sensor unit contains memory means for storing the measurement data and the associated time data; the data relating to the separation can be stored. However, a removal of the base unit together with the sensor unit from one specific location to another cannot be ascertained.

[0005] The object of the present invention is therefore to provide a safety device with sensors which can in particular monitor whether it has been removed from a predetermined carrier, for example a food item.

[0006] The object is achieved with a safety device and a method for using such a safety device having the features of the independent claims.

[0007] The security device according to the invention has sensors for checking the intact condition of the security device. Furthermore, it checks for the presence of a predetermined carrier of the security device. The predetermined carrier of the security device can be any object, for example a mechanical or electronic component, a vehicle, or even food or other goods for which it is important that the security device remains connected to the product or component and that no tampering can occur by removing the security device from the object. In particular, the aim is to prevent the security device from being removed from the predetermined carrier or from being applied to another carrier in order to deprive the original carrier of monitoring or marking.According to the invention, the safety device is equipped with sensors that detect material properties of the carrier and the safety device. Movements and / or accelerations of the safety device relative to the carrier are advantageously also detected. To evaluate the signals from these sensors, the sensors are connected to electronics. The electronics evaluate the sensor signals, and if it is determined that the signals do not correspond to a specific target signal, an action is triggered. Such an action can, for example, be the generation of an acoustic or optical signal, the transmission of a wirelessly transmitted message (radio message), the transmission of wirelessly transmitted status information, or even simply the storage of this signal deviation in order to be able to detect this signal deviation at a later time.The signal deviation is then used to draw conclusions about manipulation of the safety device.

[0008] In a preferred embodiment of the invention, the sensor for detecting the material properties of the carrier and / or the safety device is of a capacitive and / or inductive type. Voltage changes that occur due to or during the removal of the safety device from the carrier or due to the replacement of the carrier are detected by the sensor and forwarded to the electronics for signal evaluation.

[0009] If, in an advantageous embodiment of the invention, the sensor for detecting the movements and / or accelerations of the safety device relative to the carrier is an acceleration, magnetic field and / or yaw rate sensor, signals can be generated which indicate a movement of the safety device relative to the carrier. In particular, if the carrier is a large and inert object, such as a vehicle, certain accelerations or movements of the object are expected during normal operation. However, when the safety device is detached from the carrier, significantly different accelerations and movements are achieved due to the significantly lower mass of the safety device compared to the carrier object. These differences between the actual and target values ​​are used to evaluate the tampering of the safety device.

[0010] Preferably, the safety device is provided with means for permanently attaching the safety device to the support. This means can be, for example, an adhesive device, but also a welded or soldered joint, or even a screwed or riveted connection. The safety device can also be welded or cast into the support. Since the support can be made of a conductive or non-conductive metal or plastic, or even another material, the choice of attachment means also depends on this material and can be selected appropriately.

[0011] It is particularly advantageous if the security device is attached to a metallic support. It may be sufficient for the object to be monitored to be metallic, at least where the security device is attached. This allows the security device to detect tampering particularly easily and reliably, as the metallic support generates very clear signals from the capacitive and inductive sensors, as well as the magnetic field sensors. The security device according to the invention can, of course, also be used with non-metallic supports; although the measurement results of the individual sensors differ from those of metals, they can still be evaluated in the same way.

[0012] It is particularly advantageous if the capacitive sensor has an electrode of a capacitor integrated into the safety device, which interacts with the carrier as a second electrode or with another electrode integrated into the safety device. It is particularly advantageous if the electrodes are positioned opposite each other, i.e., if the first electrode is arranged in the safety device and the second electrode is arranged in the carrier.

[0013] The capacitance generated in this way can be measured very easily. If, for example, the capacitive sensor is supplied with a constant alternating current, a change in the distance between the carrier and the safety device, as would occur, for example, if the safety device were to be detached from the carrier, results in a change in the capacitance or a change in the amplitude of the alternating voltage. The capacitance or the amplitude of the alternating voltage also changes if an attempt is made to replace the carrier with another carrier, particularly one made of a different material. If, for example, the electrodes of the capacitor are located inside the safety device, the measured capacitance will be very small if the safety device is not attached to the carrier. If the safety device is located on a plastic object, the capacitance will be medium, whereas for a metal object the capacitance will be large.The different electrical constants lead to different capacitance signals and thus allow conclusions to be drawn about the material on which the safety device was attached or from which it was removed.

[0014] The electrode integrated into the safety device is, in particular, a metal foil. This is particularly easy to install in the safety device and can be used as the electrode of the capacitive sensor.

[0015] In a particularly advantageous embodiment of the safety device, the inductive sensor of the safety device is an eddy current sensor. A ferrite core is surrounded by a winding. When an alternating current flows through this winding, which represents a coil, the carrier induces eddy currents. The alternating current resistance of the coil changes as a result, generating an electrical signal. This electrical signal can be used to determine the distance between the eddy current sensor and the carrier. The eddy current sensor requires a conductive object, e.g., a metal object, as a carrier.

[0016] The eddy current effect measures energy loss (absorption) in a conductive medium, independent of its magnetic behavior. The inductance changes due to the magnetic properties of the substrate, regardless of its conductivity. In practice, iron, for example, is both conductive and magnetic. A mixed effect therefore occurs here. If the substrate is made of iron, a high inductance is generated, whereas a substrate made of aluminum or copper, for example, produces a low inductance. This inductive sensor thus determines the distance between the sensor and the safety device and the substrate.If the distance changes when the safety device is attempted to be detached from the wearer, a signal is generated which, like the capacitive signal, can be recorded or can lead to an action initiated by the safety device, such as the generation of an optical or acoustic signal, the sending of a wirelessly transmitted message (radio message) or the transmission of wirelessly (radio) transmitted status information.

[0017] If the security device is at least partially integrated into a label, this makes it particularly easy to apply. The label used to secure a specific product, component, or other object can appropriately incorporate the security device, which can be very small.

[0018] It is particularly advantageous if the electronics used to evaluate the signals from the safety device's sensors are also connected to the label. This avoids complex cabling, which would create a further opportunity for tampering with the safety device. The electronics can be integrated into the label, for example, just like the sensors, and are inaccessible from the outside without destroying the label. This ensures a particularly high level of security for the safety device against destruction or tampering.

[0019] If the integrated electrode of the capacitive sensor and / or the inductive sensor is arranged in a layer of the label, a simple production yet extremely secure design of the security device is possible. In particular, the inductive sensor is independent of a non-metallic layer of the label in terms of its inductance. The capacitive sensor arranged in a layer of the label can also detect a specific capacitance. Since the level of capacitance is not decisive for determining the condition of the security label on the carrier, but only the change in capacitance, this is also harmless. By arranging the sensors in a layer of the label, the sensors can be attached and protected from environmental influences and are thus also secured against damage or tampering.

[0020] It is particularly advantageous if the label also has an RFID sensor. The RFID sensor can enable additional functions of the safety device. For example, the presence of the safety device or the label can be detected by a reader. Likewise, the sensor signals can be transmitted to a reader via the RFID sensors. With this active status transmission, an alarm occurs, for example, when the status transmission stops for a while or an alarm message is sent.

[0021] If the label is self-adhesive, it can be easily applied to the carrier. When the label is removed from the carrier, significant signal changes are generated by the sensors.

[0022] In the method according to the invention for using the safety device, the state of the safety device and the presence of a predetermined carrier are determined multiple times in different ways. For example, signals are used which are obtained as actual values ​​through both inductive and capacitive measurement and which are compared with predetermined target values ​​in an electronic system. If at least one of the actual values ​​deviates from the target values, an action can be triggered, for example. The multiple and varied monitoring of the safety device with regard to the predetermined carrier ensures a particularly high level of security against tampering. Material properties of the carrier and the safety device are recorded.Both the detachment of the safety device from the carrier or simply the transfer of the safety device to another carrier triggers detectable signal changes from the sensors, which can be stored or used to generate a warning signal. The associated electronics monitor the deviation of the specified target values ​​from the actual values ​​and thus detect any attempted tampering with the safety device. The various sensors that detect tampering with the safety device can determine, for example, the distance and the material of the carrier on which the safety device is mounted.

[0023] If the distance and / or position of the safety device to the carrier and the material of the carrier are determined by the sensors and their signals, the manipulation of the safety device can be determined by comparing these criteria with a target value if these values ​​should change.

[0024] If an alternating current is applied to the sensors and the signal amplitude and / or signal frequency is analyzed, a change in distance, position or a change in the carrier material can be determined.

[0025] Advantageously, the signals are obtained from measurements of the movements and / or accelerations of the safety device relative to the wearer. This can detect various types of manipulation.

[0026] Further advantages of the present invention are described in the following embodiments. Fig. 1 a plan view of a safety device according to the invention, Fig. 2 a section through a safety device of the Fig. 1 on a carrier, Fig. 3 a section through a safety device in the area of ​​the capacitive sensor, Fig. 4 a section through a safety device on a plastic carrier in the area of ​​the capacitive sensor, Fig. 5 a section through a safety device on a metal carrier in the area of ​​the capacitive sensor, Fig. 6 an inductive sensor of a safety device and Fig. 7 an inductive sensor of a safety device on a metal carrier.

[0027] In Fig. Figure 1 shows a top view of a safety device 1 according to the invention. In the illustrated embodiment, the safety device 1 is a label 2 on which electronics 3 are arranged. The electronics 3 evaluates the signals generated by a capacitive sensor 5 with electrodes 4 and by an eddy current sensor 6, which operates with inductive signals.

[0028] The capacitive sensor 5 has electrodes 4, which are formed as plate-shaped metal foils and integrated into the label 2. The electrodes 4 are connected to the electronics 3 via conductor tracks 7. At their ends in the electronics 3, the capacitance of the electrodes 4 or the capacitive sensor 5 can be detected and evaluated.

[0029] The eddy current sensor 6 is arranged in the area of ​​the electronics 3 and is thus also connected to the label 2. The inductive signals of the eddy current sensor 6 are also evaluated in the electronics 3. The safety device 1 is connected to an alternating current source (not shown). Both the eddy current sensor 6 and the capacitor 5 are operated via the alternating current. Changes in the alternating current signal or changes in the capacitance or inductance lead to the detection that the position of the safety device 1 relative to a carrier on which the safety device 1 is arranged has changed. This signal change and thus the change in the position of the safety device 1 relative to the carrier can be evaluated by the electronics 3 and stored for later analysis or immediately displayed by an acoustic or optical signal.

[0030] Due to the schematic representation of the Fig. 1, the sensor designated as eddy current sensor 6 can also be an acceleration or yaw rate sensor. Such sensors, which are, for example, MEMS sensors, can also be integrated into the safety device 1 shown. They can be used instead of one or both of the sensors 5, 6 shown or in addition to one or both of the sensors 5, 6. In any case, it is important that manipulation of the safety device 1 with respect to the carrier 9 (see Fig. 2) is detected by a change in signals compared to the unmanipulated state.

[0031] In Fig. 2 is a section through a safety device 1 of the Fig. 1. The label 2 contains the electrodes 4, which in this embodiment are integrated into the label 2, for example, cast in. Also connected to the label 2 are the electronics 3 and the eddy current sensor 6.

[0032] The label 2 is attached to the carrier 9 by means of an adhesive layer 8. An attempt to remove the adhesive layer 8 either involves changing the position or distance of the label 2 from the carrier 9, or attempts are made to insert an element between the adhesive layer 8 and the carrier 9. This also changes the distance of the label 2 from the carrier, or at least changes the material of the carrier 9 detected by the sensors of the security device 1 by inserting a removal device between the two. Both types of changes are detected by the sensors and can be evaluated accordingly.

[0033] In Fig. Figure 3 shows a section of a label 2 in the area of ​​the electrodes 4. The label 2 is not attached to a carrier 9. The electrodes 4 form a very small capacitance via the dielectricity of the air. This very small capacitance can be detected by the electronics 3, and during the evaluation, it can be concluded that the label 2 is not attached to a carrier 9.

[0034] In Fig. 4 is label 2 from the Fig. 3 is attached to a plastic carrier 9'. The electrodes 4 have a medium-high capacitance due to the higher dielectric constant of the plastic material. The electronics 3 thus determines that the material of the carrier 9' of the label 2 is neither air nor metal.

[0035] In Fig. 5, the label 2 is arranged on a metal carrier 9". The metal of the carrier 9" short-circuits the field between the electrodes 4, so that the gap between the capacitor plates or electrodes 4 is small. The resulting capacitance is large. The electronics thus determine that the label 2 is arranged on a metal carrier 9".

[0036] In addition to the properties of the carrier material 9' or 9" from the figures mentioned above, the material of the label 2 also plays a role. If the label 2 were to be manipulated in any way, the capacitance would also change here, since the dielectric constant would be changed by the introduction of a different material and would thus lead to a change in the target capacitance.

[0037] With the capacitive measuring capacitor 5 it is thus possible to measure the material properties of both the substrate, i.e. usually the carrier 9, and the material properties of the security device 1 or the label 2 and to detect changes.

[0038] Fig. Figure 6 shows a schematic representation of an eddy current sensor 6. The eddy current sensor 6 consists of a ferrite core 10 and a winding 11. The eddy current sensor 6 is connected to the label 2, for example, cast into it. If the eddy current sensor 6 is subjected to an alternating current, a magnetic field 12 is generated. The inductance is large, as is the electrical charge, since in the present embodiment the Fig. 6 the label 2 is not attached to any carrier 9.

[0039] If the eddy current sensor 6 is located according to Fig.7 with the label 2 on a carrier 9, an eddy current is induced by the field of the coil consisting of a ferrite core 10 and winding 11. If the carrier 9 is made of iron, the inductance is high. If, on the other hand, the carrier 9 is made of aluminum, copper, or a similar metal, the inductance is low. If the carrier 9 is made of a conductive material, the absorption is high; if it is non-conductive, however, the absorption is low. If the carrier 9 is made of a ferromagnetic material, the inductance increases; if it is a paramagnetic material, the inductance decreases.

[0040] The eddy current sensor 6 can detect material properties, such as their conductivity or magnetic properties, of the substrate and the carrier film of the label 2. If the label 2 is tampered with in such a way that metal is introduced between the eddy current sensor 6 and the carrier 9, the inductance changes. The same applies if the carrier material 9 is changed. The distance of the eddy current sensor 6 from the carrier 9 can also be detected by a change in the inductance. Manipulations of the safety device 1, in which the safety device 1 or the label 2 is lifted from the carrier 9, are thus detected by the eddy current sensor 6, as are changes to the carrier material or the material of the label 2.

[0041] The safety device 1 according to the invention offers a very high level of security against tampering attempts. Both the replacement of individual materials and the change in the distance of the safety device 1 from a carrier 9 can be detected and evaluated by the electronics. Using appropriate sensors, the relative movement with respect to the carrier can also be detected.

[0042] The security device can of course also be integrated into elements other than a label 2 or a film. All components which are particularly critical with regard to detaching from their carrier can be equipped with it. The label 2 or the security device 1 can also be linked to an RFID sensor (not shown). This allows the signals from the electronics to be transmitted to a reader or further information about the label 2 or the carrier 9 to be transmitted. The identification of the carrier 9 is thus just as possible as the evaluation of the history of the carrier 9. In particular for the evaluation of this history of the carrier 9 or the corresponding object, additional sensors, as known from the prior art, can be linked to the security device 1. This can ensure that the carrier 9 orthe object has experienced a prescribed history, for example, regarding temperature, humidity, or pressure, for example during a transport or storage process. Manipulation, for example, by replacing these sensors, is protected against tampering by the associated security device 1.

[0043] The present invention is not limited to the illustrated embodiments. The individual sensors can also be combined with one another in ways other than those described in the exemplary embodiments. Likewise, all other disclosed individual features of the invention can be combined with one another, even if they were not described in this way. Accordingly, modifications within the scope of the patent claims are possible at any time.

[0044] It is particularly advantageous that the invention can be implemented in such a way that the safety device is designed such that the destruction of the safety device upon removal also results in an irreversible change in the measured values. In particular, the contact resistance of a loop or the capacitance is changed upon removal to such an extent that the original state can no longer be achieved. It can also be provided that the label has predetermined breaking (tearing) points so that it is destroyed in a defined manner upon removal. List of reference symbols 1 safety device 2 labels 3 Electronics 4 electrodes 5 capacitive sensor 6 Eddy current sensor 7 conductor tracks 8 adhesive layer 9 carriers 9' plastic carrier 9" metal carrier 10 ferrite cores 11 winding

Claims

[1] Safety device, - which has sensors (5, 6) for checking the intact condition of the safety device (1) and the presence of a predetermined carrier (9) of the safety device (1), - wherein the carrier (9) is an object, in particular a mechanical or electronic component, characterized by that the sensors (5,6) are configured to - Determine the material properties of the carrier (9) and the safety device (1) and - generate a signal for the material properties and - the sensors (5, 6) for signal evaluation are connected to an electronic system (3) which is configured to compare an actual value of the signal with a predetermined target value and to trigger an action if the actual value deviates from the predetermined target value. [2] Safety device according to the previous claim, characterized bythat the sensor (5,6) for detecting the material properties of the carrier (9) and / or the safety device (1) is of a capacitive and / or inductive type. [3] Safety device according to one or more of the preceding claims, characterized by that the sensor (6) is configured such that it can detect movements and / or accelerations of the safety device (1) relative to the carrier (9) and is an acceleration, magnetic field and / or rotation rate sensor for detecting movements and / or accelerations of the safety device (1) relative to the carrier (9). [4] Safety device according to one or more of the preceding claims, characterized by that the safety device (1) has means for fixed attachment to the support (9). [5] Safety device according to one or more of the preceding claims, characterized bythat the safety device (1) is intended for attachment to a metallic support (9) at least at the attachment location. [6] Safety device according to claims 2 to 5, characterized by that the capacitive sensor (5) has an electrode (4) of a capacitor integrated in the safety device (1), which electrode interacts with the carrier (9) as a second electrode or with a further electrode (4) integrated in the safety device (1). [7] Safety device according to claim 6, characterized by that the integrated electrode (4) is a metal foil. [8] Safety device according to one or more of claims 2 to 7, characterized by that the inductive sensor (6) is an eddy current sensor. [9] Safety device according to one or more of the preceding claims, characterized by that the safety device (1) is at least partially integrated into a label (2). [10] Safety device according to claim 9, characterized by that the electronics (3) is connected to the label (2). [11] Safety device according to one of claims 9 or 10, characterized by that the integrated electrode (4) of the capacitive sensor (5) and / or the inductive sensor (6) and / or the acceleration, magnetic field and / or rotation rate sensor is arranged in a layer of the label (2). [12] Safety device according to one or more of claims 9 to 11, characterized by that the label (2) has an RFID sensor. [13] Safety device according to one or more of claims 9 to 12, characterized by that the label (2) is self-adhesive. [14] Method for using a safety device (1) according to the preceding claims, characterized bythat the state of the safety device (1) and the presence of a predetermined carrier (9) on the safety device (1) is determined several times and in different ways, wherein - material properties of the carrier (9) and the safety device (1) are recorded, - wherein signals are used which are received as actual values ​​and which are compared in an electronic system (3) with predetermined target values ​​and an action is triggered if at least one of the actual values ​​deviates from the target values. [15] Method according to the preceding claim, characterized by that the distance and / or position of the safety device (1) to the carrier (9) and the material of the carrier (9) are determined by the sensors and their signals. [16] Method according to one or more of claims 14 to 15, characterized bythat an alternating current is applied to the sensors and the signal amplitude and / or signal frequency is analyzed. [17] Method according to one or more of the preceding claims, characterized by that the signals are obtained from measurements of the movements and / or accelerations of the safety device (1) relative to the carrier (9).

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