TESTING DEVICE AND METHOD FOR TESTING CONTAINERS

DE502022004515D1Active Publication Date: 2025-07-24UHLMANN PAC SYST
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Patent Information

Application Number
DE502022004515
Authority / Receiving Office
DE · DE
Patent Type
Patents
Current Assignee / Owner
Priority Date
2021-04-28
Filing Date
2022-04-25
Publication Date
2025-07-24
Estimated Expiration
2042-04-25

AI Technical Summary

Technical Problem

Existing metal detectors for packaging machines are unsuitable for intermittent bottle lines and are costly, making it difficult to effectively detect metallic foreign bodies in containers for ingestible products like medical or pharmaceutical products, food, or dietary supplements.

Method used

A testing device with inductive ring sensors that move relative to the containers, allowing for synchronized detection of metallic foreign bodies in a packaging machine, where the sensors are either movable or the support elements with the containers are movable, with adjustable sensitivity to prevent false positives.

Benefits of technology

Enables simple and cost-effective detection of metallic foreign bodies in containers, ensuring high sensitivity and resolution while minimizing interference, thus preventing contaminated products from entering the distribution system.

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Description

[0001] The present invention relates to a testing device, a packaging machine with such a testing device and a method for testing containers for ingestible products, in particular medical or pharmaceutical products or food or dietary supplements, for foreign bodies, in particular for metallic foreign bodies.

[0002] Packaging machines for filling bottles and bottle-like containers, generally referred to herein as containers, with ingestible products, such as medicinal or pharmaceutical products or food or dietary supplements, and for closing the filled containers are also referred to as bottle lines. In addition to a filling unit for filling the containers and a closing unit for closing the filled containers, such a bottle line can further comprise feed units for desiccants and / or cotton balls. Continuously and intermittently operated bottle lines are known, in which the containers pass through the bottle line continuously or intermittently, respectively.

[0003] In the packaging machine, there is a risk that foreign objects, such as metallic debris, may enter the still-unsealed containers. Containers containing such foreign objects must be reliably detected and must not be allowed to enter the distribution system.

[0004] WO 2013 / 119741 A1 and WO 2015 / 092010 A1, for example, disclose metal detectors that are tunnel-shaped and have a through-opening through which a conveyor belt for conveying products to be inspected is guided. Furthermore, JP 2008 213893 A discloses a testing device with a conveyor belt, in which several support elements and a sensor device are arranged so as to be movable relative to one another, and wherein the sensor is arranged at a distance from the containers to be inspected, on the one hand, and at least partially surrounds the containers to be inspected, on the other hand.

[0005] Such metal detectors are often unsuitable for use in intermittent bottle lines, for example, when the containers are not transported on a conveyor belt, and can be very expensive, contributing to the high costs of the entire bottle line. If the caps or lids of the containers also contain (metallic) seals, the use of X-ray equipment may be necessary to inspect the container contents for metallic foreign bodies, which is also very costly.

[0006] It is therefore an object of the present invention to provide a testing device, a packaging machine and a method which enable a simple and cost-effective testing of the container contents for foreign bodies, in particular for metallic foreign bodies, in cyclical packaging machines.

[0007] This object is achieved by the subject matter of claims 1, 8 and 11. Preferred embodiments are the subject matter of the dependent claims.

[0008] A testing device according to the invention for a packaging machine for packaging ingestible products, in particular medical or pharmaceutical products or food or dietary supplements, in containers is defined in claim 1.

[0009] In this way, a testing device is provided by means of which containers conveyed in a synchronized manner in a packaging machine, such as a bottle line, can be easily checked for foreign bodies, and in particular for metallic foreign bodies.

[0010] The generation of a relative movement between the sensors and the container to be tested in the direction of movement is achieved by either only the sensors being movable and the support elements with the container to be tested being arranged stationary in the test area, or by the sensors being arranged stationary and only the support elements with the containers to be tested being movable, or by both the sensors and the support elements with the containers to be tested being movable. To enable a simple and cost-effective design, preferably only the majority of support elements are designed to be movable.

[0011] Preferably, each container to be tested among the plurality of containers in the test area is already filled with ingestible products. In particular, each container is filled with a plurality of ingestible products, preferably comprising between 10 and 200, more preferably between 10 and 150, and even more preferably between 10 and 120 products. Optionally, each container to be tested can also be already sealed. This can prevent foreign bodies from entering the containers after the plurality of containers have been tested by the testing device.

[0012] In general, the ingestible products are preferably medical products, pharmaceutical products, food or dietary supplements.

[0013] Ingestible products are preferably solids, such as tablets, dragées, or capsules. Ingestible products are preferably loose or in bulk. This applies to both medical or pharmaceutical products, such as medicines, and food and dietary supplements. Food products can be, for example, chewing gum, lozenges, candies, or the like. Dietary supplements include, for example, minerals, vitamins, fatty acids, or the like in powder, tablet, or capsule form.

[0014] The containers of the majority of containers are designed to hold the ingestible products loosely. In other words, the containers are designed to hold unpackaged, individually handled, or bulk ingestible products. However, the ingestible products can also be liquid products. The containers of the majority of containers are then designed to hold the liquid products directly, i.e., to be filled with the liquid products.

[0015] Consequently, the packaging machine is designed to package corresponding ingestible products into the container, in particular to fill the ingestible products directly into the containers and to close the containers.

[0016] The sensors can be inductive sensors for detecting metallic foreign bodies, for example, designed as ring sensors. Such sensors are cost-effective. This has a correspondingly positive impact on the costs of the inspection device or packaging machine. Furthermore, these sensors can be easily integrated into the inspection device or packaging machine and offer sufficiently high sensitivity and resolution to reliably detect even small metallic foreign bodies.

[0017] Preferably, the sensors are configured to detect metallic foreign bodies having a size between 0.5 and 25 mm, more preferably between 1.0 and 2.0 mm. The size may correspond to a diameter of substantially spherical foreign bodies or an edge length of substantially cuboid foreign bodies.

[0018] The sensors are particularly preferably designed to detect foreign bodies made of one of the following materials or a combination thereof: iron, stainless steel, aluminum, brass, non-ferrous metals.

[0019] Preferably, the sensitivity of this plurality of sensors is adjustable.

[0020] In this way, the sensitivity of the sensors can be adjusted depending on the product. In particular, the sensitivity of the sensors can be adjusted depending on the product's properties, such as moisture or metal content. This prevents containers without foreign bodies from being incorrectly identified as defective and rejected due to the product's properties.

[0021] In one embodiment, each of the sensors comprises a first potentiometer and a second potentiometer. The first potentiometer is configured to detect foreign bodies, in particular metallic foreign bodies, in the container to be tested. The second potentiometer is configured to record the actual potential and transmit it to a control device of the testing device or the packaging machine.

[0022] A further advantage of the sensors is that each of the sensors requires only a small metal-free area around the respective sensor, which should not contain any metallic objects to avoid interference with the respective sensor. The metal-free area is preferably defined by a first distance to the sensors parallel to the conveying plane and a second distance to the sensors perpendicular to the conveying plane. The first distance is preferably between 0 mm and 100 mm, more preferably between 0 mm and 75 mm and even more preferably between 0 mm and 50 mm. The second distance is preferably between 0 mm and 200 mm, more preferably between 0 mm and 150 mm and even more preferably between 0 mm and 110 mm. As extreme values ​​of the first and second distances, the specified limit values ​​of the areas are also separately included in this disclosure.Likewise, all intermediate values ​​of the specified ranges, particularly in whole millimeters, should be included in the disclosure content.

[0023] The conveying direction is aligned parallel to the conveying plane. Independently of this and independently of each other, the conveying direction and the conveying plane preferably each run essentially horizontally. The direction of movement is then essentially vertical.

[0024] The conveying plane can be defined by a surface on which the plurality of containers are conveyed in the conveying direction. For example, the surface is a surface of a conveyor table or a conveyor belt. The conveying device can move the plurality of containers, for example, on the conveyor table through the inspection device.

[0025] In order to enable the simplest possible design of the testing device, the relative movement between the sensors and the support elements or the containers to be tested between the first arrangement and the second arrangement is directed exclusively in the direction of movement. The relative movement between the first and the second arrangement is not directed in a direction deviating from the direction of movement. In particular, there is no relative movement between the sensors and the support elements or the containers to be tested in the conveying direction between the first and the second arrangement. The containers of the plurality of containers are containers that can be closed by means of a lid, as are known for holding ingestible containers of the type described herein. Each container has a base, a circumferential wall and a neck.The neck forms an opening in the container through which products can be poured into and removed from the container. The lid is preferably pressed or screwed onto the container, with the neck then having a thread that engages with a thread on the lid. However, the lid can have any desired force-fitting or form-fitting connection to the container, in particular to its neck. The majority of containers can be made of plastic or glass.

[0026] In all embodiments described herein, the containers of the plurality of containers are preferably designed as bottles. All features of the containers described herein also apply to bottles. The term "bottle" can therefore be used synonymously with the term "container" throughout this preferred embodiment. Bottle-like containers, such as ampoules, carpules, or vials, are also intended to fall under the generic term "bottles" herein. This also applies to sealable (plastic) containers or bottles, such as those known, for example, from the field of food and dietary supplements.

[0027] Each container of the plurality of containers is preferably rotationally symmetrical about a central axis. The central axis is preferably aligned perpendicular to the conveying plane and parallel to the direction of movement, at least in the test area. The container to be tested can rest with its base on the support element in the test area.

[0028] The containers of the plurality of containers preferably each have a diameter of between 20 mm and 1000 mm, more preferably between 25 mm and 77 mm.

[0029] A height of the containers of the plurality of containers is preferably between 40 mm and 200 mm.

[0030] In a preferred embodiment, the sensors are ring-shaped, for example as an (inductive) ring sensor or ring detector, as already described.

[0031] The annular sensors each have an opening into which the container to be tested can be inserted, preferably forming a through-hole. An inner circumference of the respective sensor corresponds to an inner circumference of the opening and can be adapted to the shape of the container to be tested. Preferably, the inner circumference of the respective sensor, the inner circumference of the opening, and the container to be tested are essentially cylindrical. Each of the annular sensors then has the shape of a circular ring. However, other geometries are also possible.

[0032] An inner diameter of each annular sensor corresponds to the diameter of the opening and is larger than the diameter of the plurality of containers. Preferably, the inner diameter of each sensor or the diameter of the opening is between 20 mm and 100 mm.

[0033] The height of each sensor in a through-hole essentially corresponds to the depth of the opening in the axial direction of the opening. The height of each sensor or the depth of the opening can be smaller than the height of the majority of containers. The sensors then detect a foreign body during the relative movement between the sensors and the containers to be inspected.

[0034] Particularly reliable detection of foreign bodies can be achieved if the plurality of sensors in the second arrangement completely surround the containers to be inspected in the circumferential direction of the container to be inspected. Preferably, one sensor surrounds exactly one container at a time. This is particularly easy to achieve with the ring-shaped sensor described above, but can also be implemented with other sensors.

[0035] It is further preferred that the testing device comprises an actuator configured to generate the relative movement between the sensors and the support elements. Particularly preferably, the actuator is connected to the support elements and configured to move the support elements parallel to the direction of movement. The actuator can be configured as an electrical, electromagnetic, hydraulic, pneumatic, or mechanical actuator.

[0036] In one embodiment, the support elements can each have a gripper configured to grasp the container to be inspected and move it relative to the respective sensor. The gripper can grasp the container to be inspected from above, from below, or from the side along the peripheral wall. Alternatively, the gripper can grasp the container to be inspected from above or from the side along the neck or the lid, provided the lid is already attached.

[0037] In a particularly preferred embodiment, each container to be tested is arranged on a support element in the test area. Each of the support elements is then designed such that it supports the container to be tested from below in the test area and is movable in the direction of movement. In this case, the support elements can be designed and mounted in a particularly simple manner. The sensors are then preferably arranged stationary to enable a simple and cost-effective construction of the test device. However, the sensors can also be movable.

[0038] Preferably, a contact surface of the support elements on which the containers to be tested are arranged lies in the conveying plane in the first arrangement and not in the conveying plane in the second arrangement. The containers can, for example, stand on the contact surface by means of their base. In this way, the containers to be tested can be placed as easily as possible on the respective support element by means of the conveying device and can then be fed to the sensors by means of the support elements. The contact surface is preferably aligned parallel to the conveying plane, in particular both in the first and in the second arrangement and preferably in all positions between the first and second arrangement.

[0039] The support elements can comprise a suction device for holding the container on the contact surface. For this purpose, the contact surface can have at least one opening that is in fluid communication with a vacuum source. For example, the conveyor table has openings into which the support elements are arranged in the first arrangement. An inner circumferential shape of the respective opening then corresponds to an outer circumference of the respective support element. Containers can be easily arranged on the respective support element and moved from the first to the second arrangement.

[0040] If the majority of support elements are designed to be movable in the direction of movement,

[0041] In a first embodiment, the sensors are arranged below the conveying plane, and the support elements can be lowered relative to the conveying plane. In a second embodiment, the sensors are arranged above the conveying plane, and the support elements can be raised relative to the conveying plane.

[0042] In the first embodiment, the support elements can be mounted, for example, by means of a prestressing element, such as a spring, and preferably prestressed into a position in which the contact surface lies in the conveying plane. The actuator is then preferably arranged and designed such that it acts, for example by means of a plunger, against a prestressing force of the prestressing element on the support elements or on the container to be tested. For this purpose, the prestressing element can be arranged below the support elements and connected to them, and the actuator with the plunger is arranged above the support elements and the container to be tested. The actuator can move the container and the support elements into the second arrangement in the direction of movement by means of the plunger, in particular by pressing them downwards.

[0043] Alternatively, the actuator can be rigidly connected to the plurality of support elements, so that an actuating movement of the actuator is transmitted directly to the support elements. For example, the actuator is arranged below the support elements and configured to move the support elements up and down parallel to the direction of movement. The second embodiment can also be realized in this way.

[0044] In one embodiment, the support elements are movably mounted on a linear guide that extends parallel to the direction of movement.

[0045] The support elements can then be moved along the linear guide by means of the actuator. For example, the actuator is designed as a servomotor and drives the support elements or a connecting element that couples the support elements to the linear guide via a belt drive. This has the advantage that the acceleration of the support elements can be precisely adjusted using the servomotor, preventing products from falling out of the containers, for example, when the containers are still open. However, it is also conceivable to move the support elements using a spindle drive, a hydraulic or pneumatic cylinder drive, or alternative drives.

[0046] In both the first and the second embodiment, the sensors Ce P'1aer are preferably mounted in a stationary manner, for example on a frame or housing of the testing device or the packaging machine.

[0047] Alternatively, the sensors can be movable. In this case, it is preferred that the support elements be stationary, which allows for a simple design of the testing device. For example, the support elements are formed by the conveyor table, whose surface defines the conveying plane. The sensors can be arranged above the conveying plane and can be lowered parallel to the direction of movement.

[0048] To increase the efficiency of the inspection device, the inspection device according to the invention comprises a plurality of sensors and a plurality of support elements. Preferably, each sensor of the plurality of sensors is configured to detect foreign bodies in exactly one container. Each support element of the plurality of support elements preferably accommodates exactly one container of the plurality of containers. Consequently, a support element is preferably assigned to each sensor.

[0049] For example, the testing device comprises at least one further sensor arranged in a further testing region of the testing device and configured to detect foreign bodies, in particular metallic foreign bodies, in a further container of the plurality of containers to be tested. The at least one further sensor and / or at least one further support element of the testing device, by which the further container to be tested is received in the further testing region, are designed to be movable in such a way that a relative movement can be generated between the at least one further sensor and the further container to be tested in the direction of movement between a first arrangement and a second arrangement.In the first arrangement, the at least one further sensor is arranged at a distance from the further container to be inspected in the direction of movement, and in the second arrangement, the at least one further sensor at least partially surrounds the further container to be inspected. Consequently, the inspection device comprises the plurality of sensors, which comprises at least the sensor and the at least one further sensor, for inspecting a plurality of containers to be inspected, which comprises at least the container to be inspected and at least one further container to be inspected.

[0050] According to the invention, the plurality of sensors are arranged one behind the other in the conveying direction. Preferably, the plurality of support elements are arranged one behind the other in the conveying direction. Thus, each sensor can be assigned a support element.

[0051] The plurality of containers can be conveyed in a row through the inspection device, in particular through the entire packaging machine, with the row being arranged parallel to the conveying direction. It is also conceivable for the plurality of containers to be moved in several parallel rows through the inspection device or the packaging machine.

[0052] The plurality of sensors can then be configured to simultaneously inspect the plurality of containers to be inspected. For this purpose, the plurality of sensors and / or the plurality of support elements can be configured to be movable such that the relative movement between the plurality of sensors and the containers to be inspected occurs synchronously.

[0053] In a particularly preferred embodiment, the support elements of the plurality of support elements can be lowered relative to the conveying plane. The support elements of the plurality of support elements can be connected to one another in such a way that they are movable synchronously. In this case, the plurality of sensors is arranged below the conveying plane, preferably stationary.

[0054] Not all support elements of the plurality of support elements need to be synchronously movable or connected to one another. It is also conceivable that a group of support elements from the plurality of support elements, which does not include all support elements, is synchronously movable and preferably connected to one another.

[0055] For example, a group of support elements is mounted on a common connecting element. The connecting element can also connect the group of support elements to the linear guide, as described above. Similarly, the entire plurality of support elements can also be mounted on a common connecting element.

[0056] To prevent sensors from influencing one another, it is further preferred that at least two of the plurality of sensors be operable at a different frequency. More specifically, a first sensor of the plurality of sensors is operable at a first frequency, and a second sensor of the plurality of sensors is operable at a second frequency that differs from the first frequency. The frequency of each sensor is preferably predefined so that it cannot be changed by an operator of the packaging machine. In particular, two of the plurality of sensors can be operated at a different frequency if they are arranged next to one another in the conveying direction.

[0057] All features described for the sensor, the container to be tested and the support element apply analogously to the at least one further sensor, the at least one further container to be tested and the at least one further support element and thus to all sensors, containers to be tested and support elements described herein. For reasons of easier reference and clearer description, regardless of the actual number of sensors, the sensor is also referred to as the first sensor, the container to be tested is also referred to as the first container, and the support element is also referred to as the first support element. In the case of a plurality of sensors, the further sensor is also referred to as the second sensor, the further container to be tested is also referred to as the second container and the further support element is also referred to as the second support element.Analogously, the testing device may comprise at least one third sensor, at least one third container to be tested and at least one third carrier element or each further.

[0058] Preferably, the relative movement between the plurality of sensors and the respective container of the plurality of containers to be inspected occurs between the respective first arrangement and the respective second arrangement in parallel and simultaneously. This means that the direction of movement of each pair of a sensor of the plurality of sensors and the corresponding container to be inspected of the plurality of containers to be inspected is aligned parallel to the direction of movement of the first sensor and the first container.

[0059] A packaging machine according to the invention for packaging ingestible products, in particular medical or pharmaceutical products or food or dietary supplements, in containers is defined in claim 8.

[0060] In this way, a packaging machine is provided by means of which timed containers can be easily checked for foreign bodies, especially for metallic foreign bodies, during the packaging process.

[0061] The packaging machine may further comprise a desiccant feeder configured to feed desiccant into the plurality of containers and, independently thereof, a cotton ball feeder (also referred to as a cottoner) configured to feed cotton balls into the plurality of containers.

[0062] The feed unit is arranged upstream of the filling unit, and the closing unit is arranged downstream of the filling unit. If present, the desiccant feed is preferably arranged between the feed unit and the filling unit. The cotton ball feed, if present, is preferably arranged between the filling unit and the closing unit.

[0063] The simplest and most compact design of the packaging machine is made possible by the fact that the plurality of containers in the packaging machine, in particular between the feeding unit, the filling unit and the closing unit and preferably in the entire packaging machine, are moved in the conveying plane and in the conveying direction.

[0064] The conveyor device of the inspection device is preferably configured to convey the plurality of containers in a timed manner through the filling unit, the closing unit, and the inspection device, and optionally through the entire packaging machine. The conveyor device can comprise a plurality of conveyor elements, which are preferably movable synchronously with one another.

[0065] The packaging machine can be designed as a bottle line, into which all necessary units, feeders, and (testing) devices are integrated. The containers of the plurality of containers are then designed as bottles, as already described.

[0066] The conveyor table may extend through the entire packaging machine, so that the plurality of containers or bottles on the conveyor table are conveyed through at least the units, feeders and (inspection) devices described herein and preferably through all units, feeders and (inspection) devices of the bottle line.

[0067] In principle, the testing device can be integrated into at least one of the feeding, filling, or closing units, or into at least one of the desiccant or cotton ball feed units of the packaging machine. Alternatively, the testing device can be located downstream of one of the feeding, filling, or closing units, or of the desiccant or cotton ball feed units in the conveying direction. In this case, the testing device forms an independent module of the packaging machine.

[0068] It is also conceivable that the packaging machine comprises a plurality of testing devices, wherein each testing device of the plurality of testing devices can be designed or arranged according to one of the variants described above.

[0069] A particularly space-saving design of the packaging machine is achieved when the inspection device is integrated into the filling or closing unit. If available, the inspection device can also be integrated into the cotton ball feeder.

[0070] A testing device integrated into the closing unit, as well as a testing device downstream of the closing unit, offers the advantage that the containers can be closed immediately after testing or are already closed for testing. This minimizes or eliminates the risk of contamination of the container contents with foreign bodies after testing.

[0071] The integration of the testing device into the filling unit or the closing unit can be implemented, for example, as follows.

[0072] In a preferred embodiment, the filling unit comprises a plurality of filling devices, each configured to fill a container of the plurality of containers and arranged spaced apart from one another in the conveying direction. Each sensor of the testing device is then arranged in the conveying direction between two adjacent filling devices of the plurality of filling devices. The testing device comprises a plurality of sensors, each sensor being arranged downstream of a filling device of the plurality of filling devices. Alternatively, each sensor of the plurality of sensors can be arranged upstream of a filling device.

[0073] Additionally or alternatively, the closing unit comprises a plurality of closing devices, each configured to close a container of the plurality of containers and arranged spaced apart from one another in the conveying direction. Each sensor of the testing device is then arranged in the conveying direction between two adjacent closing devices of the plurality of closing devices. The testing device comprises a plurality of sensors, each sensor being arranged downstream of a closing device of the plurality of closing devices. Alternatively, each sensor of the plurality of sensors can be arranged upstream of a closing device.

[0074] Additionally or alternatively, the cotton ball feed comprises a plurality of feed devices, each configured to feed a cotton ball into a container of the plurality of containers and arranged spaced apart from one another in the conveying direction. Each sensor of the testing device is then arranged in the conveying direction between two adjacent feed devices of the plurality of feed devices. The testing device comprises a plurality of sensors, each sensor being connected downstream of a feed device of the plurality of feed devices. Alternatively, each sensor of the plurality of sensors can be connected upstream of a feed device. This can also apply analogously to the desiccant feed.

[0075] As already mentioned, the testing device can alternatively be designed essentially independently of the other units or feeders of the packaging machine, for example, forming a standalone module of the packaging machine. This increases the flexibility of the testing device's arrangement within the packaging machine and allows for a smaller number of variants of the units or feeders, which in turn enables cost reduction.

[0076] The testing device can be arranged, for example, between the filling unit and the closing unit or, if present, between the cotton ball feed and the closing unit. Particularly preferably, the testing device is arranged upstream of the closing unit, in particular between the filling unit and the closing unit.

[0077] In one embodiment, the inspection device can be arranged downstream of the closing unit in the conveying direction. This ensures that containers that have already been inspected cannot ingest any foreign bodies, as they are already sealed at the time of inspection.

[0078] A method according to the invention for testing containers for ingestible products, in particular for medical or pharmaceutical products or food or dietary supplements, is defined in claim 11.

[0079] In this way, a method is provided with which containers conveyed in a synchronized manner in a packaging machine, such as a bottle line, can be easily checked for foreign bodies, and in particular for metallic foreign bodies.

[0080] Unless otherwise described, all steps of the method specified herein are preferably performed in the order specified.

[0081] The method according to the invention is carried out using the test device according to the invention. All features described for the test device according to the invention are therefore transferable analogously to the method according to the invention and vice versa.

[0082] Steps b) to f) are each performed for the plurality of containers. By testing the respective container to be tested according to step d), the container to be tested becomes the tested container, but it is still the same container.

[0083] Preferably, the method comprises repeating steps b) to f) for further containers of the plurality of containers to be tested.

[0084] A plurality of sensors is provided, the method comprises carrying out steps b) to f) simultaneously for several containers of the plurality of containers to be tested.

[0085] For example, steps b) to f) can be carried out simultaneously for the first, second and third containers.

[0086] Step d) can be carried out when the sensors and the containers to be tested are arranged in the second arrangement and / or during the first relative movement according to step c) and / or during the second relative movement according to step e).

[0087] Generating the first relative movement according to step c) preferably comprises lowering the container to be tested relative to the conveying plane, wherein the at least one sensor is arranged below the conveying plane. Alternatively, generating the first relative movement according to step c) comprises raising the container to be tested relative to the conveying plane, wherein the sensors are arranged above the conveying plane. In both cases, the sensors can be arranged stationary to enable a simple construction of the testing device. Lowering or raising the container to be tested, for example by means of the support elements of the testing device, can be implemented particularly easily.

[0088] Additionally or alternatively, generating the first relative movement according to step c) may involve raising or lowering the sensors relative to the conveying plane, with lowering the sensors being preferred due to its simpler implementation. The sensors are then arranged above the conveying plane. The container to be inspected is preferably arranged stationary.

[0089] The second relative movement always occurs opposite to the first relative movement.

[0090] Steps a), b), and f) are preferably performed by means of the conveyor device of the testing device. Steps c) and e) are preferably performed by the plurality of sensors and / or the plurality of support elements of the testing device.

[0091] The method may further comprise filling the plurality of containers, which is preferably carried out by the filling unit of the packaging machine. The method may also comprise closing the plurality of containers, which is preferably carried out by the closing unit of the packaging machine. Optionally, the method may comprise supplying a desiccant to each of the plurality of containers, preferably by means of the desiccant supply, and / or supplying a cotton ball to each of the plurality of containers, preferably by means of the cotton ball supply.

[0092] Steps b) to f) are preferably carried out after filling or after closing the container to be tested.

[0093] If the sensitivity of the sensors is adjustable, the method preferably further comprises the step of: adjusting the sensitivity of the sensors depending on the ingestible products, in particular depending on the nature of the ingestible products.

[0094] This prevents containers without foreign bodies from being incorrectly identified as faulty and rejected, as already described.

[0095] Further features and advantages of the present invention are described below with reference to the accompanying figures. Fig. 1 schematically shows a packaging machine according to the invention with a testing device according to the invention according to a first embodiment. Figs. 2a, b schematically show a testing device according to the invention according to a second embodiment in a first arrangement and in a second arrangement. Figs. 3a-c schematically show various embodiments useful for understanding the invention. Fig. 4 shows a section of the testing device according to the invention in a perspective view.

[0096] In Fig. 1 A packaging machine 2 according to the invention for packaging ingestible products (not shown) in containers 4 is shown schematically in a side view. The packaging machine 2 is designed in particular as a bottle line, which comprises all essential units, feeders, and devices for packaging the ingestible products in the containers 4 designed as bottles. It is understood, however, that the invention is not limited to a bottle line and containers 4 designed as bottles, but applies generally to packaging machines 2 for corresponding containers 4.

[0097] The packaging machine 2 comprises a feed unit 6 configured to feed a plurality of containers 4 into the packaging machine 2, a filling unit 8 configured to fill the plurality of containers 4 with the ingestible products, and a closing unit 10 configured to close the plurality of containers 4, each with a lid 5. Optionally, the packaging machine 2 also comprises a desiccant feed 12 configured to feed desiccant into the plurality of containers 4, and a cotton ball feed 14 configured to feed cotton balls into the plurality of containers 4. Finally, the packaging machine 2 also comprises a testing device 16 configured to check the plurality of containers 4 for foreign bodies, in particular for metallic foreign bodies.

[0098] The testing device 16 comprises a conveyor device 18 configured to move the plurality of containers 4 in a synchronized manner in a conveying direction F through the testing device 16 in a conveying plane 20. The conveying direction F extends parallel to the conveying plane 20. Preferably, the conveying direction F and the conveying plane 20 are aligned horizontally. The conveying plane 20 can be defined, for example, by a surface of a conveyor table 22 on which the plurality of containers 4 are conveyed through the testing device 16.

[0099] The conveyor device 18 preferably grips each of the plurality of containers 4 in a form-fitting manner, as shown by the holding elements 24 in Fig. 1 indicated. For example, the conveyor device 18 is a bar that extends essentially parallel to the conveying direction F and on which projections are attached or formed as holding elements 24. Such a conveyor device 18 is also referred to as a "rake." Alternative suitable conveyor devices are known to those skilled in the art.

[0100] The feed unit 6, the filling unit 8, and the closing unit 10 are arranged one behind the other in the conveying direction F in order to first fill and then close the supplied containers 4. The desiccant feed 12 is preferably arranged between the feed unit 6 and the filling unit 8 in the conveying direction F, and the cotton ball feed 14 is preferably arranged between the filling unit 8 and the closing unit 10 in the conveying direction F. However, they can also be arranged at other locations to adapt to the specific requirements. It is also conceivable for the packaging machine 2 to comprise additional units or processing stations.

[0101] It is particularly advantageous if the conveyor device 18 is designed such that it conveys the plurality of containers 4 not only through the testing device 16 but also through the packaging machine 2, preferably through the entire packaging machine 2. In the illustrated embodiment, the plurality of containers 4 are conveyed by means of the conveyor device 18 from the feed unit 6 through the desiccant feed 12, the filling unit 8, the cotton ball feed 14, the closing unit 10 and the testing device 16 in the conveying plane 20 in the conveying direction F. Accordingly, the conveyor table 22 can extend through the entire packaging machine 2, i.e. from the feed unit 6 to the closing unit 10 and to the testing device 16, and possibly even beyond.

[0102] A particularly space-saving design of the packaging machine 2 results when the majority of containers 4 in the entire packaging machine 2 are moved in the conveying direction F in the conveying plane 20 by the units or devices of the packaging machine 2.

[0103] In the illustrated embodiment, the inspection device 16 is arranged behind the closing unit 10 in the conveying direction F, i.e., downstream of the closing unit 10. This has the advantage that already closed containers 4 are inspected using the inspection device 16. Contamination of the contents of the containers 4 by foreign bodies is therefore no longer possible after the inspection. In this case, the inspection device 16 can be designed as an independent module of the packaging machine 2.

[0104] The testing device 16 can also be arranged at a different location in the packaging machine 2, for example, in the conveying direction F behind the filling unit 8 or the cotton ball feed 14 and thus between the respective unit and the unit following in the conveying direction F. Likewise, the packaging machine 2 can have a plurality of testing devices 16 at different locations. Fig. 2a-b and 3a-c further show embodiments in which the testing device 16 is integrated into a unit of the packaging machine 2, in particular into the filling unit 8, the cotton ball feed 14 or the closing unit 10, as described with reference to these figures.

[0105] As in Fig. 1 As can be seen, the testing device 16 comprises a plurality of sensors, including sensor 26, which is arranged in a testing area 28 of the testing device 16 and is designed to detect foreign bodies, in particular metallic foreign bodies, in a container 4a of the plurality of containers 4 to be tested.

[0106] The inspection device 16 comprises a plurality of sensors. The sensor 26 is therefore also referred to as the first sensor 26, the inspection area 28 is also referred to as the first inspection area 28, and the container 4a to be inspected is also referred to as the first container 4a. Furthermore, in addition to the first sensor, the plurality of sensors here comprises at least one further sensor, such as the second sensor 30, which is arranged in a second inspection area 32 and is designed to detect foreign bodies in a second container 4b to be inspected, and a third sensor 34, which is arranged in a third inspection area 36 and is designed to detect foreign bodies in a third container 4c to be inspected. The plurality of sensors thus comprises the first, second, and third sensors 26, 30, 34. The plurality of sensors 26, 30, 34 are preferably arranged one behind the other in the conveying direction F.The plurality of sensors 26, 30, 34 can be configured to simultaneously test the containers 4a, 4b, 4c to be tested, in this case the first, the second and the third container 4a, 4b, 4c.

[0107] The plurality of sensors 26, 30, 34 may be arranged above the conveying plane 20. Preferably, the plurality of sensors 26, 30, 34 are arranged below the conveying plane 20, as in Fig. 1 dashed lines for the first, second and third sensors 26', 30', 34' and in Fig. 4 presented in more detail.

[0108] In Fig. 1 It can also be seen that the units 8, 10 and feeders 12, 14 as well as the testing device 16 of the packaging machine 2 are preferably designed for filling, closing and testing a plurality of containers 4 of the plurality of containers 4 in order to increase the efficiency of the packaging machine 2.

[0109] For example, the filling unit 8 comprises a plurality of filling devices 38, each of which is configured to fill a container 4 of the plurality of containers and which are arranged at a distance from one another in the conveying direction F. The closing unit 10 can comprise a plurality of closing devices 40, each of which is configured to close a container 4 of the plurality of containers 4 and which are arranged at a distance from one another in the conveying direction F. If present, the desiccant feed 12 can comprise a plurality of first feed devices 42 and the cotton ball feed 14 can comprise a plurality of second feed devices 44, wherein the plurality of first feed devices 42 and the plurality of second feed devices 44 are each configured to feed a desiccant or a cotton ball into a container 4 of the plurality of containers 4 and are arranged at a distance from one another in the conveying direction F.

[0110] For the synchronized operation of the packaging machine 2, it is advantageous if the number of filling devices 38, closing devices 40, first feed devices 42, second feed devices 44, and sensors 26, 30, 34 correspond to the same predetermined number. In the example shown, the predetermined number is three, so that three devices 38, 40, 42, 44 and three sensors 26, 30, 34 are provided. Thus, in each cycle of the packaging machine 2, three containers 4 of the plurality of containers 4 are processed at each unit 8, 10, feed 12, 14, or at the inspection device 16 of the packaging machine 2.

[0111] Fig. 2 shows an embodiment in which the testing device 16 is integrated into the filling unit 8, the closing unit 10, the desiccant feed 12 or the cotton ball feed 14. In the Fig. 2a und 2b For illustrative purposes, all positions are shown occupied by containers 4. It is understood that, in particular, the number, spacing, and timing of the containers 4 can be adapted as required to suit the respective requirements.

[0112] If the testing device 16 and thus the plurality of sensors 26, 30, 34 are integrated into one of the units 8, 10 or feed lines 12, 14, the first sensor 26 is preferably arranged in the conveying direction F between two adjacent devices 38, 40, 42, 44 of the respective unit 8, 10 or feed line 12, 14. With a plurality of sensors 26, 30, 34, each sensor 26, 30, 34 is preferably arranged upstream or downstream of one of these devices 38, 40, 42, 44. The distance between the devices 38, 40, 42, 44 of the respective unit 8, 10 or feed line 12, 14 in the conveying direction must also be adapted to the respective requirements. For example, a container or a plurality of containers can be arranged between adjacent devices.

[0113] For all embodiments described herein, the first sensor 26 of the plurality of sensors and / or a carrier element 46 of the plurality of carrier elements of the testing device 16, by which the first container 4a to be tested is received in the testing area 28 and which is therefore also referred to as the first carrier element 46, is designed to be movable in such a way that a relative movement can be generated between the first sensor 26 and the first container 4a to be tested in a direction of movement B between a first arrangement and a second arrangement. The direction of movement B is oriented perpendicular to the conveying plane 20. In the first arrangement, the first sensor 26 is arranged at a distance from the first container 4a to be tested in the direction of movement B and at least partially surrounds the first container 4a to be tested in the second arrangement.A plurality of sensors 26, 30, 34 is provided, the described relationship applies accordingly to each sensor of the plurality of sensors 26, 30, 34 and the respective container 4a, 4b, 4c to be tested.

[0114] The relative movement between the first sensor 26 and the first container 4a to be tested can be generated in various ways. Either only the first sensor 26 can be movable to generate the relative movement between the first arrangement and the second arrangement, while the first carrier element 46 with the first container 4a to be tested is arranged stationary in the first test area 28. This is the case, for example, in the embodiment according to Fig. 1 possible, wherein the plurality of sensors 26, 30, 34 can be mounted in the testing device 16 so as to be movable in the direction of movement B. The plurality of sensors 26, 30, 34 can be arranged in the first arrangement above the containers 4a, 4b, 4c to be tested and can be moved downwards in the direction of movement B into the second arrangement until the sensors 26, 30, 34 surround the containers 4a, 4b, 4c. The first carrier element 46 or a second carrier element 48, which holds the second container 4b, and a third carrier element 50, which holds the third container 4c, can each form a section of the conveyor table 22 in this case, and in particular can also be formed integrally with the conveyor table 22. Even in embodiments in which the testing device 16 is integrated into one of the units 8, 10 or feeders 12, 14 of the packaging machine 2, as in the Fig. 2 As shown, the plurality of sensors 26, 30, 34 can be movable and the container 4a, 4b, 4c to be tested can be arranged stationary.

[0115] Alternatively, the relative movement can be generated by the plurality of sensors 26, 30, 34 being arranged stationary and only the respective carrier element 46, 48, 50 and thus the respective container 4a, 4b, 4c to be tested being movable. Exemplary embodiments for this are described below with reference to Fig. 2 and Fig. 4 described and analogously to the test device 16 according to Fig. 1 which is designed independently of the other units 8, 10 and feeders 12, 14 of the packaging machine 2. For reasons of clarity, the conveyor device 18 is shown in the Fig. 2 , 3 and 4 not shown.

[0116] In a further alternative, both the plurality of sensors 26, 30, 34 and the plurality of support elements 46, 48, 50 are designed to be movable with the containers 4a, 4b, 4c to be tested.

[0117] Fig. 2a shows the plurality of containers 4a, 4b, 4c to be tested and the plurality of sensors 26, 30, 34 in the respective first arrangement and Fig. 2b shows the plurality of containers 4a, 4b, 4c to be tested and the plurality of sensors 26, 30, 34 in the respective second arrangement. The features described below by way of example with reference to the first sensor 26, the first container 4a, and the first support element 46 apply analogously to the second sensor 30, the second container 4b, and the second support element 48, as well as to the third sensor 34, the third container 4c, and the third support element 50.

[0118] The first support element 46 is movably mounted in the direction of movement B, wherein the first sensor 26 can in principle be arranged below or above the conveying plane 20. Various examples of such a mounting are described with reference to Fig. 3a-3c The first support element 46 can be lowered relative to the conveying plane 20 if the first sensor 26 is arranged below the conveying plane 20 in a first embodiment, as in Fig. 2 and 4 The first support element 46 can also be liftable relative to the conveying plane 20 if the first sensor 26 is arranged above the conveying plane 20 in a second embodiment, as in Fig. 1 and 3c shown.

[0119] The first container 4a is arranged in the first test area 28 on the first support element 46, which in the first arrangement preferably forms a plane with the conveyor table 22. Preferably, the first support element 46 has a contact surface 52 on which the first container 4a stands. The contact surface 52 lies in the first arrangement ( Fig. 2a ) in the conveyor level 20 and in the second arrangement ( Fig. 2b ) not in the conveying plane 20. Preferably, the contact surface 52 is always aligned parallel to the conveying plane 20.

[0120] If the first container 4a to be tested and the first sensor 26 are arranged in the test area 28 relative to each other in the first arrangement, the relative movement between the first container 4a and the first sensor 26 in the direction of movement B can be generated, as shown in Fig. 2b This relative movement is also referred to as the first relative movement. The first carrier element 46 moves the first container 4a from the first arrangement into the second arrangement, in which the first sensor 26 at least partially surrounds the first container 4a. Preferably, the first sensor 26 is designed as a ring sensor and completely surrounds the first container 4a in the second arrangement in the circumferential direction of the first container 4a.

[0121] During the first relative movement from the first to the second arrangement and / or in the second arrangement, the first sensor 26 detects whether a foreign body is contained in the first container 4a and thus checks the container 4a for foreign bodies.

[0122] Once the first container 4a has been tested, the relative movement between the tested first container 4a and the first sensor 26 can be parallel to the direction of movement B back into the first arrangement ( Fig. 2a ), which is also referred to as a second relative movement. The first carrier element 46 moves the first container 4a from the second arrangement into the first arrangement, so that the first sensor 26 is again arranged at a distance from the first container 4a. The first container 4a can then be conveyed out of the first inspection area 28 in order to enable the inspection of another container 4 of the plurality of containers 4 by means of the first sensor 26 in the next cycle.

[0123] As in Fig. 2a As can be seen further, each container 4 generally comprises a bottom 401, a peripheral wall 402 and a neck 403. The neck 403 forms an opening 404 of the container 4 through which the ingestible products can be filled into and removed from the container 4. A lid 5 (see Fig. 1 ) is preferably pressed or screwed onto the container 4, wherein the neck 403 then has a thread that engages with a thread of the lid 5. Each container 4 of the plurality of containers 4 is preferably rotationally symmetrical about a central axis 405. The central axis 405 is preferably aligned, at least in the test area 28, perpendicular to the conveying plane 20 and parallel to the direction of movement B. Furthermore, each container 4 of the plurality of containers 4 has a diameter D, which is preferably measured in the region of the circumferential wall 402, in particular in the region of a largest diameter of the circumferential wall 402. A height H of each container 4 is preferably defined parallel to the central axis 405 of the container 4 from the bottom 401 to an upper edge of the neck 403. Such containers can also be referred to as bottles.

[0124] In the Figuren 3a bis 3c which are useful for understanding the invention, and 4 show various possibilities for the movable mounting of at least the first support element 46. In Fig. 3a bis 3c a section of the testing device 16 or the packaging machine 2 with the first sensor 26 and the first container 4a or the first carrier element 46 in the second arrangement is shown.

[0125] According to the invention, the possibilities presented apply to the plurality of sensors 26, 30, 34, the plurality of containers 4a, 4b, 4c to be tested and the plurality of carrier elements 46, 48, 50.

[0126] In all versions of the Figuren 3a bis 3c which are useful for understanding the invention, the testing device 16 comprises an actuator 54 which is connected to or acts on the first carrier element 46 and is designed to move the first carrier element 46 parallel to the direction of movement B.

[0127] In the embodiment according to Fig. 3a the first support element 46 is prestressed by means of a prestressing element 56 into a position in which the first contact surface 52 lies in the conveying plane 20. The prestressing element 56 can be a spring element, such as a compression spring. The actuator 54 can be a hydraulic or pneumatic actuator, such as a hydraulic cylinder or a pneumatic cylinder, or an electric, electromagnetic, or mechanical linear drive. The actuator 54 is arranged and designed such that it acts on the first support element 46 or, as shown, on the first container 4a by means of a plunger 58 against a prestressing force of the prestressing element 56. More precisely, the prestressing element 56 can be arranged below the first support element 46 and connected to it, and the actuator 54 with the plunger 58 can be arranged above the first support element 46 and the first container 4a to be tested.If the punch 48 is moved downward in the direction of movement B by means of the actuator 54, the punch 58 strikes the first container 4a and presses it, together with the first carrier element 46, from the first arrangement downward into the second arrangement. During this first relative movement, the first carrier element 46 and the first container 4a are moved at least partially through the first sensor 26. If the testing device 16 is integrated into the closing unit 10 or arranged downstream of the closing unit 10, the punch 58 strikes the lid 5 on the first container 4a. Otherwise, the punch 28 strikes the neck 403 of the first container 4a. The first sensor 26 is arranged below the conveying plane 20 and, for example, is attached stationary to the conveying table 22.

[0128] In the embodiment according to Fig. 3b the actuator 54 is fixedly connected to the first support element 46, so that an actuating movement of the actuator 54 is transmitted directly to the first support element 46. The actuator 54 is shown here as an example as a hydraulic or pneumatic cylinder, but can also be formed by any other actuator, as already described. The first sensor 26 is also arranged below the conveying plane 20 in this embodiment and is, for example, stationary on the conveyor table 22. The actuator 54 is arranged below the first support element 46 and is fixedly connected to the support element 46, for example by means of a piston rod of the actuator 54. The actuator 54 moves the first support element 46 together with the first container 4a to be tested downwards in the direction of movement B from the first arrangement into the second arrangement. During this first relative movement, the first support element 46 and the first container 4a are moved at least partially through the sensor 26.The first support element 46 can therefore be lowered.

[0129] The embodiment according to Fig. 3c corresponds essentially to the embodiment according to Fig. 3b with the difference that the first sensor 26 is arranged above the first support element 46 and the first container 4a with respect to the conveying plane 20, and the first support element 46 can be lifted. The first sensor 26 is preferably arranged stationary, for example by being fastened to a machine frame of the testing device 16 or the packaging machine 2. However, the first sensor 26 can also be movably mounted, so that both the first support element 46 and the first sensor 26 are movable. The actuator 54 is again shown as a hydraulic or pneumatic cylinder, but can be designed as desired. The actuator 54 is arranged below the first support element 46 and moves the first support element 46 together with the first container 4a to be tested upwards in the direction of movement B from the first arrangement into the second arrangement.During this first relative movement, the first carrier element 46 and the first container 4a are also moved at least partially through the sensor 26.

[0130] In Fig. 4 The plurality of sensors, here comprising the first, second, and third sensors 26, 30, 34, are arranged one behind the other in the conveying direction F. Each sensor 26, 30, 34 is assigned a carrier element 46, 48, 50 of the plurality of carrier elements 46, 48, 50 in order to move one of the containers 4 to be inspected through the respective sensor 26, 30, 34. In Fig. 4 The plurality of support elements 46, 48, 50 are arranged such that their contact surface 52 lies in the conveying plane 20 in order to position the containers in the first arrangement relative to the plurality of sensors 26, 30, 34. The plurality of sensors 26, 30, 34 are arranged below the conveying plane 20, preferably stationary.

[0131] In the illustrated embodiment, the plurality of support elements 46, 48, 50 can be lowered relative to the conveying plane 20. In order to move the support elements 46, 48, 50 synchronously, they are preferably connected to one another by means of a connecting element 62. For example, the connecting element 62 is strip-shaped and arranged parallel to the conveying direction F. Each support element 46, 48, 50 can be connected to the connecting element 62 by means of a support element 64, wherein the support element 64 Fig. 4 indicated by dashed lines, can be rod-shaped and can extend upwards from the connecting element 62 perpendicular to the conveying direction F. Each support element 64 can be surrounded by a preferably stationary sleeve 66. In order to lower the plurality of support elements 46, 48, 50, the connecting element 62 is movably mounted on a linear guide 68, for example by means of a carriage. The linear guide 68 preferably extends substantially perpendicular to the conveying plane 20. The actuator 54 can be designed here as a servomotor and move the connecting element 68 up and down along the linear guide 68, for example by means of a belt drive 70. Alternative drive types are readily conceivable.

[0132] In all embodiments, the plurality of sensors 26, 30, 34 is preferably designed as a ring sensor, which completely surrounds the respective container 4a, 4b, 4c to be tested in the second arrangement in the circumferential direction of the container 4a, 4b, 4c. By way of example, Fig. 3c explains that the respective sensor 26 then has an opening 60, which is preferably designed as a through-opening and into which the container 4a to be tested can be inserted. An inner circumference of the first sensor 26 corresponds to an inner circumference of this opening 60. An inner diameter I of the annular first sensor 26 corresponds to the diameter of the opening 60 and is larger than the diameter D of the first container 4a.

Claims

1. A testing device (16) for a packaging machine (2) for packaging products, in particular medical or pharmaceutical products or foodstuffs or dietary supplements, in containers (4), wherein the testing device (16) comprises: a conveying device (18), which is configured to convey a plurality of containers (4) in a clocked fashion in a conveying plane (20) in a conveying direction (F) through the testing device (16); a plurality of sensors (26, 30), wherein each sensor (26, 30) of the plurality of sensors (26, 30) is arranged in a testing region (28, 32) of the testing device (16) and is configured to detect foreign bodies, in particular metal foreign bodies, in a container (4a) to be tested of the plurality of containers (4); and a plurality of carrier elements (46, 48), wherein in each case a container (4a, 4b) to be tested of the plurality of containers (4) is received in a testing region (28, 32) by a carrier element (46, 48) of the plurality of carrier elements (46, 48); wherein the plurality of sensors (26, 30) and / or the plurality of carrier elements (46, 48) of the testing device (16), by which the containers (4a, 4b) to be tested are received in the testing region (28, 32), are formed movably in such a way that a relative movement between the plurality of sensors (26, 30) and the containers (4a, 4b) to be tested in a movement direction (B) between a first arrangement and a second arrangement can be generated, wherein the movement direction (B) is oriented perpendicularly to the conveying plane (20); wherein the plurality of sensors (26, 30) in the first arrangement is arranged in the movement direction (B) at a distance from the containers (4a, 4b) to be tested, and wherein the plurality of sensors (26, 30) in the second arrangement at least partially surrounds the containers (4a, 4b) to be tested; wherein the sensors (26, 30) of the plurality of sensors (26, 30) are arranged one behind the other in the conveying direction (F).

2. The testing device (16) according to claim 1, characterised in that the sensors (26, 30) of the plurality of sensors (26, 30) are annular and in the second arrangement the containers (4a, 4b) to be tested are each completely surrounded in the circumferential direction of the containers (4a, 4b) to be tested.

3. The testing device (16) according to claim 1 or 2, characterised in that the plurality of carrier elements (46, 48) is formed in such a way that they support the containers (4a, 4b) to be tested from beneath in the testing region (28, 32) and that they are movable in the movement direction (B).

4. The testing device (16) according to claim 3, characterised in that a contact face (52) of the plurality of carrier elements (46, 48), on which the container (4a) to be tested is arranged, in the first arrangement lies in the conveying plane (20) and in the second arrangement does not lie in the conveying plane (20).

5. The testing device (16) according to any one of the preceding claims, characterised in that the plurality of sensors (26, 30) is arranged beneath the conveying plane (20) and the plurality of carrier elements (46, 48) can be lowered relative to the conveying plane (20).

6. The testing device (16) according to any one of the preceding claims, characterised in that the carrier elements (46, 48) of the plurality of carrier elements (46, 48) can be lowered relative to the conveying plane (20) and are connected to one another in such a way that they are movable synchronously.

7. The testing device (16) according to any one of the preceding claims, characterised in that at least two sensors (26, 30) of the plurality of sensors (26, 30) are operable with a different frequency.

8. A packaging machine (2) for packaging ingestible products, in particular medical or pharmaceutical products or foodstuffs or dietary supplements, in containers (4), wherein the packaging machine (2) comprises: a feed unit (6), which is configured to feed a plurality of containers (4) into the packaging machine (2); a filling unit (8), which is configured to fill the plurality of containers (4) with the ingestible products; a closing unit (10), which is configured to close the plurality of containers (4) with a lid (5) in each case; and a testing device (16) according to any one of claims 1 to 7 for testing the plurality of containers (4) for foreign bodies, in particular metal foreign bodies, therein.

9. The packaging machine (2) according to claim 8, characterised in that the conveying device (18) of the testing device (16) is configured to convey the plurality of containers (4) in a clocked fashion through the filling unit (8), the closing unit (10) and the testing device (16).

10. The packaging machine (2) according to claim 8 or 9, characterised in that the testing device (16) is arranged before the closing unit (10), in particular between the filling unit (8) and the closing unit (10).

11. A method for testing containers (4) for ingestible products, in particular for medical or pharmaceutical products or for foodstuffs or dietary supplements, by means of a testing device (16) according to any one of claims 1 to 7, wherein the method comprises the following steps: a) conveying a plurality of containers (4) in a clocked fashion in a conveying plane (20) in a conveying direction (F); b) arranging containers (4a, 4b) to be tested of the plurality of containers (4) in a testing region (28, 32) in a first arrangement relative to a plurality of sensors (26, 30) for detection of foreign bodies, in particular of metal foreign bodies, wherein the plurality of sensors (26, 30) in the first arrangement in a movement direction (B) is arranged at a distance from the containers (4a, 4b) to be tested, wherein the movement direction (B) is oriented perpendicularly to the conveying plane (20); c) generating a first relative movement between the containers (4a, 4b) to be tested and the plurality of sensors (26, 30) in the movement direction (B) from the first arrangement into a second arrangement, in which the plurality of sensors (26, 30) at least partially surrounds the containers (4a, 4b) to be tested; d) identifying by means of the plurality of sensors (26, 30) whether a foreign body is contained in the containers (4a, 4b) to be tested, and thus testing the containers (4a, 4b); e) generating a second relative movement between the tested containers (4a, 4b) and the plurality of sensors (26, 30) parallel to the movement direction (B) back into the first arrangement; and f) conveying the tested containers (4a, 4b) from the testing region (28, 32), preferably in the conveying plane (20) in the conveying direction (F).

12. The method according to claim 11, characterised in that step c) comprises: lowering the container (4a) to be tested relative to the conveying plane (20), wherein the plurality of sensors (26, 30) is arranged below the conveying plane (20).

13. The method according to claim 11 or 12, characterised in that the sensitivity of the plurality of sensors (26, 30) is adjustable and the method further comprises: adjusting the sensitivity of the plurality of sensors (26, 30) in dependence on the ingestible products.