This application claims the benefit of the filing date under 35 U.S.C. § 119(a)-(d) of European Patent Application No. 21167236.5, filed on Apr. 7, 2021.
The present invention relates to a load cell.
A wide variety of different designs are available for load cells that are capable of measuring a force and/or load accurately under some conditions. Still, there is a need for a load cell which performs exact measurements in an unclean environment that is subject to strong vibrations.
A load cell includes a force transmitting element, a force sensing element converting a force acting on the force transmitting element into a measurement signal, a cover having an opening spaced apart from the force sensing element, and a gel element disposed in the opening. The force transmitting element extends into the opening and from the opening toward the force sensing element. The force transmitting element rests against the gel element in the opening.
The invention will now be described by way of example with reference to the accompanying Figures, of which:
In the following, the invention is described exemplarily with reference to the drawings and various embodiments. Any feature of an embodiment may be omitted if the technical effect of the feature is not necessary in a specific application. Mutatis mutandis, any feature described herein but not described as part of an embodiment may be added if the technical effect associated with this feature is beneficial to a particular application. In the following, elements that correspond to one another with respect to at least one of structure and function are provided with identical reference numerals.
First, the general structure of a load cell 1 is explained with reference to
The force transmitting element 2 may be made from a metal material, a ceramics material and/or a resin material, such as a fibre-reinforced resin material. This ensures low wear and a purely elastic deformation of the force transmitting element 2 over a wide range of forces.
The load cell 1, as shown in
The measurement signal 8 may be a digital signal or an analog signal and may be presented for output at a signal terminal 10 of the load cell 1 or output on a signal line 12. The signal line 10 may be wire-based or be configured to transmit the measurement signal 8 wirelessly.
As shown in
The load cell 1 further comprises a gel element 16 shown in
In the opening 14, the force transmitting element 2 rests against the gel element 16. In particular, the gel element 16 may line the opening 14 and surround the force transmitting element 2, continuously in an embodiment. A continuous lining provides a dampening effect in all directions.
The gel element 16 may be electrically conductive or an electrical insulator; electrical conductivity allows the force transmitting element 2 to have the same electrical potential as other elements of the load cell 1. In an embodiment, the force transmitting element 2 may be grounded using an electrically conductive gel element 16. In other applications, the gel element 16 may be an electric insulator, which insulates electrically the force transmitting element 2 from those components 1 that form the opening 14.
The gel element 16 may adhere to the force transmitting element 2, e.g. by bonding, such as physical and/or chemical bonding, or by gluing. In
The force sensing element 4 may comprise a Micro Electrical-Mechanical System (MEMS) force transducer, which may include a membrane for measuring the force 6. The force sensing element 4, in an embodiment, is arranged exactly opposite the opening 14.
The load cell 1 may comprise a cover 18 which may be part of a packaging 21, as shown in
The load cell 1 may include an interior space 20, which is at least partly surrounded by the cover 18. The force transmitting element 2 extends through the opening 14 into the interior space 20. The interior space 20 separates the opening 14 from the force sensing element 4. The opening 14 may connect the interior space 20 to an exterior 22 of the load cell 1. In the load cell of
In another embodiment, the gel element 16 may seal the opening 14 completely by itself vis-à-vis the force sensing element 4. This provides a continuous seal without any gaps, which may otherwise allow fluids to reach the force sensing element 4 via capillary forces.
The load cell 1 may comprise a cover structure 24, shown in
An opening may be provided both in the cover structure 24, or the cover 18 respectively, and in the gel element 16. In the following, the opening in the cover structure 24 and/or the packaging 21 is denoted by the reference numeral 14, the opening in the gel element 16 by reference numeral 25. The opening 25 in the gel element 16 may have a diameter 26, as shown in
The diameter 28 may be larger than a diameter 30 of the force transmitting element 2, shown in
The load cell 1 may have a vent hole 34 which connects the interior space 20 with the exterior 22. The vent hole 34 may be on a side 36, the rear side of the load cell 1. Its location may vary in other embodiments; for example, it may be located underneath the force transmitting element 2 or spaced apart from it. The vent hole 34 may be configured to equalize an air pressure in the interior space 20 to an air pressure in the exterior 22 of the load cell 1.
The force transmitting element 2 is held moveably by the gel element 16. This movability may include several degrees of freedom and result from the elastic deformability of the gel element 16. The range of motion of the force transmitting element 2 is, however, limited to prevent plastic deformation of the gel element 16 in an embodiment. For example, the gap between the cover structure 24 and the force transmitting element 2, which gap is filled by the gel element 16, may be sized to allow only a reversible deformation of the gel element 16.
In operation, the force 6 acting on the force transmitting element 2 is transmitted through the force transmitting element 2 to the force sensing element 4 and converted to the measurement signal 8. Vibrational movements and rebounds under sudden forces 6 of the force transmitting element 2 are dampened or even suppressed by the gel element 16. The force transmitting element 2 is held floatingly or in a semi-located manner in place and centered by the gel element 16. The gel element 16 is thus a structural component of the load cell 1 which ensures its structural integrity and absorbs internal forces that occur in operation, and the connection has a low stiffness and reduces noise.
The vibrational damping effect of the gel element 16 may be increased if, according to another embodiment, the gel element 16 is arranged between the force transmitting element 2 and the force sensing element 4. In this embodiment, the gel element 16 forms a cushion between the force transmitting element 2 and the force sensing element 4.
The gel element 16 may at least partly, and in an embodiment completely, clad the force transmitting element 2 in an area of the force transmitting element 2, which area is located between the opening 14 and the force sensing element 4. This improves both the encapsulation of the force transmitting element 2 from the exterior of the load cell 1 and improves the vibrational damping of the force transmitting element 2.
The gel element 16 may be a separate, already solidified unitary piece that is fixed in place by being fastened to the cover structure 24, e.g. by gluing and/or a form fit. The gel element 16 may be bonded, such as chemically and/or physically bonded, to one or more components of the load cell 1. Alternatively, the gel element 16 may be an overmolded component that is applied in liquid form and solidified in place after the force transmitting element 2 has been mounted. In one embodiment, the gel element 16 may be formed as a membrane. The membrane may be a separate unitary, detachable body or may be formed by a layer, which is adhesive or bonded to other components of the load cell 1 e.g. by being molded in situ.
In
The load cell 1 of
In the embodiment of
In
The load cell 1 of
The gel element 16 may form a discontinuous or continuous layer 42 on the force transmitting element 2 in the embodiment of
In an embodiment, the entire surface of the force transmitting element 2 that is located in the interior space 20, i.e. in area 43, is covered by the gel element 16, as shown in
As shown in
The load cell 1 of
The load cell 1 of
The substrate 48 and the cover 18 together enclose the interior space 20. The substrate 48 may be a part of the packaging 21 and may support, directly or indirectly, the force sensing element 4.
The gel element 16 in
The protrusion 50 may serve as a centering aid if the gel element 16 is a separate unit which is mounted to the remainder of the load cell 1 in a solidified state. If the gel element 16 is molded in place onto the remainder of the load cell 1, the protrusion 50 may serve as a border to contain the liquid gel before solidifying.
The load cell 1 as described above may not only be used for force or pressure measurements, but may also be used for other measurement purposes, depending on the configuration of the force sensing element 4. For example, the force sensing element 4 may be configured to issue a measurement signal 8 which is representative of another physical quantity than force, such as for example displacement or temperature.
Although a cover structure 24 is shown in the embodiments of
The present invention also relates to a method of manufacturing the load cell 1. In order to create the gel element 16, a gel material as defined above may be poured onto the opening 14 and/or the cover structure 24 with the force transmitting element 2 being located in the opening 14. The gel may be allowed to enter the opening 14, in particular the gap between the force transmitting element 2 and the opening 14, and then be covered or solidified. Alternatively, a unitary gel element 16, which is already solidified, may be installed in the opening 14 as a support for the force transmitting element 2. In this case, the gel element 16 may be fastened to the remainder of the load cell 1, e.g. the cover structure 24, by at least one of a form fit, bonding, such as chemical or physical bonding, and gluing.
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21167236 | Apr 2021 | EP | regional |
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Japanese Office Action dated Aug. 22, 2023 with English translation, corresponding to Application No. 2022-047741, 9 pages. |
Office Action from the Japanese Patent Office dated Feb. 21, 2023 (with English Translation thereof), corresponding to Application No. 2022-047741, 16 pages. |
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Number | Date | Country | |
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20220326100 A1 | Oct 2022 | US |