The disclosure relates to a system for mounting a vibration transducer, such as an accelerometer, at a machine.
Vibration data collected with single-axis or multi-axis transducers is an important contribution in machine diagnostics. In order to collect such vibration data, vibration transducers, such as tri-axial accelerometers, have to be permanently or temporarily mounted at the machine. One way to collect vibration data for a machine is to subsequently mount the same transducer at different measurement locations at the machine. In this regard, consistent orientation of the transducer relative to the machine is critical for providing reliable results.
For example, the horizontal, vertical and axial measurement orientation of the transducer has to be consistent from measurement to measurement at the machine. Without consistency of measurement orientation, proper machine diagnostics may become problematic. For example, angular machine misalignment is manifest by vibrating in both a radial direction and axial direction at the running frequency of the machine. If axial vibration is at least half of the radial vibration, angular misalignment is a likely source of the vibration, so that it is imperative that axial and radial orientation of the transducer is the same for all measurements.
It is also important to assure as that each horizontal, vertical and axial measurement maintains the same respective phase orientations along the machine. The phase relationship is particularly important for advanced diagnostic measurement such as Operating Deflection Shape (ODS) and Modal Analysis.
It is an objective of the disclosure to provide for a system for mounting a vibration transducer at a machine which assists proper orientation of the transducer relative to the machine.
According to the disclosure, this object is achieved by a system which comprises a mounting pad made from ferrous material and which is configured to be mounted at a measurement location of the machine; and a magnetic base comprising a transducer fixation structure configured to releasably fix the vibration transducer at the magnet base and a pad engagement structure configured to releasably engage with a mating engagement structure of the mounting pad so as to magnetically fix the magnet base at the mounting pad for vibration measurement. The engagement structure of the mounting pad comprises at least one groove and which is asymmetric in a direction orthogonal to the longitudinal direction of the groove. Such engagement structure ensures that the magnetic base can be mounted at the mounting pad in a fast and easy way for a measurement and can be quickly removed from the mounting pad after the measurement, while the magnetic base can only be oriented in one direction, thereby ensuring proper and reliable orientation of the transducer with regard to the machine during the measurement. Since the magnetic base comprises a transducer fixation structure which is configured to releasably fix the vibration transducer at the magnetic base, the system is a particularly flexible—as opposed to, for example, cases in which the transducer is integrated within the magnetic base.
The engagement structure of the mounting pad may comprise a groove having an asymmetric cross section, which preferably is V-shaped, wherein the angle of two slopes is different. According to one example, the groove with the asymmetric cross section is the only groove of the engagement structure of the mounting pad. According to an alternative example, the engagement structure of the mounting pad comprises two additional grooves, one located at each side of and extending parallel to the groove with the asymmetric cross section which forms a central groove.
According to one example, the engagement structure of the mounting pad may comprise at least three parallel grooves, wherein the distance of the two lateral grooves from the central groove is different. According to another example the engagement structure of the mounting pad may comprise at least two parallel grooves having a different width.
Preferably, the magnetic base comprises a permanent magnet, wherein the pad engagement structure is made of magnetic material. Further, the magnetic base may comprise a central magnetic element and two side magnetic elements arranged laterally with regard to the central magnetic element, wherein the two side magnetic elements have a same magnetic polarity and the central magnetic element has an opposite magnetic polarity. A permanent magnet may be located between each of the side magnetic elements and the central magnetic element. Preferably, the central magnetic element comprises the transducer fixation structure; in particular, the central magnetic element may comprise an opening extending through the central magnetic element for receiving a transducer fixation bolt.
Preferably, the central magnetic element comprises a free end configured to engage with a groove of the engagement structure of the mounting pad. According to one example, each of the side magnetic elements comprises a free end configured to engage with a groove of the engagement structure of the mounting pad. According to an alternative example, each of the side magnetic elements comprises a free end configured to engage with a planar surface of the engagement structure of the mounting pad.
Preferably, the transducer fixation structure of the magnetic base is configured to receive a bolt engaging with the transducer unit. Further, the transducer fixation structure of the magnetic base comprises a thread for engaging a mating thread of the bolt.
The mounting pad typically is made of ferrous stainless steel and may comprise a lanyard hole for fixing an RFID chip at the mounting pad.
These and further objects, features and advantages of the present invention will become apparent from the following description when taken in connection with the accompanying drawings which, for purposes of illustration only, show several embodiments in accordance with the present invention.
In some implementations, the transducer fixation structure 32 of the magnetic base 30 comprises a vertically extending hole for receiving the mounting bolt (see in particular
As shown in
The magnets 48, 49 are arranged in such a manner that the two side magnetic elements 44 and 46 have the same magnetic polarity while the central magnetic element 42 has an opposite magnetic polarity. In the example of
The magnetic structure of the example of
The mounting pad 20 is made of a magnetic material, preferably ferrous stainless steel, and comprises a lower side 22 which is configured to be fixed to a surface of the machine 12 at the measurement location, preferably with adhesive or metal infused epoxy; however, also other methods are conceivable for fixing the mounting pad 20 to the machine 12.
As shown in
The upper side 26 of the mounting pad 20 is designed as an engagement structure which, in the example of
The engagement structure 26 of the mounting pad 20 is configured to engage with the mating pad engagement structure 50 of the magnetic base 30. Accordingly, the free end 42A are of the central magnetic element 42 is provided with an angled tip which is shaped so as to fit into the groove 28, i.e. one of its slopes is substantially vertical while the other slope is angled at about 30 degrees with regard to the horizontal plane. The free ends 44A, 46A of the side magnetic elements 44, 46 are flat, so as to engage with the planar surface of the upper side 26 of the mounting pad 20, e.g., the free ends 44A, 46A will touch the planar surface when the tip of the free end 42A of the central magnetic element engages with the groove 28, as is shown in
Typically, the mounting pad 20 will be fixed at the machine 12 in such orientation that the groove 28 extends along the direction of the shaft of the machine 12, thereby ensuring a desired orientation of the transducer unit 10 with regard to the direction of the shaft of the machine 12. In particular, due to the asymmetry of the engagement structures 26 and 50, inadvertent misalignment of the magnetic base 30—and thus of the transducer unit 10—by 180 degrees with regard to the mounting pad 20 is prevented.
As can be seen in
In
In the example of
A variant of the example of the engagement structure 26 of
In
In
While various embodiments in accordance with the present disclosure have been shown and described, it is understood that the disclosure is not limited thereto, and is susceptible to numerous changes and modifications as known to those skilled in the art. Therefore, this disclosure is not limited to the details shown and described herein, and includes all such changes and modifications as encompassed by the scope of the appended claims.