Background and Summary of the Invention
This invention generally relates to a flow rate sensor also known as a dry flow sensor, and particularly such a sensor for use in measuring the flow rate of pelleted, granular or powdered materials such as, for example, flour, soybeans, cement, and others too numerous to mention.
Dry flow sensors of this type are known in the art and generally consist of an angular deflection plate mounted at the end of an arm, which plate is placed in the flow path of the material to be metered. The other end of the arm is mounted to a support structure using some pivotal arrangement such as a torsion pin which allows the arm to swing only about an axis parallel to the direction of material flow. Since the deflection plate is mounted at an angle in the flow path of the material, the flow of the material against the deflection plate produces normal and parallel component forces. Since the arm is limited to only movement about the parallel axis, the vertical forces have no effect while the amount of deflection in the arm about the parallel axis is proportional to the flow rate of the material. Thus, the flow rate is measured in response to the degree of deflection of the deflection plate and arm.
The accuracy of these devices are dependent on the ability to translate the flow of the material into a pivotal deflection with a minimum of tolerance, so that the design and structure of the pivotal arrangement for mounting the arm to the support becomes critical. A standard pivot pin arrangement, while relatively inexpensive, possesses more play or tolerance than is desirable, adversely affecting the accuracy of the readings. Other hinge arrangements have been used with success, but they are relatively complex and expensive. These include the use of a torsion pin of a type manufactured by Bendix Corporation.
This invention represents an improvement over these prior art sensors and particularly over the pivotally mounting arrangement for the deflection arm.
Generally, the sensor of this invention comprises an angled deflection plate mounted at the end of an arm, the other end of which is pivotally mounted to a support structure. The pivotally mounting arrangement generally includes a shim of thin gauge material such as stainless steel which is held firmly attached to the arm and to the support structure such that the shim is allowed to deflect within its elastic limits over a section thereof, whereby the arm is held firmly against horizontal and vertical movement but is allowed limited pivotal movement. The shim is relatively free in its hinge action and also provides a spring return force for the arm. Means, such as a dash pot or the like, are provided to dampen the pivotal movement of the arm, and further means, such as a transducer, are provided for translating the degree of pivotal movement of the arm into a flow rate indication.
Thus, it is a primary object of this invention to provide an improved dry flow sensor where flow rate is proportional to the degree of pivotal deflection of an arm member, with an improved pivotal mounting arrangement for the arm which minimizes horizontal and vertical movements of the arm and hence increases the accuracy and sensitivity of the sensor and which is relatively friction free and provides a spring return force for the arm .
This and other objects of the invention will become apparent from the drawing and detailed description to follow.
Description of the Drawings
FIG. 1 is a plan view of a flow rate sensor of this invention shown mounted in a section of a vertical chute;
FIG. 2 is a side elevation view, with a portion cut away, of the sensor of FIG. 1;
FIG. 3 is an enlarged view in section taken generally along the line 3--3 of FIG. 2;
FIG. 4 is an enlarged section taken generally along the line 4--4 of FIG. 2;
FIG. 5 is an isometric view of the support and pivotal mounting structure of the sensor of FIG. 1;
FIG. 6 is a view in section taken generally along the line 6--6 of FIG. 5;
FIG. 7 is a view in section taken generally along the line 7--7 of FIG. 5; and
FIG. 8 is a view in section taken generally along the line 8--8 of FIG. 5.
Detailed Description of a Preferred Embodiment
Referring to the drawing there is shown a flow rate sensor 10 mounted to a section 12 of a vertical chute through which a material is made to flow vertically downwardly by gravity. The purpose of the sensor of this invention is to measure the flow rate of that material and it is particularly suited for dry pelleted, granular, or powdered materials.
The sensor 10 has a support structure 14 secured to members 16 and 18 of a frame 20, which frame is mounted to the chute section 12 and extends to one side thereof. The support structure 14 has a base plate 22 mounted to the frame members 16 and 18, a vertical plate 24 mounted to the base plate 22, and a reinforcing vertical plate 26 secured to both the base plate and plate 24. A support member 30 is mounted to and extends upwardly from the base plate 22 and is spaced from the vertical plate 24. Another support member 32 is mounted to and extends forwardly from the vertical plate 24 at a location above the mounting plate 30.
A pivotal member 34 has a forward portion 36 and a rearward portion 37 which extends between the supports 30 and 32. The rearward portion 37 is preferably machined to be of somewhat less thickness than the forward portion 36 and has an upper notch 40 and a lower notch 42 formed therein. The support plate 32 extends within the notch 40, and the rearward portion 37 has a downwardly extending portion 44 located between the support 30 and vertical plate 24 with the support 30 extending within the notch 42.
As shown in FIGS. 6 and 8, the pivotal member 34 is pivotally mounted to the supports 30 and 32 by means of shims 50 and 52, respectively, which are preferably of stainless steel or the like. The shim 52 is firmly clamped to the support 30 and to the downwardly extending portion 44 of the pivotal member 34 by means of clamping plates 54 and 55 and suitable bolts 56 and 57. The shim 52 is securely fastened to the upper rear portion 37 of the pivotal member 34 and to the support 32 by means of clamping plates 60 and 61 and suitable bolts 62 and 63.
It is a feature of this invention that the shims 50 and 52 act as hinges which allow for limited pivotal movement about the vertical axis but prevent any vertical or transverse movement of the pivotal member 34 relative to the members 30 and 32. The shims 50 and 52 also provide a rearly friction free hinge and a spring return force for the pivotal member. This is accomplished by firmly clamping the shims in place but leaving sections 65 and 66 of the shims 50 and 52, respectively, unclamped so as to allow pivotal flexing at those sections. In a preferred embodiment, these sections 65 and 66 are in vertical alignment.
A damping device 70, such as a dash pot, is suitably mounted to a vertical support 71 extending upwardly from the base 22. The dash pot 70 has a piston shaft 73 secured to the forward portion 36 of the pivotal member 34 by means of a threaded nut 75 or the like and acts to dampen pivotal oscillations of the pivotal member 34. The dash pot 70 may be, for example, an Airport Corporation Model 444, 2-way.
Adjustable bumpers 78 are mounted to vertical supports 80 on opposite sides of the pivotal member 34 at its forward end. These bumpers act as stops to limit the pivotal movement of the pivotal member 34 and thus prevent excessive movement which would cause the shims 50 and 52 to flex beyond their elastic limits.
An arm 85 is mounted at one end to the bottom of the pivotal member 34 by means of bolts 86. The arm 85 extends through a suitable opening in the wall of the chute section 12 and a deflection plate 90 is mounted at the forward end thereof. The deflection plate 90 is secured to the arm 85 within the chute section 12 by a suitable L-shaped bracket 91 and bolts 92. The upper surface of the deflection plate 90 generally defines a plane with upturned sides 93 that is parallel to an axis normal to the pivotal axis of the pivotal member 34 and is inclined relative to vertical about 30.degree. (FIG. 3), although greater or lesser degrees of inclination may be used. The purpose for the deflector 90 is to translate the vertical force of the falling material that impinges on the plate into vertical and horizontal components, the vertical component being cancelled and the horizontal component causing a pivotal movement of the arm 85 and pivotal member 34 about the vertical axis defined by the shim sections 65 and 66.
A transducer 90 is mounted to a support 92 extending from the vertical plate 24 and has a shaft 93, the end of which is attached such as by a nut 94 to the rear portion 37 of the pivotal member 34 at a location rearwardly of the pivotal axis. The transducer 90 is of a type that translates extension and retraction of the shaft 93 into electrical signals which are used to operate a flow meter or the like (not shown). The transducer 90 may, for example, be a Hewlett Packard Model 7 DCDT. A suitable terminal board 95 is mounted to the vertical plate 24 for making the necessary electrical connections.
Operation
In operation, a vertical downward flow of material, such as a pelleted, granular, or powdered material, through the chute section 12, impinges upon the deflection plate 90. This vertical force is translated by the inclined deflection plate into a horizontal and vertical component. Since the pivotal member 34 is allowed to move only pivotally about a vertical axis, the vertical force component is cancelled and the horizontal component produces a corresponding pivotal deflection of the arm 85 and pivotal member 34 about the vertical axis defined by the shim sections 65 and 66. The width of the shim section 65 is defined by the spacing between the clamping plates 54 and 55 and between support plate 30 and downwardly extending portion 44. The width of the shim section 66 is defined by the spacing between the clamping plates 60 and 61 and between the rear portion 37 of the pivotal member 34 and the support plate 32. It has been found that excellent results are obtained where the width of the shim sections are approximately equal to the shim thickness.
The thickness of the shims is chosen to accommodate the range of flow rates expected. For example, a shim thickness of 0.031 inches might be used for a range of 0-1500 lbs./mins., 0.020 inches for a range of 0-500 lbs./min., and 0.010 inches for a range of 0-30 lbs./min.
Hence, the shims acting as hinges and springs provide an exceptionally reliable means for translating the rate of flow of the material into a pivotal deflection of the pivotal member 34 about the vertical axis.
This pivotal movement of the pivotal member 34 produces a movement of its rearward portion where the transducer 90 is attached, the transducer translating this pivotal movement into electrical signals for operating a flow meter of the like. The dash pot 70 dampens pivotal oscillations of the pivotal member 34 and the adjustable bumpers 78 act as limits or stops to prevent excessive pivotal movement of the member 34 which might deflect the shims 50 and 52 beyond their elastic limits.
It will be noted that both of the shims 50 and 52 are under tension by weight of the forward end of the pivotal member 34, the arm 85, and the deflection plate 90, and the shim sections 65 and 66 are in vertical alignment to insure accuracy.
Thus, there has been described an improved flow rate sensor providing a pivotal mounting arrangement for the arm which minimizes horizontal and vertical movements of the arm while allowing pivotal deflection about a generally vertical axis and which increases the accuracy and sensitivity of the sensor.
Various changes and modifications may be made in this invention, as will be readily apparent to those skilled in the art. Such changes and modifications are within the scope and teaching of this invention as defined by the claims appended hereto.