CONTROL DEVICE WITH LIMIT SWITCHES
20170330711 · 2017-11-16
Inventors
Cpc classification
H01H13/18
ELECTRICITY
H01H3/16
ELECTRICITY
H01H3/18
ELECTRICITY
International classification
Abstract
A control device with limit switches is provided. The device has a container housing an electric circuit provided with one or more limit switches, and a driving assembly configured to control operation of a valve or an actuator through the limit switches of the electric circuit. The driving assembly has a shaft configured to be rotatably coupled to a valve or an actuator and one or more cams keyed on the shaft and is configured for driving the limit switches of the electric circuit. The shaft has a gripping surface and each cam has a radial clamping mechanism whose gripping members are arranged in correspondence of a through hole configured to allow to fit the cam onto the shaft.
Claims
1. A control device with limit switches, said device comprising a container housing: an electric circuit provided with one or more limit switches, and a driving assembly configured to control operation of a valve or an actuator through said limit switches of said electric circuit, wherein said driving assembly comprises a shaft, configured to be rotatably coupled to a valve or an actuator, and one or more cams keyed on said shaft and configured for driving the limit switches of the electric circuit, wherein the shaft comprises a gripping surface, and wherein each cam comprises a radial clamping mechanism whose gripping members are arranged in correspondence of an assembly through hole configured to allow to key the cam onto the shaft, wherein each cam comprises a container wherein a plurality of gripping members of said radial clamping mechanism are arranged, said gripping members being movable within said container to and from an axis (A) of said through hole of the cam, and in that each cam further comprises moving means configured to move the gripping members.
2. The control device according to claim 1, wherein said container is a shell container consisting of a lower half-shell and an upper half-shell between which the gripping members of the radial clamping mechanism are housed.
3. The control device according to claim 1, wherein, said moving means comprise an annular element arranged inside the container and rotatably restrained thereto, said annular element surrounding the gripping members and being provided with a plurality of bumps formed on its inner surface, the number of said bumps corresponding to the number of the gripping members.
4. The control device according to claim 3, wherein said annular element is selectively movable between an unlocking position and a locking position of the cam on the shaft, the overall configuration of the annular element being such that in the unlocking position the gripping elements are located between two consecutive bumps and do not protrude beyond the periphery of the through hole of the cam, while in the locking position the bumps press against the gripping elements causing them to move beyond the periphery of the through hole of the cam towards its axis (A).
5. The control device according to claim 4, wherein maneuvering means are formed on the outer surface of the annular element, said maneuvering means being configured to allow displacement of the annular element between the unlocking and locking positions.
6. The control device according to claim 5, wherein said maneuvering means are accessible from the outside of the container shell of the cam through an aperture formed therein, said aperture stretching along the circumferential direction of the container shell.
7. The control device according to claim 6, wherein the maneuvering means are configured as a slider protruding from said aperture.
8. The control device according to claim 1, wherein said moving means comprise an annular member arranged inside the container and axially restrained thereto, said annular member surrounding the gripping members and having a conical annular inner surface.
9. The control device according to claim 8, wherein said annular member is selectively movable between an unlocking position and a locking position of the cam on the shaft, the overall configuration of the annular member being such that in the unlocking position the annular member is axially spaced from the gripping members, which are thus spaced from the conical annular inner surface and do not protrude beyond the periphery of the through hole of the cam, whereas in the locking position the annular member is moved in the axial direction so that the conical annular inner surface urges the gripping members thus causing them to move beyond the periphery of the through hole of the cam toward its axis (A).
10. The control device according to claim 9, wherein maneuvering means are formed on the outer surface of the annular element said maneuvering means being configured so as to allow displacement of the annular element between the unlocking and locking positions.
11. The control device according to claim 10, wherein said maneuvering means are accessible from the outside of the container shell of the cam through an aperture formed therein, said aperture stretching along the circumferential direction of the container shell.
12. The control device according to claim 1, wherein said moving means comprise an annular member restrained inside the container, said annular member surrounding the gripping members and featuring a circumferential gap, the overall configuration of the annular member being such that in the unlocking position end portions of said circumferential gap face each other and are spaced apart and the gripping members do not protrude beyond the periphery of the through hole of the cam, whereas in the locking position the end portions of the circumferential gap substantially contact each other, thereby causing the annular member to push against the gripping members thus making them to move beyond the periphery of the through hole of the cam toward its axis (A).
13. The control device according to claim 12, wherein a pair of maneuvering pins are formed on the end portions of the circumferential gap facing each other, and said moving means further comprise maneuvering means in the form of a lever, said lever maneuvering means being hinged on the container and comprising an elliptic aperture configured to engage said maneuvering pins.
14. The control device according to claim 1, wherein the gripping surface formed on the shaft and the surfaces of the gripping members facing the axis (A) of the through hole of the cam are ribbed surfaces stretching out in a direction parallel to the cam axis (A).
15. The control device according to claim 1, wherein the gripping members are restrained to one another in the circumferential direction by way of connecting elements and wherein the gripping members so restrained form a crown-shaped body.
16. The control device according to claim 15, wherein the connecting elements are resilient elements configured to urge the individual gripping members away from one another in the circumferential direction.
Description
[0018] Further advantages and features of the control device with limit switches according to the present invention will become clear to those skilled in the art from the following detailed and non-limiting description of embodiments thereof, with reference to the accompanying drawings wherein:
[0019]
[0020]
[0021]
[0022]
[0023]
[0024]
[0025]
[0026]
[0027]
[0028]
[0029] Referring to
[0030] The device 100 comprises a container 200 wherein an electric circuit 300 provided with one or more limit switches is housed, for example two limit switches 301, 302. A driving assembly 400 configured to control operation of a valve or an actuator through the switches of the electric circuit 300 is also housed in the container 200.
[0031] The driving assembly 400 comprises a shaft 410 configured to be rotatably coupled to a valve or an actuator (not shown) and one or more cams keyed on the shaft 410 and configured to drive the limit switches of the electric circuit 300. The cams are suitably rotated relative to one another so as to define one or more angular operation ranges of the valve or actuator to which the shaft 410 is restrained. In the illustrated embodiment two cams 420, 430 are e.g. shown.
[0032]
[0033] The container 200 also comprises in a known manner an upper part (not shown) configured to enclose the electric circuit 300 and the driving assembly 400 with the bottom.
[0034] Now referring to
[0035] According to the invention, the shaft 410 includes a gripping surface 411 and the cam 420 includes a radial clamping mechanism whose gripping members are arranged at an assembly through hole 421 configured to allow to key the cam on the shaft 410.
[0036] With reference to
[0037] In the illustrated embodiment, the gripping members 423 are e.g. radially movable relative to the shell container 422 and to this aim radial grooves configured to receive pins of matching shape of the gripping elements 423 are formed in the two half-shells 422a, 422b. It will be appreciated that the gripping members might equivalently comprise grooves and be guided along radial rails having a matching shape.
[0038] Alternatively, the gripping elements 423 could be guided along helical grooves, rotatably pivoted on the half-shells or restrained to the shell container through equivalent kinematic mechanisms.
[0039] In order to allow radial movement of the gripping elements 423 to and from the axis A of the assembly through hole 421, the cam 420 comprises an annular element 424 having a plurality of bumps 425 formed on its inner surface. The number of bumps 425 corresponds to the number of the gripping elements 423. On the outer surface of the annular element 424 maneuvering means 426 are also formed, which allow a user to grasp and rotate the annular element 424 relative to the shell container 422 selectively between an unlocking position and a locking position as will be described in detail hereinafter.
[0040] In an assembled configuration of the cam 420, the annular element 424 and the gripping elements 423 are enclosed between the lower half shell 422a and the upper half shell 422b and the annular element 424 surrounds the gripping elements 423 that face the assembly through hole 421.
[0041] The maneuvering means 426 are accessible through a peripheral aperture 427 of the shell 422 that extends in the circumferential direction. Advantageously, the maneuvering means may be configured as a slider protruding from the peripheral aperture 427, which can be simply grasped and moved with a user's finger.
[0042] With reference to
[0043] By rotating the annular element 424 in a second direction opposite the first direction, e.g. in a clockwise direction as indicated by arrow L in
[0044] According to a preferred embodiment of the invention, the gripping surface 411 formed on the shaft and the surfaces of the gripping members 423 facing towards the inside of the assembly through hole 421 of the cam 420 are ribbed surfaces which extend longitudinally parallel to the cam axis A, i.e. the axis of shaft 410, in other words surfaces comprising a plurality of alternating lands and grooves which allow to achieve a shape coupling between cam and shaft. The position adjustment is extremely accurate and allows to prevent accidental relative rotations between cam and shaft thanks to the shape coupling between the lands and grooves of the surfaces.
[0045] Additionally or alternatively it is possible to configure the gripping surface 411 formed on the shaft 410 and the surfaces of the gripping members 423 facing the inside of the assembly through hole 421 of the cam 420 so as to realize a force fit. To this aim, the annular element 424 with the respective bumps 425 and the gripping members 423 are so sized that the gripping members are caused to make a stroke toward the axis of the through hole 421 of the cam 420 larger than the radial play between the through hole and the shaft 410, whereby in the locking condition a slight interference between shaft and cam is generated, which results in a radial compression force.
[0046] In the case of ribbed surfaces, this configuration advantageously allows to avoid any problem caused by manufacturing tolerances of the components of the driving assembly 400.
[0047] More generally, this configuration may be exploited to achieve a frictional engagement between cams and shaft instead of resorting to a shape coupling, which offers the advantage of a cheaper configuration of the driving assembly 400. In order to increase the coefficient of friction between the surfaces knurls and/or materials having a high coefficient of friction may be used such as rubber, polyurethane and plastic materials.
[0048] By referring again to
[0049] The connecting elements 423a are preferably of a resilient type, e.g. having an arcuate shape as in the illustrated embodiment, and are configured to urge the individual gripping members 423 away from each other in a circumferential direction, so that by rotating the annular element 424 from the locking to the unlocking position they are moved substantially in a snapping manner between consecutive bumps 425 thus releasing the gripping surface 411 of the shaft 410.
[0050] Still referring to
[0051] Now referring to
[0052] With respect to the embodiment disclosed above, the moving means of the gripping members 423 in this case comprise an annular element 424′ axially restrained within the container 422. The annular element 424′ surrounds the gripping members 423 and, as shown in the longitudinal section of
[0053] The annular element 424′ is selectively movable between an unlocking and a locking position of the cam 420 on the shaft 410. In the unlocking position of the cam 420 the annular element 424′ is axially spaced from the gripping members 423 which are thus spaced from the conical annular inner surface 425′ and do not protrude from the periphery of the assembly through hole 421 of the cam 420. In the locking position the annular element 424′ is instead moved axially so that the conical inner annular surface 425′ pushes the gripping members 423 thus causing them to move radially beyond the periphery of the through hole 421 of the cam 420 towards its axis A, which allows the cam to grip the shaft 410.
[0054] Maneuvering means 426′ are formed on the outer surface of the annular element 424′, the maneuvering means being configured so as to allow to move the annular element between the locking and unlocking positions. The maneuvering means 426′ may be accessed from the outside of the shell container 422 of the cam 420 through an aperture 427′ formed therein, which extends in the circumferential and axial direction of the shell container 422. It will be appreciated that in order to allow axial movement of the annular element 424′ so as to unlock the cam, the aperture 427′ features a notch out portion 427′a in the axial direction.
[0055] Now referring to
[0056] In this case the moving means comprise an annular element 424″ restrained inside the container 422 about the gripping members 423. The annular element 424″ features a circumferential gap 425″, whereby it is open and has a certain elasticity. In the unlocking position the end portions of the circumferential gap 425″ facing each other are spaced from one another and the gripping members 423 do not protrude beyond the periphery of the assembly through hole 421 of the cam 420. In the locking position the end portions of the circumferential gap 425″ are brought close to each other thus being substantially in contact with each other, whereby the annular element 424″ pushes the gripping members 423 thus causing them to move beyond the periphery of the through hole 421 of the cam 420 towards its axis A.
[0057] In order to allow to operate the annular element 424″, a pair of pins 425″a, 425″b are formed at the end portions of the circumferential gap 425″, respectively, and the moving means comprise maneuvering means 426″ in the form of a lever pivoted on the container 422. The lever means 426″ comprise an elliptic aperture 426″a configured to engage the maneuvering pins 425″a, 425″b.
[0058] With reference to
[0059] The present invention has hereto been described with reference to preferred embodiments thereof. It will be appreciated that that there may be other embodiments relating to the same inventive idea, as defined by the scope of protection of the claims set forth below.