Device for closing a delivery head of a dispensing machine for delivering fluid products, such as dyes for paints and the like

11590525 · 2023-02-28

Assignee

Inventors

Cpc classification

International classification

Abstract

A device for closing a delivery head of a dispensing machine for delivering fluid products includes a stationary support, a drive shaft, which rotates with respect to the stationary support around a vertical axis, and can be moved with respect to the stationary support along the same vertical axis, a cup-shaped closing element carried at the distal end of an arm fixed to a lower end of the drive shaft, and a screw and nut mechanism which controls a translation of the closing element in the direction of the longitudinal axis and a rotation movement to the longitudinal axis using a single actuator.

Claims

1. A device for closing a delivery head of a dispensing machine for delivering fluid products, comprising: a stationary support, a drive shaft having a lower end, the drive shaft being rotatable with respect to the stationary support around a vertical axis and movable with respect to the stationary support along said vertical axis, an arm having a distal end, the arm being fixed to said lower end of the drive shaft, a cup-shaped closing element carried at said distal end of said arm, wherein the closing element has an open upper edge capable of engaging a lower edge of a delivery head, a screw and nut mechanism including a screw fixed to the drive shaft and a nut rotationally fixed with respect to the stationary support and movable with respect to the stationary support along said vertical axis, and a cam carried by the stationary support and cooperating with a cam-follower carried by the drive shaft, wherein said cam has a first cam portion and a second cam portion, wherein when the cam-follower engages the first cam portion, the drive shaft is rotationally bound to the stationary support, and is free to move along the vertical axis, wherein when the cam-follower engages the second cam portion, the drive shaft is axially bound to the stationary support, and is free to rotate around the vertical axis, in such a way that a vertical stroke of the nut along the vertical axis between a raised position and a lowered position controls, in succession, a translation of the drive shaft along the vertical axis and a rotation of the drive shaft around the vertical axis, and wherein a translation of the nut from the lowered position to the raised position controls, in succession, a rotation of the drive shaft around the vertical axis and a translation of the drive shaft along the vertical axis.

2. The device according to claim 1, comprising a linear actuator having a pin coaxial to said vertical axis and fixed to a nut support to which said nut is fixed.

3. The device according to claim 2, wherein said nut support engages vertical guides carried by said stationary support.

4. The device according to claim 1, comprising a gasket resting on a surface of the open upper edge of the cup-shaped closing element.

Description

BRIEF DESCRIPTION OF THE DRAWINGS

(1) Further characteristics and advantages of the present invention will become apparent from the detailed description that follows, given purely by way of non-limiting example, with reference to the attached drawings, wherein:

(2) FIG. 1 is a perspective view of a dispensing machine provided with a closing device according to the present invention,

(3) FIG. 2 is a perspective view on a larger scale of the part indicated by the arrow II in FIG. 1,

(4) FIG. 3 is an exploded perspective view of the closing device indicated by the arrow III in FIG. 2,

(5) FIG. 4 is a partially cross-sectioned perspective view of the closing device according to the present invention, and

(6) FIGS. 5, 6 and 7 are perspective views illustrating some steps of the operation of the closing device according to the present invention.

DETAILED DESCRIPTION

(7) With reference to FIG. 1, numeral 10 indicates a dispensing machine configured for delivering dosed quantities of various fluid products, such as, for example, dyes for preparing paints. The machine 10 comprises a stock 12 in which a plurality of containers (canisters) containing different fluid products (typically dyes) are contained. The containers are connected to respective ducts by means of respective dispensing pumps.

(8) The ducts coming from the various containers of the machine 10 are connected to a delivery head 14 inside which a plurality of nozzles—oriented in a vertical direction—are arranged and connected to respective ducts. The nozzles of the delivery head 14 are enclosed in a tubular member 16 having an open lower edge.

(9) The machine 10 comprises a base 18 on which containers are placed in which the dyes dispensed by the delivery head 14 are poured.

(10) The dispensing machine 10 comprises a closing device 20 for closing the delivery head 14 at the end of each step of dispensing dyes.

(11) With reference to FIG. 2, the closing device 20 comprises a stationary support 22 fixed to a plate of the machine 10. The closing device 20 comprises a cup-shaped closing element 24 carried by an arm 26, and movable between a closed position and an open position. In the closed position, the closing element 24 is applied to the open lower edge of the tubular member 16 of the delivery head 14. In the open position, the closing element 24 is disengaged from the delivery head 14 and is moved laterally with respect to the open lower edge of the delivery head 14 so as not to hinder the dispensing of fluid products.

(12) With reference to FIGS. 3 and 4, the closing device 20 comprises a drive shaft 28 having a longitudinal axis A that is vertical and parallel to the longitudinal vertical axis B (FIG. 2) of the delivery head 14. The drive shaft 28 carries a screw 30 that is coaxial to the axis A which can be formed integrally on the shaft 28 or can consist of a separate component fixed to the shaft 28.

(13) The drive shaft 28 also comprises a cam-follower 32 formed by two protruding elements 34 of a parallelepiped shape, fixed with respect to the drive shaft 38 and protruding from the outer surface of the drive shaft 28 along a perpendicular direction with respect to the longitudinal axis A. The drive shaft 28 has a lower end 36 which protrudes below the stationary support 22.

(14) The arm 26 carrying the closing element 24 is located below the stationary support 22 and has a base 38 fixed to the lower portion 36 of the drive shaft 28. The closing element 24 is fixed to the distal end of the arm 26, and is eccentric with respect to the longitudinal axis A.

(15) As can be seen in greater detail in FIG. 4, the closing element 24 has a bottom wall 40 and an open upper edge 42. An annular channel 44 open upwards is formed along the open upper edge 42 in which a flat ring-shaped gasket 46 is housed. A sponge 47 intended to be soaked in water can be placed on the bottom wall 40 of the closing element 24.

(16) Still with reference to FIGS. 3 and 4, the closing device 20 comprises a cam 48 fixed to a lower part of the stationary support 22 and cooperating with the cam-follower 32 carried by the drive shaft 28. The cam 48 has a first cam portion 48′ and a second portion of cam 48″. The first cam portion 48′ has the shape of a slot parallel to the axis A, and with a width in the direction perpendicular to the axis A that is slightly greater than the width of the protruding elements 34 of the cam-follower 32. The second cam portion 48″ is formed by two chambers, each of which is configured to receive a respective protruding element 34 of the cam-follower 32, and having a height in a direction parallel to the longitudinal axis A that is slightly higher than the height in the direction of the longitudinal axis A of the protruding elements 34.

(17) When the cam-follower 32 of the drive shaft 38 engages the first cam portion 48′, the walls of the first chamber portion 48 prevent rotation of the drive shaft 28 about the axis A, and allow a translation of the drive shaft 28 in the direction of the longitudinal axis A. When the drive member 32 engages the second cam portion 48″, the walls of the second cam portion 48″ prevent translation of the drive shaft 28 in the direction of the longitudinal axis A and allow rotation of the drive shaft 28 about the longitudinal axis A.

(18) The closing device 20 comprises a nut 50 that engages the screw 30 of the drive shaft 28. The screw and the nut have a helix angle with a very high thread, close to 60°, so that the screw/nut couple has a high reversibility. The appropriate choice of materials used for the screw/nut couple and the thread profile also allows the creation of a particularly low friction coefficient favoring the aforesaid reversibility.

(19) The nut 50 is fixed to a support of the nut 52 that engages a vertical guide 54 of the stationary support 22. The vertical guide 54 engages surfaces 56 of the support of the nut 52, and prevents rotation of the support of the nut 52 (and of the nut 50 fixed thereto) around the longitudinal axis A. The support of the nut and the nut 50 fixed thereto are free to translate with respect to the stationary support 22 in the direction of the longitudinal axis A and are guided along this direction by the vertical guide 54 of the stationary support 22.

(20) The closing device 20 further comprises an actuator 58 which controls the movement of the support of the nut 52 in the direction of the longitudinal axis A between a raised position and a lowered position, and vice versa. The actuator 58 can be a commercial linear actuator and can be fixed to the upper part of the stationary support 22 by means of a flange 60. With reference in particular to FIG. 4, the actuator 58 can have a vertically movable pin 62 coaxial to the axis A, and having a lower end fixed to a bracket 64 fixed to the upper part of the support of the nut 52.

(21) The operation of the closing device 20 will now be described with reference to FIGS. 5-7.

(22) In FIG. 5 the closing device 20 is in the closed position. In this position, the closing element 24 is pressed against the lower end of the delivery head 14. The gasket 46 carried by the closing element 24 is pressed against the open lower edge of the tubular member 16 of the delivery head 14. In this condition, the lower ends of the nozzles of the delivery head 14 are isolated from the external environment and are contained in a humid environment due to the presence of the sponge 47 soaked in water located on the bottom 40 of the closing element 24.

(23) In this configuration, the actuator 58 of the closing device 20 is in the raised position and the cam-follower 32 of the control shaft 28 engages the first cam portion 48′ of the cam 48. In this condition, the first cam portion 48′ prevents rotation of the control shaft 28 around the axis A, but does not prevent translation of the control shaft 28 in the direction of the longitudinal axis A.

(24) Starting from the configuration illustrated in FIG. 5, the actuator 58 controls a downward movement of the support of the nut 52 and, consequently, of the nut 50 fixed thereto. During the first step of the downward stroke of the support of the nut 52, the cam-follower 32, engaged with the first portion 48′ of the cam 48, prevents rotation of the drive shaft 28 about the axis A. Therefore, the drive shaft 28 moves in the direction A together with the nut 50. Then, the drive shaft 28 moves the arm 26 and the closing element 24 downwards. In this way, the closing element 24 disengages from the lower end of the tubular member 16 of the delivery head 14, as shown in FIG. 6.

(25) In the configuration illustrated in FIG. 6, the cam-follower 32 has disengaged from the first cam portion 48′. At this point, the actuator 58 continues to move the support of the nut 52 and the nut 50 downwards. However, the drive shaft 28 cannot move further downwards since the cam-follower 32 is in contact with the lower wall of the second cam portion 48″. At this point, thanks to the remarkable reversibility and the low friction coefficient of the screw/nut couple used, continuing the downward movement of the nut 50, the drive shaft 28, being unable to translate axially, rotates around the axis A since the second cam portion 48″ allows rotation of the cam-follower 32. Then, the drive shaft 28 rotates the arm 26 around the vertical axis A and moves the closing element 24 with respect to the lower end of the delivery head 14, freeing the space under the delivery head 14 to allow the dispensing of dyes. Rotation of the arm 26 about the axis ends when the actuator 58 reaches its completely lowered position.

(26) The aforesaid operations are repeated in reverse order when the actuator 58 is moved from the lowered position to the raised position.

(27) A particularly advantageous characteristic of the closing device according to the present invention is that the engagement of the closing element 24 on the delivery head 14 occurs along a vertical direction. Therefore, the gasket 46 is uniformly compressed. The actuator 58 is able to apply a high closing force, which ensures effective compression of the gasket 46 against the open lower edge of the delivery head 14. Furthermore, during the opening step, the movement of the closing element 24 downwards, preceding the horizontal displacement necessary to clear the dosing area, avoids the risk of intercepting and cutting the drops hanging at the lower ends of the nozzles of the delivery head 14, and avoids vibrations of the delivery head 14.

(28) Of course, without prejudice to the principle of the invention, the details of construction and the embodiments can be widely varied with respect to those described and illustrated, without thereby departing from the scope of the invention as defined by the claims that follow.