Automatic balancing valve
09910447 ยท 2018-03-06
Assignee
Inventors
- Giulio Pettinaroli (San Maurizio d'Opaglio, IT)
- Liborio Spagnolo (San Maurizio d'Opaglio, IT)
- Sergio D'Andrea (San Maurizio D'Opaglio, IT)
Cpc classification
G05D7/0106
PHYSICS
F16K3/246
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16K1/42
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F24D19/1015
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F16K31/12
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16K3/24
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16K31/53
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
An automatic balancing valve is described, wherein a pressure regulator device is provided and comprises a sleeve sliding axially between a position opening at least one passage port for the fluid towards the outlet channel and a position closing the passage port/s depending on the pressure difference detected between two different chambers separated by an elastic membrane.
Claims
1. An automatic balancing valve comprising a valve body having at least one inlet channel and at least one outlet channel in which, in the same valve body, a flow controller device and a differential-pressure regulator device are housed, wherein the differential-pressure regulator device comprises at least one central duct, and wherein the differential-pressure regulator device comprises an elastic bellows-like membrane separating the inner volume of the differential-pressure regulator in a first chamber hydraulically connected with the inlet channel and a second chamber hydraulically connected downstream to the differential-pressure regulator with respect to the fluid flow between the inlet channel and the outlet channel, wherein said differential-pressure regulator device comprises a sleeve coaxial to said central duct and mechanically connected to said elastic bellows-like membrane, the sleeve sliding axially in a seat of a locking insert housed in the valve body between a position opening at least one passage port for the fluid between said second chamber and the outlet channel, and a second position closing said at least one passage port depending on the pressure difference between said first and said second chamber, wherein between said sleeve and the respective seat of said locking insert in which it is slidingly engaged there is a gap fluidically communicating said second chamber with said outlet channel, and in that it comprises a floating gasket surrounding the outer surface of the sleeve and freely slidingly moving with respect to the sleeve between a position in which a small flow amount leaks through said gap and a position in which the leakage through said gap is blocked depending on the difference between the fluid pressure in said second chamber and the fluid pressure in said outlet channel.
2. The valve according to claim 1, wherein said flow controller device has a valve with a valve seat and a translationally movable disk plug.
3. The valve according to claim 2, wherein said central duct has an end communicating with the inlet channel and, at the opposite end, with the valve seat for the disk plug of the flow controller device.
4. The valve according to claim 1, wherein said flow controller device has a ball valve with a rotary ball plug.
5. The valve according to claim 4, wherein said central duct has an end communicating with the outlet of the ball plug, while the opposite end of the central duct is hydraulically connected to said second chamber.
6. The valve according to claim 1, wherein said flow controller device is constituted by a gauged-hole disk.
7. The valve according to claim 6, wherein said central duct has an end communicating with the hole of the gauged-hole disk, while the opposite end of the central duct is hydraulically connected to said second chamber.
8. The valve according to claim 1, wherein said floating gasket is of lip type.
9. The valve according to claim 1, wherein said floating gasket is of O-ring type.
10. The valve according to claim 1, wherein said floating gasket is of bellows type.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) Further features and advantages of the present invention will be more apparent from the following description which is given by way of illustration and not by way of limitation with reference to the accompanying drawings, in which:
(2)
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(5)
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(11)
DETAILED DESCRIPTION
(12)
(13) In these kind of valves, as known, the regulator device 5 acts in combination with the device 4 to maintain constant the pressure differential p, i.e. (P1P2 according to signs of
(14) As illustrated in the sectional view of
(15) The differential-pressure regulator device 5 comprises an elastic bellows-like membrane 52 separating the inner volume of the regulator in a first chamber 53 hydraulically connected with the inlet channel 2 and a second chamber 54 placed downstream of the valve seat 51 and the respective plug 41 with respect to the fluid flow between the inlet channel 2 and the outlet channel 3. The membrane movement 52 is hindered by a countering spring 55 trying to keep it in the position illustrated in
(16) The sleeve 56 is mechanically connected to the elastic bellows-like membrane 52 and is arranged coaxially to the central duct 50. The sleeve 56 slides axially in a seat of the locking insert 7 housed in the valve body 1 between a position, depicted in
(17) There is a gap 57 (visible in the enlarged and detailed views of
(18) The operation of the automatic balancing valve herein described is illustrated below, also by referring to pressure values detected in the various valve sections. The fluid enters the valve and therefore the first chamber 53 through the inlet channel 2 and has an initial pressure P1, then it goes on crossing the central duct 50. At the outlet of the central duct 50, the fluid passes between the seat of the valve 51 and the upper plug 41 of the device 4 for controlling the flow rate, thereby reducing its pressure to the P2 value detected in the second chamber 54. Then the fluid goes on through the passage ports 16, which can be open otherwise partially or completely blocked by the sleeve 56, and reaches the outlet channel 3 with a value pressure P3 just detected by the position of the sleeve 56.
(19) In practice, the differential-pressure regulator device 5 automatically controls and keeps constant the p (difference between P1 and P2) at the ends of the flow controller device 4. The automatic action of the regulator device 5 is carried out on the basis of the equilibrium between the force generated by the pressure differential p and the countering force of the spring 55 in order to cause the axial displacement of the sleeve 56. If the pressure difference between the entering and exiting fluids (i.e. P1P3) changes, the regulator device 5 responds by moving the sleeve 56 for opening or closing, totally or partially, the passage ports 16 and keeping constant the p value (i.e. P1P2). In these conditions the flow rate through the valve will be constant.
(20) In
(21) In
(22) As the pressure difference between P1 and P3 increases, the sleeve 56 rises further thereby blocking more and more the passage ports 16 (
(23) As shown in
(24) Once the equilibrium has been restored between the pressures P1 and P2 (
(25) A possible alternative embodiment of a valve according to the present invention is depicted in
(26) A simplified embodiment of a valve according to the present invention is depicted for example in
(27) Various modifications can be made to the herein depicted embodiments without departing from the scope of the present invention. For example, the flow controller device can also have a disk plug with superimposed ceramic disks which are mutually and rotationally operated, instead of the disk plug 41 translationally operated or the rotary ball plug 45. Furthermore, the shape of the floating gasket 58 can also have chord sections different from those depicted, by way of example, in