A GAS VALVE WITH CERAMIC DISC ELEMENT
20230167974 · 2023-06-01
Inventors
Cpc classification
F23K5/007
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F23K2900/05001
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F23K2900/05002
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
The invention relates to a gas valve unit, comprising a body having an inlet channel and an outlet channel in gas flow connection via an inner chamber surrounded by body a stationary disc element fixed in the inner chamber and having a through hole thereon that opens into the gas outlet channel ; a rotating disc element with an inner wall rotatably overlapping a front wall of the stationary disc element and a cavity that access to the outlet channelthrough the through holewhen rotated. The front wall and the inner wall of the stationary disc elementand the rotating disc element facing each other, respectively, are at least partially made of ceramic material.
Claims
1. A gas valve comprising a body having an inlet channel and an outlet channel in gas flow connection via an inner chamber surrounded by body ; a stationary disc element fixed in the inner chamber and having a through hole thereon having access to the gas outlet channel ; a rotating disc element with an inner wall overlapping a front wall of the stationary disc element in a rotatable manner and a cavity that reach the outlet channel through the through hole when rotated characterized in that the front wall and the inner wall of the stationary disc element and the rotating disc element facing each other, respectively, are at least partially made of ceramic material.
2. The gas valve according to claim 1, wherein the stationary disc element and the rotating disc element are made of solid ceramic material.
3. The gas valve unit according to claim 1, wherein a rear wall is provided parallel to the front wall and the stationary disc elementis coupled by a peripheral wall between the front wall and the rear wall through a retainer wall forming the inner wall of the inner chamber .
4. The gas valve unit according to claim 3, wherein a flexible gasket is compressed towards the gas outlet channelon the planar rear wall such that it surrounds the through hole in a gas-tight way.
5. The gas valve unit according claim 1, wherein an oil film is provided between the front wall and the inner wall ,surrounding the through hole and the cavity in a gas-tight way and adjusted to a predetermined viscosity so as to allow rotation on one another.
6. The gas valve unit according to claim 5, wherein a plurality of pockets are provided on the inner wall and store the oil droplet inside so as to feed the oil film during the rotation of the rotating disc element .
7. The gas valve unit according to claim 1, wherein a control rod extends vertically outward by being attached to an outer wall of the rotating disc element .
8. The gas valve unit according to claim 7, wherein a cover surrounds the control rodfrom its upper part at one end and is fixed to the body at the other end.
9. The gas valve unit according to claim 8, wherein a compression spring is adjusted within the cover such that it abuts against the inside of the cover from one end and presses the rotating disc element from the other end.
10. The gas valve unit according to claim 1, wherein the stationary disc element and the rotating disc element are manufactured or coated from a material selected from the group consisting of alumina, silicon carbide, silicon nitride and zirconia.
11. A gas cooker or heating device to which the gas valve unit is adapted according claim 1.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0016]
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[0020]
DETAILED DESCRIPTION OF THE INVENTION
[0021] In this detailed description, the development of the invention has been described without any limitation and only with reference to the examples for a better explanation of the subject.
[0022] In
[0023] A stationary disc element (30) is fixed against axial and rotational movements in the inner chamber (1) by passing the inner chamber (1) perpendicular to the control rod (20) in transverse sections. The stationary disc element (30) is made of ceramic material and has a horizontal, flat form. From a segmented curved circumferential wall (33) of the inner chamber (30), it fits into a retainer boundary (18) having corresponding concave recesses surrounding the inner chamber (1) and defining the inner boundary of the inner chamber (1) from behind. A front wall (35) parallel to and opposite to a rear wall (31) of the stationary disc element (30) and a rotating disc element (40) from one inner wall (41) are overlapped in the inner chamber (1). An outer wall (43) of the rotating disc element (40) extends outward in a truncated conical structure such that it valveers. A rubber flexible sealing gasket (50) is placed on the rear Wall (31) of the stationary disc element (30). The gasket (50) completely surrounds the auxiliary hole (36), which is longitudinally drilled, by means of a through hole (34) of the stationary disc element (30), respectively, and a through hole (32) at an angular distance aligned around thereof. Thereby, the stationary disc element (30) abuts the gasket (50) against the flat rear wall (31) of the body (10) forming the forehead part of the inner chamber (1). Thus, the through hole (32) reaches a gas outlet (14) in a sealed way by means of the gasket (50).
[0024] The body (10) has an inlet (12) for gas supply and a gas outlet (14) associated therewith to selectively transmit fluid. The inlet (12) and the gas outlet (14) are circular and form a passage path for gas flow from the inner chamber (1) with the connection of the cylindrical inlet channel (15) and the outlet channel (16), respectively. In addition, a safety outlet (17) parallel to the gas outlet (14) is connected to the inner chamber (1) on the body (10) so as to provide gas transmission.
[0025] In
[0026] In
[0027] The rotating disc element (40) is placed concentrically on the stationary disc element (30). Both are made of alumina. The inner wall (41) of the rotating disc element (40) overlaps the front wall (35) of the stationary disc element (30). In the closed position, the cavity (42) is blocked by a flat portion of the front wall (35). On the other hand, the mounting hole (44) is coaxial with the central hole (34) and is opened to allow gas passage to each other. The spiral-shaped cavity (42) is spaced radially at an accessible 90° angle, with its front end (424) facing the through hole (32). The cavity (42) extends radially outward from the expansion chamber (45) to reach the baffle wall (425) and wherein it decreases in both cross section and depth from the wide portion (423) to the opposite rear end (421) where the narrow portion 422 is located. Since the control rod (20) extends axially through a cylindrical passage channel formed by the mounting hole (44) and the central hole (34), the gas flow supplied from the inlet (12) from the distance between the control rod (20) and the transition channel is first taken to the expansion chamber (45), then it hits the baffle wall (425) and proceeds from the front end (424) to the wide part (423), and from there through the cavity (42), which narrows both in width and depth, to the rear end (421). In the closed position, the cavity (42) completely covers the planar portion of the front wall (35) of the stationary disc element (30) in a sealed manner. In the maximum gas position in which the gas is directed to the gas outlet (14) at maximum flow rate, the wide part (423) is aligned with the passage hole (32) completely. In this case, a front edge (426) of the cavity (42) aligns with the through hole (32) and the entire area of the through hole (32) lies within the cavity (42). Thus, the stationary disc element (30) transmits the gas flow to the gas outlet (14) through the through hole (32).
[0028] In
[0029] In
[0030] By pushing the control rod (20) from the upper part (22) to which the button is attached, the gas flow is started by pushing the tab of the safety assembly (60) through the lower part (24). A compression spring (28) wound on the front end of the lower part (24) pushes the upper part (22) towards its original position. Meanwhile, the gas from the inlet channel (15) accumulated in the inner chamber (1) first reaches the rear wall (31), then stopped over the stationary disc element (30) and passes through the central hole (34) and reaches the mounting hole (44) of the rotating disc element (40). The gas flow proceeding to the cavity (42) therefrom through the expansion chamber (45), reaches the stationary disc element (30) again, this time from its front wall (35) adjacent to the cavity (42) and is directed through the wide part (423) of the cavity (42) to the through hole (32) located above thereof. The gas flow, which is delivered therefrom to an orifice reaching an outlet channel (16) from which the gas is discharged, reaches the gas outlet (14).
[0031] For regulating the gas flow, the control rod (20) is rotated in its reach axis. The control rod (20) is connected from its upper part (22) to an adapter socket (48) located at the front end (424) of the rotating disc element (40). Thereby, when the control rod (20) is rotated, the rotating disc element (40) rotates. The wide part (423) of the cavity (42) that reaches the through hole (32) by turning the rotating disc element (40) 90° from the closed position, is blocked by the planar part of the front wall (35) while rotating is continuing, and the through hole (32) is aligned with the narrowing section of the cavity (42). In the last step, the narrow part (422) is aligned with the auxiliary through hole (36). The auxiliary through hole (36) has a narrower area than the through hole (32) and is aligned with the narrow portion (422) of the spiral cavity (42) to ensure the minimum gas flow rate.
[0032] In the inner chamber (1), first the stationary disc element (30) and then the rotating disc element (40) are fully abutted from the inner wall (41) to the front wall (35) with an oil film (70) therebetween. Oil film (70) is a standard mineral oil used for sealing moving parts in gas valve units. The thickness and viscosity of the oil film (70) were chosen to allow an operator to easily rotate the rotating disc element (40). The stationary disc element (30) provides temporary blocking of the gas flow by partitioning the inner chamber (1) between the channel forming the rear part of the inner chamber (1) in the body (10) from its rear wall (31) and surrounding the control rod (20) from the lower part (24) and the rotating disc element (40) in the opposite direction. Each pocket (47) formed on the inner wall (41) of the rotating disc element (40) such that it faces the front wall (35) of the stationary disc element (30) has a hemispherical structure and has a diameter of 0.5 to 3 mm. By means of this size and form, when the rotating disc element (40) rotates, oil film (70) is fed from the pockets (47) so as to maintain a predetermined critical thickness of 2-10 microns in the radial direction.
TABLE-US-00001 REFERANCE NUMBERS 1 Inner chamber 40 Rotating disc element 10 Body 41 Inner wall 12 Inlet part 42 Cavity 14 Gas outlet 421 Rear end 15 Inlet channel 422 Narrow part 16 Outlet channel 423 Wide part 17 Safety outlet 424 Front end 18 Retainer boundary 425 Baffle wall 20 Control rod 426 Front edge 22 Upper part 43 Outer wall 24 Lower part 44 Mounting hole 26 Cover 45 Expansion chamber 28 Compression spring 46 Circumferential edge 30 Stationary discelement 47 Pocket 31 Rear Wall 48 Adaptor socket 32 Through hole 50 Gasket 33 Circumferential Wall 60 Safety assembly 331 Handle part 70 Oil film 34 Central hole 35 Front wall 36 Auxiliary through hole 37 Channel 38 Block