Device for mixing and metering at least two gases
10688460 ยท 2020-06-23
Assignee
Inventors
Cpc classification
Y10T137/87161
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
F16K11/0655
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B01F35/833
PERFORMING OPERATIONS; TRANSPORTING
Y10T137/87692
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
International classification
Abstract
A device for mixing and metering of at least two gases, comprising two bodies that can be displaced relative to each other, wherein margins of the bodies are in contact with one another and between these margins at least two rectangular openings for one gas each can be formed, wherein a displacement of the bodies relative to each other automatically causes an increase of one opening and a decrease of the other opening, wherein the resulting total cross-section of the openings remains constantly the same here. Moreover, the device comprises a control element which is arranged adjacent to the two bodies and in contact therewith, wherein the control element can be translationally displaced in a continuous manner between a closed position and an open position in order to close or to open the openings.
Claims
1. A device for mixing and metering of at least two gases, comprising a component that can be displaced, wherein a direction of movement of the component for mixing of the gases and a direction of movement of a device for metering of the gases are vertical to each other, the device comprising: two bodies for mixing the gases, the two bodies being displaced relative to each other, and are arranged next to each other in a common plane extending vertically to the flow direction of the gases, wherein margins of the bodies are in contact with one another and between these margins at least two rectangular openings for one gas each can be formed, wherein a displacement of the two bodies relative to each other in a first direction of movement parallel to their margins automatically causes an increase of one opening and a decrease of the other opening, and the resulting total cross-section of the openings remains substantially constant; and a control element for metering of the gases, the control element being arranged adjacent to the two bodies and in contact therewith, wherein the control element in a second direction of movement vertically to the first direction of movement between a closed position, in which the openings, which can be formed between the margins of the bodies, are entirely covered by the control element and thus closed, and an open position, in which the openings, which can be formed between the margins of the bodies, are entirely opened, can be translationally displaced in a continuous manner.
2. The device according to claim 1, wherein the two bodies for mixing of the gases are configured such that on a margin of one body at least a rectangular projection and on a margin of the respective other body at least a rectangular recess is provided, wherein the recess alongside the margin is longer than the projection so that, if the bodies are in contact with one another with these margins, rectangular openings between the bodies are formed for the respective gases.
3. The device according to claim 1, wherein a base plate and a cover plate are provided in which through-holes each are defined for the gases, wherein the bodies and the control element are arranged between the base plate and the cover plate, wherein the through-holes in the base plate and the cover plate are arranged in alignment with each other, and the openings, which are formed between the margins of the bodies, are in fluid connection with the through-holes.
4. The device according to claim 3, wherein in a surface of the cover plate facing the control element a recess is formed in which the control element is received and guided in a displaceable manner in the second direction of movement.
5. The device according to claim 1, wherein the control element comprises a control edge, wherein in a translational displacement of the control element in the second direction of movement the control edge gets into interaction with the openings, which are formed between the margins of the bodies in order to change the free cross-section of the openings and thus to meter the gases and/or to control the gas flow through the openings.
6. The device according to claim 5, wherein the control edge is formed on a margin of the control element or on an edge of a window formed in the control element.
7. The device according to claim 2, wherein the bodies for mixing of the two gases are configured such that on the margin of the one body precisely one rectangular projection and on the margin of the respective other body at least a rectangular recess is provided so that between the margins of the bodies, namely in the two end regions of the rectangular recessdepending on the position of the two bodies relative to each otherone opening each are formed, wherein these two openings are each allocated to a first gas or a second gas.
8. The device according to claim 7, wherein in the base plate and in the cover plate each a first through-hole for passing the first gas and a second through-hole for passing the second gas are formed, wherein the first through-holes and the second through-holes each of the base and cover plate are arranged in alignment with each other, and here the openings, which are formed between the margins of the bodies, are in fluid connection with the first through-holes and/or the second through-holes.
9. The device according to claim 2, wherein the bodies are formed for mixing of three gases such that on the margin of the one body precisely two rectangular projections and in-between a central rectangular recess are formed and on the margin of the respective other body precisely two external recesses and in-between a central rectangular projection are formed so that between the margins of the bodies, namely in the two external end regions of the external recesses depending on the position of the two bodies relative to each otherone opening each are formed, which is allocated to a first gas or a second gas, wherein the opening, which is formed between the margins of the bodies in the area of the central recess and the central projection, is allocated to a third gas.
10. The device according to claim 9, wherein in the base plate and in the cover plate externally each a first through-hole for passing the first gas and a second through-hole for passing the second gas is formed, and in-between a third through-hole each for passing a third gas is formed, wherein the first, second and/or third through-holes of the base and cover plate are arranged in alignment with each other, wherein the openings, which are formed between the margins of the bodies in the two external end regions of the external recesses are in fluid connection with the first through-holes and/or the second through-holes, wherein the opening, which is formed between the margins of the bodies in the area of the central recess and the central projection, is in fluid connection with the third through-holes.
11. The device according to claim 1, wherein one of the two bodies, which is arranged adjacent to a margin of the base plate, is fastened on a surface of the base plate by adhesives or screws, wherein the other body in each case is guided in a displaceable manner on the surface of the base plate.
12. The device according to claim 3, wherein between the base plate and the cover plate an additional body is received, which has approximately the same height as the two bodies and is adjacent to the displaceable body, and wherein the additional body is U-shaped and laterally encompasses the bodies.
13. The device according to claim 1, wherein controller is provided via which the displaceable body and the control element are driven from an outside of the device, wherein the controller is formed by rotary knobs the rotation of which are transferred by allocated wedge faces into a linear movement for the displaceable body and/or the control element.
14. The device according to claim 1, wherein the body, the control element, the base plate, the cover plate and/or the additional body are made of materials and/or are provided with coatings which are non-reactive in interaction with the gases.
15. The device according to claim 1, wherein the bodies and/or the control element are made of brass, plastic or ceramics.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The present invention will become more fully understood from the detailed description given hereinbelow and the accompanying drawings which are given by way of illustration only, and thus, are not limitive of the present invention, and wherein:
(2)
(3)
(4)
(5)
(6)
(7)
(8)
(9)
(10)
(11)
(12)
(13)
(14)
(15)
DETAILED DESCRIPTION
(16) In
(17)
(18) The bodies 2 and the control element 10 are received together with an additional body 30 between a base plate 16 and a cover plate 18. Here, the base plate 16 and the cover plate 18 are fastened to each other by screw connections. The additional body 30 has approximately the same height as the body 2. The additional body 30 is U-shaped so that it laterally encompasses the bodies 2 in mounted condition of the device 1. The purpose of this U-shaped configuration of the additional body 30 is still explained in detail below.
(19) A recess 24 is formed on a surface 22 of the cover plate 18 facing the control element 10 in which the control element 10 is received and guided in a displaceable manner in the second direction of movement R2. Here, the depth of said recess 24 substantially corresponds to a height of the control element 2 so that the control element 10 can be inserted into the recess 24 approximately flatly.
(20) Both in the base plate 16 and in the cover plate 18, through-holes 20 each are formed for the gases to be mixed and metered. In detail, each a first through-hole 20.1 and a second through-hole 20.2 is formed in the base plate 16 and in the cover plate 18, provided that in the case of the mounted device 1, each the first through-holes 20.1 and the second through-holes 20.2 are arranged in alignment with each other.
(21) The configuration of the bodies 2 is explained below by means of
(22) The bodies 2 are configured in the form of longitudinal plates which are provided on a margin each with a rectangular projection and/or a rectangular recess. When the bodies 2 with said margins are brought into contact with each other, it is possible due to the rectangular projection and/or recess that between the margins of the bodies 2 rectangular openings 8 (cf.
(23) In case that the device 1 is mounted together, the two bodies 2 are placed on a surface 17 of the base plate 16. Here, a first body 2.1 is arranged on the surface 17 in a displaceable manner, namely in the first direction of movement R1. A second body 2.2 is arranged adjacent to a margin 16R of the base plate 16 and thereby fastened on the surface 17 of the base plate 16, e.g. by adhesives or screws.
(24) As shown in
(25) In the case that the device 1 is mounted together, the bodies 2.1 and 2.2 are received between the base plate 16 and the cover plate 18 such that the opening 8.1 is in alignment with the first through-holes 20.1 and that the opening 8.2 is in alignment with the second through-holes 20.2.
(26) At this point it is pointed out that the through-holes 20 are connected in the base plate 16 to supply lines for a first gas G1 and a second gas G2. In this way, the gases G1 and G2 are supplied to the device 1, preferably under a certain pressure. Due to the aligned arrangement of the openings 8.1, 8.2, which can be formed between the margins 4, 6 of the bodies 2.1, 2.2, with the through-holes 20 in the base plate 16 and the cover plate 18 it is possible that the gases G1, G2 are flowing from the base plate 16 in the direction of the cover plate 18 and there are flowing out again from the first and second through-holes 20.1, 20.2. This flow direction is symbolized by the arrow S in
(27)
(28) For activation of the first body 2.1, for the purpose of displacement in the first direction of movement R1 and relative to the second body 2.2, controller 32 (cf.
(29) Moreover, controller 34 is provided which is shown in
(30) With respect to the controller 32, 34, it is pointed out that they can be actuated from an outside of the device 1. If the device 1 is an integral part of another apparatus or is integrated into such a unit, it is understood that the controller 32, 34, e.g. can be arranged on a control panel or the like in order to drive from there the first body 2.1 and the control element 10 in a desired manner.
(31)
(32) Moreover, it is pointed out that the bodies 2.1, 2.2 in the mounted device 1 are arranged next to each other in a common plane E (cf.
(33) Fastening of the base plate 16 and the cover plate 18 with one another occurs such that a sufficiently large surface pressure is applied on the bodies 2 received in between and the control element 10 in order to prevent leakage flows of the gases G1, G2. For this purpose, also the U-shaped configuration of the additional body 30 is advantageous which laterally encompasses the bodies 2. Regarding the surface pressure just mentioned it has to be observed that here always a mobility of the first body 2 in the first direction of movement R1 and the control element 10 in the second direction of movement R2 is maintained.
(34) The mixing of two gases G1, G2 by means of the device 1 of
(35)
(36) According to the illustration in
(37) Different from the illustration in
(38) In
(39) The metering of the gases G1, G2 in the device 1 of
(40)
(41)
(42) In the position of
(43) According to the positions of
(44) It is pointed out here again that the translational displacement of the control element 10 in the second direction of movement R2 and thus the position of its control edge 26 always affects the openings 8 in the same way which can be formed between the margins 4, 6 of the two bodies 2.1, 2.2. By this, always the same metering for the gases G1, G2 is guaranteed irrespective of the mixing ratio adjusted for it.
(45) In
(46) The device 1 according to the second embodiment corresponds from its functional principle regarding mixing and metering of the gases to the first embodiment according to
(47) The second embodiment differs from the first embodiment in that mixing of three gases G1, G2 and G3 is possible here. Accordingly, in the base plate 16 and in the cover plate 18 apart from the first and second through-holes 20.1, 20.2 also third through-holes 20.3 (cf.
(48) Another difference compared with the first embodiment is that according to the illustration in
(49) The isolated illustration of the bodies 2.1, 2.2 in
(50) If the first body 2.1 and the second body 2.2 with their margins 4, 6 are brought into contact with one another (cf.
(51) The opening 8.3 retains in each position of the first body 2.1 relative to the second body 2.2 a constant flow area and by the central, rectangular projection 15, which projects into the recess 13, is subdivided into two windows depending on the position of the first body 2.1. Nevertheless, it is to be understood that these two windows of the opening 8.3 are each in fluid connection with the third through-holes 20.3 in the base plate 16 and the cover plate 18, and thus the third gas G3 is flowing through both.
(52) In adjustment to the third opening 8.3, which is formed between the margins 4, 6 of the bodies 2, another window 28 is also formed in the control element 10, namely in its central portion. In the same way as for the two external windows 28, a control edge 26 is formed on an edge of the central window 28 which in the case of a corresponding positioning of the control element 10 relative to the bodies 2 can be caused to overlap the opening 8.3. This is, e.g. made clear in
(53) In the same way as in
(54) Contrary to the embodiment of
(55) The metering of the gases G1-G3 in the second embodiment of the device 1 occurs by means of the control element 10 according to the same principle as in the first embodiment, and is illustrated in
(56) For both of the above embodiments (according to
(57) It is also pointed out for both embodiment of the device 1 that their elements are preferably made of materials which do not show any interaction with the gases G1, G2 and G3 or are provided with corresponding coatings for the same purpose. The control element 10 is preferably made of plastic whereby good sliding properties with respect to the bodies 2 and/or the cover plate 18 are guaranteed. The bodies 2 can be made of brass.
(58) The invention being thus described, it will be obvious that the same may be varied in many ways. Such variations are not to be regarded as a departure from the spirit and scope of the invention, and all such modifications as would be obvious to one skilled in the art are to be included within the scope of the following claims.