Drip irrigation tube with metering elements inserted therein
09807948 ยท 2017-11-07
Assignee
Inventors
Cpc classification
A01G25/02
HUMAN NECESSITIES
B05B15/40
PERFORMING OPERATIONS; TRANSPORTING
Y02A40/22
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
A01G25/023
HUMAN NECESSITIES
International classification
B05B15/00
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A drip irrigation tube is provided with metering elements comprising respectively inlet regions, through which the water in the tube arrives in the metering elements, metering regions, formed by a labyrinth channel, which is delimited by two lateral walls, a cover and the walling of the drip irrigation tube and in which a pressure reduction of the water flowing through takes place, and outlet regions, through which the water emerges out of the drip irrigation tube via outlet openings made in the tube walling. The respective outlet region borders at least on one lateral wall, of the labyrinth channel; at least one region of this lateral wall is covered by an elastic membrane forming a portion of the cover, so that the lateral wall is able to be lifted off of the tube wall by means of the elastic membrane and forms a passage through which the water from the labyrinth channel arrives directly in the outlet region. The water flowing through the metering element can thereby be metered depending upon the water pressure in the drip irrigation tube.
Claims
1. A drip irrigation system, comprising: a drip irrigation tube comprising a tube wall; and multiple metering elements inserted in the drip irrigation tube, wherein each of the metering elements is connected to the tube wall of the drip irrigation tube, and wherein each of the metering elements comprises: an inlet region, through which water from the drip irrigation tube arrives in the metering element; a metering region, comprising a labyrinth channel having a discharge cross section that is not reduced, the labyrinth channel delimited by two lateral walls, a cover and the tube wall of the drip irrigation tube and in which a pressure reduction of water flowing through takes place; and an outlet region, through which water emerges out of the drip irrigation tube via an outlet opening in the tube wall, wherein the outlet region borders on at least one of the two lateral walls of the labyrinth channel, wherein at least one region of the two lateral walls is covered by and connected to an elastic membrane forming a portion of the cover, and wherein the two lateral walls are configured to be lifted off of the tube wall by lifting the elastic membrane, thus forming a passage through which water from the labyrinth channel reaches the outlet region directly.
2. The drip irrigation system of claim 1, further comprising a filter in the inlet region.
3. The drip irrigation system of claim 1, wherein the metering elements are made of one material, comprising an elastomer.
4. The drip irrigation system of claim 1, further comprising projections and depressions on the two lateral walls that form the labyrinth channel.
5. The drip irrigation system of claim 1, wherein the two lateral walls extend from the inlet region over at least a portion of a length of the elastic membrane.
6. The drip irrigation system of claim 1, wherein the two lateral walls extend from the inlet region over an entire length of the elastic membrane.
7. The drip irrigation system of claim 1, wherein the labyrinth channel is disposed around the outlet region, and wherein the two lateral walls comprise an outer lateral wall and an inner lateral wall.
8. The drip irrigation system of claim 7, wherein the outer lateral wall of the labyrinth channel is connected to the tube wall and to the elastic membrane, and wherein the inner lateral wall is connected to the elastic membrane and is able to be lifted off of the tube wall.
9. The drip irrigation system of claim 7, wherein a surface of the inner lateral wall directed toward the tube wall has an inclination toward the outlet region.
10. A drip irrigation system, comprising: a drip irrigation tube comprising a tube wall; and multiple metering elements inserted in the drip irrigation tube, wherein each of the metering elements is connected to the tube wall of the drip irrigation tube, and wherein each of the metering elements comprises: an inlet region, through which water from the drip irrigation tube arrives in the metering element; a metering region, comprising a labyrinth channel, which is delimited by an outer lateral wall and an inner lateral wall, a cover and the tube wall of the drip irrigation tube and in which a pressure reduction of water flowing through takes place; and an outlet region, through which water emerges out of the drip irrigation tube via an outlet opening in the tube wall, wherein the labyrinth channel is disposed around the outlet region, wherein at least one region of the outer lateral wall is connected to the tube wall and is covered by and connected to an elastic membrane forming a portion of the cover, wherein the inner lateral wall is connected to the elastic membrane and is provided with protrusions protruding into the outlet region, said protrusions disposed in a distributed way over a length of the inner lateral wall, and wherein the two lateral walls are configured to be lifted off of the tube wall by lifting the elastic membrane, thus forming a passage through which water from the labyrinth channel reaches the outlet region directly.
11. The drip irrigation system of claim 10, wherein the protrusions have different heights, and wherein the different heights decrease from the inlet region toward an end of the labyrinth channel.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) Embodiments of the invention will be explained more closely in the following, by way of example, with reference to the attached drawings:
(2)
(3)
(4)
(5)
(6)
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(9)
DETAILED DESCRIPTION
(10) Visible in
(11) Via an inlet region 4 the water reaches the metering element 1 out of the interior of the drip irrigation tube 2. The inlet region 4 is provided with filters 5 in a known way, shown only schematically, whereby soil particles which can be located in the water should be prevented from penetrating into the metering element 1. Via the inlet region 4 the water reaches a metering region 6, which is formed by a labyrinth channel 7. This labyrinth channel 7 is bounded by two lateral walls 8, 9, a cover 10 and the walling 3 of the drip irrigation tube 2. Provided on the lateral walls 8 and 9 are projections 11 and depressions 12, which form the labyrinth and by means of which a pressure reduction of the water flowing through takes place.
(12) From the labyrinth channel 7 the water reaches an outlet region 13, from where the water can emerge out of the drip irrigation tube 2 and irrigate the corresponding plant via an outlet opening 14 made in the walling 3 of the drip irrigation tube 2.
(13) As can be seen from
(14) As can be seen from
(15) The elastic membrane 15 is designed in such a way that in unloaded state, i.e. when the water pressure inside the drip irrigation tube equals zero, it has a curve 16 directed toward the inside of the drip irrigation tube as can be seen in
(16) When the water pressure inside the drip irrigation tube 2 increases and presses against the elastic membrane 15, as is shown in
(17) When the water pressure inside the drip irrigation tube 2 increases further, as is shown in
(18) In
(19) As can be seen from
(20) When the water pressure inside the drip irrigation tube 2 increases, the elastic membrane 15 is pressed against the walling 3 of the drip irrigation tube 2, as can be seen from
(21) When the water pressure inside of the drip irrigation tube continues to increase, the elastic membrane 15, is pressed further against the walling 3 of the drip irrigation tube 2, as can be seen from
(22) Thus also with this embodiment of the metering element the water is metered in a way depending upon the water pressure inside of the drip irrigation tube, so that substantially a uniform irrigation is achieved over the entire length of the drip irrigation tube 2.
(23) A third embodiment of a metering element 1 inserted in drip irrigation tube 2 and connected to its walling 3 is illustrated in
(24) The outer lateral wall 18 and the inner lateral wall 19, the labyrinth channel 7 as well as the outlet region 13 are covered by an elastic membrane 15. The outer lateral wall 18 and the inner lateral wall 19 are connected to the elastic membrane 15. The outer lateral wall 18 is also connected to the walling 3 of the drip irrigation tube 2. The inner lateral wall 19 is not connected to the walling 3 of the drip irrigation tube 2.
(25) As can be seen from
(26) With increase of the water pressure inside of the drip irrigation tube 2, as is shown in
(27) When the water pressure inside of the drip irrigation tube 2 increases further, as is shown in
(28) Thus also with this third embodiment of a metering element a practically unchanged metering of the water is achieved over the entire length of a drip irrigation tube 2, whereby an optimal irrigation of the plants is achieved.
(29) The fourth embodiment of a metering element 1 shown in
(30) As can be seen from
(31) When the water pressure inside of the drip irrigation tube 2 increases, as can be seen from
(32) When the water pressure inside of the drip irrigation tube 2 increases further, the elastic membrane 15 is pressed further toward the walling 3 of the drip irrigation tube 2. The protrusions come to abut the walling 3 of the drip irrigation tube completely, so that no water can escape anymore into the outlet region 13 from these protrusions 22. Thus the water must flow through the entire length of the labyrinth channel 7 and is correspondingly greatly metered.
(33) The heights of the protrusions 22 can differ. The protrusion closest to the inlet region 4 can have the greatest height. The protrusion 22 which has the largest distance from the inlet region 4 can have the most minimal height. Achieved in this way is that the effective length of the labyrinth channel 7 grows with increasing water pressure inside of the drip irrigation tube 2.
(34) Achieved also with this fourth embodiment of a metering element is that, through the adjusted metering, at every metering element 1 over the entire length of a drip irrigation tube 2 a practically equal quantity of water exits out of the outlet opening 14 for irrigation of the plants.
(35) Achieved with the present invention is that the irrigation of plants takes place in the same way over the entire length of drip irrigation tubes.
(36) The metering elements described in the foregoing are made of a single material, in particular an elastomer which can take place by punching or another suitable production process.