PROCESS AND FACILITY FOR REGULATION THE AMOUNT OF OXYGEN SUPPLIED TO ANIMAL DRINKING WATER
20250275522 · 2025-09-04
Inventors
- Dominique Ibarra (Gif-sur-Yvette, FR)
- Franck COUSIN (Gif-sur-Yvette, FR)
- Pauline Le Dru (Beaucouzé, FR)
Cpc classification
International classification
Abstract
The invention relates to a facility for farming animals, and in particular poultry and pigs, comprising means for supplying water to the animals for their drinking, said supply means comprising: an injector (7, 8) making it possible to inject a gas into the water; a water inlet line (20) and a gas inlet line (3, 4, 5, 6), reaching into the injector; anda source (1) of oxygen or of a gaseous mixture comprising oxygen, for example an oxygen store, which is able to dispense oxygen into the gas line; a water tank (17) at atmospheric pressure, the injector being supplied with water from the water located in this tank, which tank can additionally be supplied with fresh water (20); a coil (10) able to receive water loaded with dissolved oxygen originating from the injector, which water reaches the coil by virtue of a pump (9), which coil makes it possible to create a water/oxygen contact time; the water leaving the coil passing through a discharge spout (12) in order to be entirely directed towards the drinking water or else partially towards the drinking water and partially into the tank (17). The invention is characterised in that two simultaneous injections of oxygen or of a mixture comprising oxygen in the water are carried out: one (3, 5, 7) upstream of the pump and the other (4, 6, 8) downstream of the pump (9), the flow rate of the injection carried out upstream being lower than the flow rate of the injection carried out downstream of the pump.
Claims
1. A facility for rearing animals, in particular poultry and pigs, including for conveying water to the animals for their watering, the facility comprising: an injector (7, 8) configured to inject a gas into water; a water inlet line (20) and a gas inlet line (3, 4, 5, 6) arriving in the injector; a source (1) of oxygen or of a gas mixture comprising oxygen, capable of delivering oxygen into the gas inlet line, a tank (17) of water at atmospheric pressure, the injector being supplied with water from the water in the tank, wherein the tank is furthermore supplied with new water (20); a coil (10) capable of receiving water charged with dissolved oxygen coming from the injector, wherein the water arrives at the coil by virtue of a pump (9), and the coil creates a water/oxygen contact time; the water coming out of the coil passing through a device so that it is directed in full to the watering zone or else partly to the watering zone and partly to the tank (17), wherein the facility performs two simultaneous injections of oxygen or of a mixture containing oxygen into the water, one (3, 5, 7) upstream of the pump and the other (4, 6, 8) downstream of the pump (9), the flow rate of the injection performed upstream being lower than the flow rate performed downstream of the pump.
2. The facility as claimed in claim 1, wherein the source is an oxygen concentrator supplying oxygen-enriched air.
3. A method of conveying watering water to livestock, wherein the water is conveyed to the animals by means of the facility as claimed in claim 1.
4. The method as claimed in claim 3, wherein the flow rate of gas injected upstream of the pump represents between 5% and 25% of the saturation point of pure oxygen in water under considered temperature conditions at a farm, while the flow rate downstream of the pump represents the amount required to supplement the first injection to reach a desired value for a total oxygen content in the water supplied to the animals.
5. The method as claimed in claim 3, wherein an operation of the pump is linked to a light level in a building where the animals are housed.
6. The method as claimed in claim 3, wherein the injection of the gas is linked to a fresh water inlet in the facility.
7. The method as claimed in claim 3, wherein an adjustable time delay is applied to the gas injection to prolong the injection for a desired period of time after the fresh water input in the facility is stopped.
8. The facility as claimed in claim 1, wherein the device is a backpressure regulator (12).
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0015] For a further understanding of the nature and objects for the present invention, reference should be made to the following detailed description, taken in conjunction with the accompanying drawings, in which like elements are given the same or analogous reference numbers and wherein:
[0016]
DETAILED DESCRIPTION OF PREFERRED EMBODIMENTS
[0017] The following elements are identified in this
[0027] This previously proposed facility has already proven successful in limiting capital costs, since it avoids the (expensive) use of an oxygen analyzer.
[0028] The WATER line arriving from the right supplies the bath with fresh or new water, thus enabling the tank to be first filled with water before starting; the float valve 67 (for example of the WC water flush type) makes it possible to maintain a constant water level in the tank.
[0029] The use of a tank of water at atmospheric pressure simultaneously maintains a low pressure to the watering network and a high pressure in the coil in order to dissolve the oxygen.
[0030] The backpressure regulator always maintains the same pressure in the circuit whatever the water consumption.
[0031] The oxygen injection system operates when the watering network is supplied with water; in the event of stoppage, the system is shut off.
[0032] A suction water line leaves from the reservoir and conveys water from the reservoir to the injector; it is thus a mixture of recycled water and of fresh water. In other words, except when the animals are not consuming water, the injector receives 100% recycled water (remember that the animals always consume water; to stop them, the light has to be turned off).
[0033] The water can be directed, via the pump 65 and the dissolution coil 64, to the watering zone, passing outside the tank 68, as will have been understood, and through the backpressure regulator 66. The backpressure regulator is also located outside the bath, but the backpressure regulator may be positioned in the water of the tank for reasons of space/fit.
[0034] As shown in the figure, the facility enables, if necessary, a part of the water coming from the coil to flow into the tank and the other part to flow into the watering zone.
[0035] The improvements proposed by the present invention are explained below with reference to the attached
[0036] The attached
[0037] The nomenclature of the elements in
[0059] The present invention therefore proposes performing TWO simultaneous injections of oxygen or of a mixture containing oxygen: [0060] one upstream of the pump; and [0061] the other downstream of the pump;
the flow rate of the injection performed upstream being lower than the flow rate performed downstream of the pump.
[0062] The flow rate of gas injected upstream preferably represents between 5% and 25% of the saturation point of pure oxygen in water under the considered conditions, 25% being considered the limit which can cause cavitation, while the flow rate downstream of the pump represents the amount required to supplement the first injection to reach the desired total content value.
[0063] Example flow rates are set out below to help explain the foregoing.
[0064] Clear water is saturated with pure oxygen (Henry's law) at 43.4 mg/l at 20 C.
[0065] The objective is considered to be to incorporate the maximum amount of oxygen on the suction side of the pump, for example 25% of 43.4, i.e. 10.85 mg/l.
[0066] To reach a total of 35 mg/l in the watering water, for example, the following is required: [0067] 35 less 10.85 less the natural oxygen content present in the water (9.2 mg/l under the previous conditions (20 C.)), i.e. 14.95 mg/l.
[0068] This figure is adjusted by the efficiency of the oxygenation equipment, which is conventionally considered to be close to 80%.
[0069] The result is (14.951.2)=17.94 mg/l to be added on the discharge side of the pump.
[0070] As will be clear to a person skilled in the art, an injection upstream of the pump is efficient and beneficial because the injected gas is more divided and therefore more dissolved. However, since said injection can cause cavitation of the pump, the flow rate thereof must be limited. It is therefore proposed to perform an injection at a low flow rate upstream of the pump (suction), supplemented by an injection at a higher flow rate downstream of the pump (discharge), thereby achieving the desired total flow rate value (content).
[0071] And as will be clear to a person skilled in the art, one of the additional advantages of this configuration is that when the facility turns back on itself via the bypass, this small injection at the suction side can be maintained, and if the animals consume water, the level in the tank drops, leading to the injection of oxygen at a higher flow rate on the discharge side.
[0072] It should also be noted that this configuration of injections also enables oxygen to be injected from various sources, and in particular from an autonomous (on-site) production source such as oxygen concentrators, well known and used in the medical field (supplying patients with oxygen-enriched air).
[0073] Since the flow rate on the suction side of the pump installed according to the invention is relatively low, this concentrator technology is very well suited to provide such a supply.
[0074] Furthermore, one or all of the following embodiments may also be used according to the invention: [0075] The operation of the pump is linked to the light level in the building where the animals are housed. Indeed, animals are known to stop feeding and drinking during the night, when the light is off.
[0076] It is therefore extremely advantageous to stop the injection of oxygen at night and stop the continuous flow of water to the animals: [0077] This reduces power consumption; and [0078] The fact that the water is not heated overnight keeps it palatable in the morning, which is not the case when the water circulates continuously in the pump without fresh water being added.
[0079] In short, animals stop drinking and feeding at night, so it is crucial to stop the pump, to prevent the water from heating up.
[0080] However, as mentioned above, the bypass 30 maintains the pressure of the circuit even though the pump is stopped, watering the animals at night in case an animal wishes to drink at night from the nipples 50, in which case the water is not oxygen-enriched. [0081] The oxygen injection is linked to the fresh water inlet (via a solenoid valve, 11 in
[0083] By way of illustration, the time delay can be calculated using the principle of replacement(s) of the volume of water in the facility, between 1 and 2 replacements.
[0084] For example, a facility that contains 600 liters of water (0.6 m.sup.3) equipped with a pump running at 3 m.sup.3/h has a replacement time of 12 minutes.
[0085] The time delay will then advantageously be set to between 12 and 24 minutes.
[0086] The present invention therefore relates to a facility for rearing animals and in particular poultry and pigs, comprising means for conveying water to the animals for their watering, said conveying means comprising: [0087] an injector for injecting a gas into water; [0088] a water inlet line and a gas inlet line arriving in the injector; [0089] a source of oxygen or of a gas mixture comprising oxygen, for example an oxygen store capable of delivering oxygen into the gas line, [0090] a tank of water at atmospheric pressure, the injector being supplied with water from the water in this tank, wherein said tank can furthermore be supplied with new water; [0091] a coil capable of receiving water charged with dissolved oxygen coming from the injector, wherein said water arrives at the coil by virtue of a pump, and said coil creates a water/oxygen contact time; [0092] the water coming out of the coil passing through a device such as a backpressure regulator so that it can be directed in full to the watering zone or else partly to the watering zone and partly to the tank,
characterized in that the facility comprises means for performing two simultaneous injections of oxygen or of a mixture containing oxygen into the water, one upstream of the pump and the other downstream of the pump, the flow rate of the injection performed upstream being lower than the flow rate performed downstream of the pump.
[0093] According to one of the embodiments of the invention, said source is an oxygen concentrator supplying oxygen-enriched air.
[0094] The invention also relates to a method of conveying watering water to livestock, characterized in that the water is conveyed to the animals by means of a facility as described above.
[0095] According to one of the embodiments of the method according to the invention, the flow rate of gas injected upstream represents between 5% and 25% of the saturation point of pure oxygen in water under the considered temperature conditions at the farm, while the flow rate downstream of the pump represents the amount required to supplement the first injection to reach the desired value for a total oxygen content in the water supplied to the animals.
[0096] According to one of the embodiments of the method according to the invention, the operation of the pump is linked to the light level in the building where the animals are housed.
[0097] According to one of the embodiments of the method according to the invention, the injection of the gas is linked to the fresh water inlet in the facility.
[0098] According to one of the embodiments of the method according to the invention, an adjustable time delay is applied to the gas injection to prolong this injection for a desired period of time after the fresh water input in the facility is stopped.
[0099] Reference herein to one embodiment or an embodiment means that a particular feature, structure, or characteristic described in connection with the embodiment may be included in at least one embodiment of the invention. The appearances of the phrase in one embodiment in various places in the specification are not necessarily all referring to the same embodiment, nor are separate or alternative embodiments necessarily mutually exclusive of other embodiments. The same applies to the term implementation.
[0100] As used in this application, the word exemplary is used herein to mean serving as an example, instance, or illustration. Any aspect or design described herein as exemplary is not necessarily to be construed as preferred or advantageous over other aspects or designs. Rather, use of the word exemplary is intended to present concepts in a concrete fashion.
[0101] Additionally, the term or is intended to mean an inclusive or rather than an exclusive or. That is, unless specified otherwise, or clear from context, X employs A or B is intended to mean any of the natural inclusive permutations. That is, if X employs A; X employs B; or X employs both A and B, then X employs A or B is satisfied under any of the foregoing instances. In addition, the articles a and an as used in this application and the appended claims should generally be construed to mean one or more unless specified otherwise or clear from context to be directed to a singular form.
[0102] The singular forms a, an and the include plural referents, unless the context clearly dictates otherwise.
[0103] About or around or approximately in the text or in a claim means10% of the value stated.
[0104] As used herein, room temperature in the text or in a claim means from approximately 20 C. to approximately 30 C.
[0105] The term ambient temperature refers to an environment temperature approximately 20 C. to approximately 30 C.
[0106] Comprising in a claim is an open transitional term which means the subsequently identified claim elements are a nonexclusive listing i.e. anything else may be additionally included and remain within the scope of comprising. Comprising is defined herein as necessarily encompassing the more limited transitional terms consisting essentially of and consisting of; comprising may therefore be replaced by consisting essentially of or consisting of and remain within the expressly defined scope of comprising.
[0107] Ranges may be expressed herein as from about one particular value, and/or to about another particular value. When such a range is expressed, it is to be understood that another embodiment is from the one particular value and/or to the other particular value, along with all combinations within said range. Any and all ranges recited herein are inclusive of their endpoints (i.e., x=1 to 4 or x ranges from 1 to 4 includes x=1, x=4, and x=any number in between), irrespective of whether the term inclusively is used.
[0108] It will be understood that many additional changes in the details, materials, steps, and arrangement of parts, which have been herein described and illustrated in order to explain the nature of the invention, may be made by those skilled in the art within the principle and scope of the invention as expressed in the appended claims. Thus, the present invention is not intended to be limited to the specific embodiments in the examples given above and/or the attached drawings.
[0109] While embodiments of this invention have been shown and described, modifications thereof may be made by one skilled in the art without departing from the spirit or teaching of this invention. The embodiments described herein are exemplary only and not limiting. Many variations and modifications of the composition and method are possible and within the scope of the invention. Accordingly, the scope of protection is not limited to the embodiments described herein, but is only limited by the claims which follow, the scope of which shall include all equivalents of the subject matter of the claims.