Methods for raising fish in recirculating aquaculture systems

Hydraulic transport of feed pellets with controlled non-recirculated water parameters addresses issues of degradation and palatability in RAS, improving feed utilization and water quality, thereby enhancing RAS efficiency and biosecurity.

JP7767382B2Active Publication Date: 2025-11-11PURE SALMON TECHNOLOGY AS
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Patent Information

Application Number
JP2023501799
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2020-07-15
Filing Date
2021-07-15
Publication Date
2025-11-11
Estimated Expiration
2041-07-15

AI Technical Summary

Technical Problem

Existing methods of transporting fish feed in recirculating aquaculture systems (RAS) face issues such as pellet degradation, nutrient loss, environmental contamination, and reduced palatability, leading to inefficiencies and increased costs due to filter strain and fish pickiness.

Method used

A method involving hydraulic transport of feed pellets using non-recirculated water with controlled parameters, such as osmolality, conductivity, and pH, to enhance feed consumption and reduce contamination in RAS facilities.

Benefits of technology

Improves feed utilization, reduces environmental impact, and maintains water quality by minimizing dust and fines, while ensuring the feed is more palatable to fish, thus enhancing the efficiency and biosecurity of RAS operations.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention relates to a method of raising fish in a recirculating aquaculture system (RAS), the RAS including a fish holding unit in fluid communication with a water supply, the fish holding unit containing a volume of water defining a water depth, the water having an osmolality, an oxygen concentration, a temperature, and a pH, the method comprising the steps of: providing a flow of non-recirculating water to the water supply; + The RAS system includes a unit for controlling at least one of concentration, temperature, and pH, providing feed pellets, adding feed pellets to non-recirculating water, and transporting the feed pellets to a fish holding unit by hydraulic power. This method allows for more efficient operation of the RAS function. The present invention also relates to a RAS facility.
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Description

[Technical Field]

[0001] The present invention relates to a method and system for raising fish, and more particularly to a recirculating aquaculture system (RAS) and a method for transporting feed to the RAS. [Background technology]

[0002] Farmed fish and shellfish rely on feed delivered to aquaculture sites, such as subsea cages or pens, flow-through systems connected to rivers or ponds, or land-based sites such as RAS facilities, to receive all of their necessary nutrients. Most of the equipment used to transport fish feed to feeding sites today uses either pneumatic or mechanical principles. Typically, in pneumatic transport, feed pellets are blown into the feed by either a fan or an air compressor. It is well known that pneumatic transport of feed pellets can easily cause pellet degradation, generating up to 7% dust and fines, as described in WO2015067955. Additionally, pipes used to transport feed are subject to wear due to friction between the pipe walls and the pellets.

[0003] Steel pipes are heavy, require additional support, and are expensive, while plastic pipes are cheaper but require more maintenance and release microplastics into the feed and aquaculture. The generation of fines and dust from feed pellets is a significant cost and must be minimized as much as possible. It addresses feed loss and essential / limiting nutrients, and contaminates the surrounding environment. In the case of RAS facilities, this places additional strain on the mechanical and / or biological filters used to clean the water in aquaculture systems. Another well-known problem is that some fish, especially salmon, are picky eaters and will spit out their feed or simply not eat it if it is unpalatable. Spitted feed or feed not immediately consumed by the fish dissolves over time, further straining the mechanical and / or biological filters in RAS facilities.

[0004] Another method of transporting fish feed is by hydraulic transport, which is known from WO2002056676, which relates to a system that utilizes hydraulic feeding to deliver feed below the water surface, particularly relevant to demersal fish species such as catfish, flounder, and halibut. Hydraulic transport is also known from WO2011064538 and WO2015067955, which describe a method of using hydraulic transport of aquaculture feed to impregnate dried fish feed pellets with water to improve digestibility. Impregnation of the feed not only constitutes a bulk transport of water into the feed, but also causes nutrients and oils from the feed to leak into the water.

[0005] No. 149372 discloses an apparatus for transporting feed to floating sea cages. The size of such sea cages is limited by the effective transport of feed to the sea cages, and within the apparatus the feed comes into contact with high-velocity water jets that propel the feed through the air into the sea cages, spreading the feed over as large a portion of the sea cage as possible.

[0006] WO2016160141 discloses a modularized shrimp production system. The system includes a production subunit module, a RAS module, a feed distribution module, and a computer control module. The modularized and integrated system forms a multi-phase synchronized, ultra-intensive shrimp production system controlled by a custom-designed cyber-physical platform. This system is believed to provide shrimp farming with a significant reduction in total water volume per weight of shrimp produced compared to conventional technologies.

[0007] The reduction in nutrients requires the use of additional feed to provide the fish with the necessary nutrients, which is undesirable and therefore incurs additional costs.

[0008] Oil leakage from feed is not optimal, but it can be tolerated when fish are kept in open water. However, in RAS facilities, for example, the oil can settle in the system's filters, reducing efficiency. This can lead to an increase in CO2 levels in the purified water, slowing fish growth. Alternatively, fish density can be reduced, which is also detrimental.

[0009] It is therefore desirable to develop gentler and more efficient methods of feed transport that can present feed in a palatable manner to fish, particularly in RAS facilities. Summary of the Invention

[0010] It is an object of the present invention to provide an improved, gentle method of feed transport that also allows feed to be delivered in a palatable manner to the fish. Thus, according to a first aspect of the present invention, this and other objects are achieved by a method of rearing fish in a recirculating aquaculture system (RAS), the RAS comprising a fish holding unit in fluid communication with a water supply, the fish holding unit containing a volume of water defining a water depth, the water having an osmolality concentration, a conductivity, an oxygen concentration, a CO2 concentration, a N2 concentration, an NH4 concentration, + The recirculating aquaculture system further comprises a recirculation conduit, and the method comprises: providing a flow of non-recirculated water to a water supply source; the non-recirculated water has an osmotic concentration, a conductivity, an oxygen concentration, a CO2 concentration, a N2 concentration, an NH4 concentration, an osmotic pressure, a conductivity, an oxygen concentration, a CO2 concentration, a N2 concentration, an NH4 ... + The method includes the steps of: preparing feed pellets that are different from the water in the fish holding unit in terms of at least one of concentration, temperature, and pH; and adding the feed pellets to non-recirculating water and hydraulically transporting the feed pellets to the fish holding unit. [Brief explanation of the drawings]

[0011] [Figure 1] FIG. 1 shows a schematic diagram of a recirculating aquaculture system according to one embodiment of the present invention. DETAILED DESCRIPTION OF THE INVENTION

[0012] Any aquaculture system that uses recirculated water may be referred to in the context of the present invention as a "recirculating aquaculture system" (RAS), and the method may be used in any RAS system. Such an aquaculture system may hold any suitable amount of water, but typically contains up to 10 12 m 3 A typical fish holding unit holds 200m 3 From 50,000m 3 Typically, an industrial aquaculture system consists of multiple fish holding units. A fish holding unit can contain up to 5,000 m 3 Small fish holding units, up to 15,000m 3 of medium-sized fish holding units, or 25,000 to 35,000 m 3 For example, 50,000m 3 RAS facilities may be larger fish holding units, or combinations thereof. RAS facilities typically include conduits for supplying clean water to the aquaria, and this method can be easily used in existing RAS facilities, for example by connecting a conduit to the fish holding unit of the RAS facility, thereby allowing hydraulic transport of feed pellets to the fish holding unit.

[0013] The RAS typically further comprises a recirculation conduit, which is further described below.

[0014] The water source is in fluid communication with the fish holding unit, the water source defining an entry point. The entry point is sometimes referred to as a feeding location because the feed pellets are supplied with non-recirculating water from the water source. The water source may include or be a conduit, the outlet of the conduit defining the entry point. The water source may be in direct fluid communication with the fish holding unit such that the feed pellets are hydraulically transported and added directly to the water in the fish holding unit.

[0015] In this method, feed pellets are hydraulically transported to the fish holding unit. Therefore, the feed pellets are hydraulically transported to the fish holding unit by non-recirculating water. In the context of the present invention, the term "feed pellets" refers to any solid form of feed suitable for the fish in the fish holding unit. For example, the feed pellets may be granules or particles having a size ranging from 0.1 mm to 50 mm or more, and the granules may be single particles or agglomerates. The feed pellets may be dry, moist, or semi-moist feed, or chopped marine animals such as fish, shellfish, or sea plants. In certain embodiments, the feed pellets for non-recirculating water are any type of feed pellets described in PCT / DK2020 / 050057, which is incorporated herein by reference. For example, the feed pellets include protein, a feed stabilizer, water, and a fatty acid component, wherein the fatty acid and water are contained in the same phase, and the feed pellets contain 25% or more w / w of the fatty acid component on a dry matter basis, and the water content is at least 30% w / w of the feed pellets.

[0016] In this method, non-recirculated water is provided to the water supply of the fish holding unit. In the context of the present invention, the term "non-recirculated water" refers to water that is not recirculated within the RAS. Non-recirculated water may also be referred to as freshly supplied water or clean water, and these terms may be used interchangeably. The water within the fish holding unit and the non-recirculated water have at least an osmolality concentration, conductivity, oxygen concentration, temperature, and pH that are appropriate for the fish being raised in the fish holding unit. In the context of the present invention, "oxygen concentration" refers to dissolved oxygen. The water within the fish holding unit and the non-recirculated water may also have a CO2 concentration, N2 concentration, NH4 concentration, and / or a saturation factor of 0.01. + The terms osmolality, conductivity, oxygen concentration, CO2 concentration, N2 concentration, NH4 + The concentration, temperature, and pH may be collectively referred to as "parameters," and in the context of the present invention, "parameters" include osmotic pressure, conductivity, oxygen concentration, CO2 concentration, N2 concentration, NH4 +When "multiple parameters" are mentioned, in the context of the present invention, it may be any of the following: osmolality concentration, conductivity, oxygen concentration, CO2 concentration, N2 concentration, NH4 concentration, and the like. + The parameters may be concentration, temperature, and pH. The parameters may be monitored or determined using any method known in the art. For example, the osmotic concentration may be recorded using any type of osmometer, such as a membrane osmometer. Similarly, the conductivity may be recorded using any type of conductivity meter, the temperature may be recorded using any type of thermometer, and the CO2, N2, and NH4 + can be recorded using any kind of spectrophotometer or chromatography, or any kind of spectroscopy, such as near-infrared spectroscopy or mass spectroscopy, and pH can be recorded using any kind of pH meter. This method involves the measurement of CO2 and NH4 + When dissolved in water, these convert into other forms depending on the pH, namely CO3 2- , HCO3 - and NH3, and in the context of the present invention, all forms of each compound may be monitored and / or adjusted appropriately. Some of the relevant parameters may affect other parameters. For example, osmolality affects conductivity, and CO2 and NH4 +It affects pH and can affect both osmolality and conductivity. Therefore, when a parameter is monitored and, in particular, adjusted, other parameters that may be simultaneously affected may also be monitored and independently adjusted to obtain specific values ​​for the simultaneously affected parameters. In particular, the water in the fish holding unit may also be described in terms of biochemical oxygen demand (BOD), chemical oxygen demand (COD), and / or dry matter, which are also considered parameters in the context of the present invention. BOD, COD, and / or dry matter represent the geosmin content in the water, and these parameters typically should be kept as low as possible. The water in the fish holding unit may further be described in terms of HS content and turbidity. With regard to BOD, COD, and / or dry matter, these should also be kept as low as possible. Therefore, the method of the present invention may include monitoring and adjusting one or more of BOD, COD, dry matter content, HS, and turbidity. HS can be measured using any type of spectrophotometer or chromatography, or any type of spectroscopy, such as near-infrared spectroscopy or mass spectrometry, and the content is typically expressed in μg / kg. Turbidity can be measured using any suitable technique, for example a nephelometer, and is typically expressed in units called Nephelometric Turbidity Units (NTU).

[0017] The fish may be any fish as desired, for example, the fish may be saltwater or freshwater. Despite the lower salinity of freshwater, the benefits of the present invention apply equally to freshwater and saltwater fish. Correspondingly, osmolality is typically provided by salts, particularly NaCl, found in natural waters, such as seawater. Osmolality is sometimes referred to as "salinity," and the two terms are used interchangeably. Additionally, the osmolality, oxygen concentration, CO2 concentration, N2 concentration, NH4 concentration, and the like of the collected water may be determined. + The concentration, temperature, and pH can be said to provide a composition, and in the context of the present invention, "composition," when used to describe water, includes the osmolality concentration, conductivity, oxygen concentration, CO2 concentration, N2 concentration, NH4 concentration, +The term "composition" refers to one or more of the following: concentration, temperature, and pH. However, water often contains other components that may also be considered under the term "composition." In particular, the composition of non-recirculated water includes osmotic pressure, oxygen concentration, CO2 concentration, N2 concentration, NH4 concentration, and + It differs from the composition of the water in the fish holding unit in terms of at least one of concentration, temperature and pH.

[0018] The water source can be of any design as desired. For example, the water source can include or be any type of conduit, such as a tube, a pipe, or an open channel. The water source can be in fluid communication with the fish holding unit, and the water source can therefore have a conduit with an outlet end within a volume defined by the fish holding unit. For example, the outlet end of the tube can be above, at, or below the water level within the fish holding unit. The water source can also include a container for clean water. In particular, the clean water can be adjusted to have at least one parameter different from the corresponding parameter of the water within the fish holding unit before being supplied to the fish holding unit as non-recirculating water.

[0019] A RAS suitable for the method includes a fish holding unit. The fish holding unit can have any shape and size as desired. For example, the fish holding unit can be an open, e.g., upwardly opening, tank, or the fish holding unit can be a closed tank, e.g., a tank with a lid.

[0020] Fish are sensitive to water properties and generally sense and respond to differences. In particular, fish learn to associate sensed differences with relevant observations. Thus, by adding feed pellets to non-recirculating water and supplying the non-recirculating water containing the feed pellets to the fish holding unit, the fish recognize that the feed pellets are available at the point of entry due to the difference between the non-recirculating water and the water in the fish holding unit. The inventors surprisingly discovered that by adding the feed pellets to the non-recirculating water, the fish in the fish holding unit eat a greater proportion of the feed pellets compared to when the feed pellets are added without water, i.e., in dry form, or when the feed pellets are added with recirculating water. This provides a more efficient operation of the RAS facility by converting a larger proportion of the feed pellets into fish biomass.

[0021] The RAS typically has a water recirculation conduit, which may include any type of washing operation or unit operation to condition the water in the recirculation conduit. The recirculation conduit is in fluid communication with the fish holding units and recirculates water (recirculated water) from the fish holding units to the fish holding units. The recirculation conduit, in fluid communication with the fish holding units, defines a recirculation outlet point where water is removed from the fish holding units and a recirculation inlet point where the recirculated water returns to the fish holding units. The recirculation conduit is separated from a water source conduit. The recirculation inlet point is separated from an inlet point, also referred to as a feeding location, which is also defined by the water source. The water in the recirculation conduit may be further characterized by, for example, osmolality, oxygen concentration, CO2 concentration, N2 concentration, NH4 +Despite adjustments being made with respect to concentration, temperature, and / or pH, the inventors observed that the fish in the fish holding unit do not recognize the inlet of the recirculation conduit in the fish holding unit as a feeding location, even when the water composition is adjusted, due to the much greater volumetric flow rate in the recirculation conduit. In a typical RAS facility, water can be recirculated, and in particular, water recirculation is continuous, and the amount of recirculated water can range from 95% to 99.9% or more. Correspondingly, non-recirculated water can be added to the fish holding unit to maintain mass balance. Without being bound by theory, the inventors believe that adjusting the water in the recirculation conduit enough for the fish to respond to the difference is detrimental to the health of the fish, and that the conversion of feed pellets in the recirculated water is not as efficient as when the feed pellets are provided in non-recirculated water. In particular, the amount of non-recirculated water in the water supply is very small compared to the amount of water in the fish holding unit, e.g., typically less than 5%, e.g., less than 1%, e.g., less than 0.5%, less than 0.2%, less than 0.1%, or less than 0.01% of the water in the fish tank, such that the non-recirculated water has a lower salinity, oxygen concentration, CO2 concentration, N2 concentration, NH4 concentration, or the like compared to the water in the fish holding unit without adversely affecting the fish in the fish holding unit. + The feed pellets may have significantly different compositions in terms of concentration, temperature, and pH, thereby providing better control of RAS by adding the feed pellets with non-recirculating water.

[0022] In one embodiment, non-recirculated water is continuously or batchwise fed to the fish holding unit to maintain mass balance within the fish holding unit due to water lost from the RAS. In the case of batch-wise feeding of non-recirculated water, there may be periods of time when the feeding of non-recirculated water is paused, such as 1 to 24 hours, during which no non-recirculated water is added to the RAS. Thus, water recirculation within the RAS may be increased to 100% for several hours, followed by the batch-wise feeding of non-recirculated water. By feeding non-recirculated water in batches, a larger amount of non-recirculated water may accumulate in the vessel before the batch is released into the RAS system. Therefore, using a batch-wise feeding of non-recirculated water may allow for a larger flow of non-recirculated water for hydraulic transport of feed to the fish holding unit. Additionally, in the batch-wise feeding of non-recirculated water, the non-recirculated water may be adjusted in batches for one or more parameters.

[0023] Preferably, the non-recirculated water is adjusted with respect to one or more parameters only compared to the water in the fish holding unit when feeding the fish; for example, one or more parameters may be adjusted just prior to adding feed pellets, and the adjustments may be maintained as long as the feed pellets are added. Similarly, the parameters for the non-recirculated water should correspond to the parameters of the water in the fish holding tank when the fish are not being fed. Thereby, the benefit of feeding a greater proportion of feed pellets to the fish can be maintained more efficiently than if non-recirculated water adjusted with respect to one or more parameters were supplied to the fish holding unit without feed pellets. In one embodiment, non-recirculated water adjusted with respect to one or more parameters but without feed pellets is not supplied to the fish holding unit.

[0024] The recirculation and treatment of water in a fish holding unit typically depends heavily on the density of fish in the fish holding unit as well as the quality of the feed pellets. Fish density is the number of fish per volume of water in the fish holding unit. The water is typically recirculated and treated to maintain good water quality for the fish. When the fish density is low, the water recirculation may be low, for example 0.5 to 5 times per hour, whereas when the fish density is high, the water in the fish holding unit may be recirculated up to 20 times per hour. Similarly, the water may be recirculated less. Thus, a tank with a capacity of 400m per tank may be used. 3 / hour to 100,000m 3 A recirculating flow rate of water of between 1 / hour can be expected, and the volume of non-recirculating water can typically be in the range of 0.01% to 1% of this.

[0025] The effectiveness of the present invention can be enhanced by actively controlling the composition of the non-recycled water. For example, the method can be used to control the osmolality, oxygen concentration, CO2 concentration, N2 concentration, NH4 concentration, etc. of the non-recycled water. + The method includes adjusting one or more of the concentration, temperature, and pH of the non-recirculated water compared to the corresponding values ​​of the water in the fish holding unit. i) an osmolality concentration difference of at least 1 mOsm / kg; ii) a conductivity difference of at least 0.01 μS / cm; iii) an oxygen concentration difference of at least 0.05 mg / kg; iv) CO2 concentration difference of at least 0.05 mg / kg; v) N2 concentration difference of at least 0.05 mg / kg; vi) at least 0.05 mg / kg NH4 + concentration difference; vii) a temperature difference of at least 0.1°C; and viii) pH difference of at least 0.1 Specific ranges of the parameters are shown in Table 1.

[0026] [Table 1]

[0027] The parameter differences in Table 1 are presented in terms of conditioning non-recirculated water to result in the tabulated parameter differences, but it is understood that in some embodiments, a non-recirculated water source may be available that satisfies one or more. Thus, in some embodiments, a method includes providing a flow of non-recirculated water to a water source, wherein the non-recirculated water differs from the water in the fish holding unit with respect to at least one parameter difference listed in Table 1.

[0028] The water in the fish holding unit can be monitored for H2S and turbidity, which can be adjusted for non-recirculated water, eg, the difference between the non-recirculated water and the water in the fish holding unit, as specified in Table 2.

[0029] [Table 2]

[0030] The parameters may be adjusted as desired. For example, osmolality may be adjusted by increasing or decreasing the concentration of NaCl, or possibly other salts found in natural waters. Similarly, pH may be adjusted using compounds commonly found in nature. For example, pH may be increased using alkali or alkaline earth carbonate salts, such as Na2CO3, K2CO3, CaCO3, MgCO3, or ammonia, and pH may be decreased using acids such as HCl or NH4Cl. Conductivity is typically adjusted concomitantly with the adjustment of osmolality and pH. It is preferable to simultaneously adjust both osmolality and pH to adjust conductivity, rather than adjusting conductivity alone. The salinity, oxygen concentration, temperature, and pH of the non-recirculated water may be adjusted depending on the type of fish being raised in the fish holding unit. Osmolality, oxygen concentration, CO2 concentration, N2 concentration, NH4 + One or more of the following are monitored for the water in the fish holding unit: salinity, oxygen concentration, CO2 concentration, N2 concentration, NH4 concentration. +Even better results can be achieved by adjusting the water with non-recirculated water based on monitored values ​​of one or more of concentration, temperature, and pH.

[0031] Thus, in a preferred embodiment, the method comprises adjusting the osmolality, conductivity, oxygen concentration, CO2 concentration, N2 concentration, NH4 concentration, and the like of the water in the fish holding unit. + Monitoring one or more of the following: concentration, temperature, and pH; osmolality concentration, oxygen concentration, CO2 concentration, N2 concentration, NH4 concentration of non-recirculated water + adjusting one or more of the concentration, temperature, and pH of the water in the fish holding unit relative to the water in the fish holding unit. i) an osmolality concentration difference of at least 1 mOsm / kg; ii) a conductivity difference of at least 0.01 μS / cm; iii) an oxygen concentration difference of at least 0.05 mg / kg; iv) CO2 concentration difference of at least 0.05 mg / kg; v) N2 concentration difference of at least 0.05 mg / kg; vi) at least 0.05 mg / kg NH4 + concentration difference; vii) a temperature difference of at least 0.1°C; and viii) pH difference of at least 0.1 In this embodiment, a greater proportion of the feed pellets may be eaten by the fish than if the properties of the water in the fish holding unit were not monitored.

[0032] When feed pellets are supplied to an aquarium via recirculated water, the recirculated water may reduce the palatability of the feed and may contain substances such as geosmin or microorganisms that may inevitably be present in the recirculated water. These substances cannot be easily removed with water, even if the recirculated water can be purified before adding the feed pellets. This drawback is avoided when the feed pellets are added to non-recirculated water. Therefore, by adding the feed pellets to non-recirculated water, and without being bound by any theory, the inventors believe that fish find the feed more palatable when presented in non-recirculated water than in recirculated water.

[0033] In one embodiment, an appetite stimulant that increases fish appetite is added to the non-recirculating water stream, particularly upstream of the feeding point. The appetite stimulant can be krill meal or krill by-products, low-temperature fish meal, fish oil, shrimp meal or by-products. Certain parameters, such as BOD, COD, dry matter content, H2S, and turbidity, should be kept as low as possible in the fish holding unit. If parameters are monitored, appetite stimulants can be included in the feed pellets based on the value of the respective parameter to improve the appetite of the fish being fed. If the relevant non-recirculation can adjust for one or more of BOD, COD, dry matter content, H2S, and turbidity, it is also possible to monitor the BOD, COD, dry matter content, H2S, and / or turbidity of the water in the fish holding unit. Monitoring BOD, COD, and / or dry matter content is particularly relevant in the context of geosmin, any of which may reflect undesirable amounts of geosmin. In certain embodiments, BOD, COD, and / or dry matter content are monitored within the fish holding unit as a representative of geosmin content, and an appetite stimulant is added to the non-recirculated water based on the recorded values ​​of BOD, COD, and / or dry matter content. Such appetite stimulants potentially mitigate the appetite-suppressing effects of geosmin or other substances that may be present in the water recirculated at the RAS facility. Without being bound by theory, it is believed that the aromatic properties of the appetite stimulant overcome the sensory impact of geosmin, but adding the appetite stimulant to the recirculated water requires a much larger amount of the agent to overcome the unpleasant odor. Therefore, adding the appetite stimulant to the geosmin-free non-recirculated water stream reduces the amount of appetite stimulant required, thereby providing a more inexpensive method of raising fish. Any appetite stimulant can be used, and the appetite stimulant may be, for example, volatile, unstable, or degradable.

[0034] Furthermore, this method improves the transport of the feed pellets as they are transported more gently than pneumatic or mechanical transport methods, thereby generating less dust and fines.

[0035] An additional benefit of using non-recirculated water is that it improves the biosecurity of the entire RAS facility, minimizing the risk of infection and disease spread within the aquaculture system. Poor water quality is a major cause of disease spread and a breeding ground for the generation of toxic gases such as H2S. Using non-recirculated water allows for strict control of BOD and COD.

[0036] All of these advantages are applicable to methods used in aquaculture system facilities that operate with fully or partially internal water recirculation. Any fish can be raised in this manner. For example, the fish can be demersal species such as catfish, flounder, and halibut, or the fish can be pelagic species including salmon, salmonids, trout, carp, tilapia, pangasius, etc. The non-recirculated water can be adapted to the type of fish being cultivated. For marine fish, the water is adapted to resemble seawater, while for freshwater fish, the water is adapted to resemble freshwater.

[0037] Osmolality differences can result from differences in the concentration of one or more salts, particularly salts commonly occurring in bodies of water, such as NaCl or CaCO3.

[0038] The term hydraulic transport is used to describe a solid-liquid flow. In this context, the solid-liquid flow is composed of feed, e.g., granules or pellets, and water. Thus, in the context of the present invention, hydraulically transported feed means that feed pellets are transported by a liquid, in particular non-recirculating water, in a conduit such as a pipe, tube, or channel to the fish holding unit.

[0039] Hydraulically transporting feed pellets in a conduit to a fish holding unit may allow for control of inlet conditions, such as the location of the entry point within the fish holding unit (the entry point is the exit of the conduit) and the dispersion of solid-liquid flow at the entry point. By hydraulically transporting the feed in a conduit, the entry point can therefore be located as desired relative to the water surface. Furthermore, using a conduit may reduce dispersion of feed pellets entering the non-recirculating water at the entry point, increasing the likelihood of localized zones of fish holding with different water parameters due to the non-recirculating water. Conversely, using a highly dispersed transport method, such as spraying or jetting, may spread the non-recirculating water over a larger portion of the fish holding unit, potentially diluting the effects of different water parameters.

[0040] The difference in properties is preferably salinity, CO2, N2, NH4, which cause stress to fish and are not suitable for raising fish. + This can be achieved without reaching differences in oxygen, temperature, or pH. However, if differences are found only in non-recirculated water, the differences are generally not large enough to adversely affect the fish within the fish holding unit.

[0041] In preferred embodiments, the non-recirculating water flow has a Reynolds number of less than 500,000. The Reynolds number can be less than 400,000, such as less than 300,000, 200,000, 100,000, or 75,000. In preferred embodiments, the non-recirculating water flow has a Reynolds number in the range of 500 to 50,000. At such Reynolds numbers, the non-recirculating water flow can be laminar.

[0042] Such a low Reynolds number ensures that the non-recirculated water mixes more slowly with the fish holding unit water when it enters the fish holding unit at the inlet point. The slower mixing reduces the osmotic pressure, conductivity, oxygen concentration, CO2 concentration, N2 concentration, NH4 concentration, and other factors between the non-recirculated water and the fish holding unit water. +The effect of having a difference in properties between the non-recirculating water and the water of the fish holding unit, such as a difference in one or more of concentration, temperature, and pH, is enhanced. Because the volume of the non-recirculating water is small compared to the volume of water in the fish holding unit, the Reynolds number of the non-recirculating water has a significant impact on the rate at which the non-recirculating water mixes with the water of the fish holding unit. Therefore, a flow of non-recirculating water with a large Reynolds number should preferably be avoided. This is because, when the non-recirculating water is introduced into the inlet point of the fish holding unit, it will be rapidly mixed with the water of the fish holding unit, thereby reducing the effect of feed pellets supplied to the non-recirculating water. Those skilled in the art know how to adjust the water flow to obtain an appropriate Reynolds number.

[0043] In some embodiments, the velocity of the water flow within the conduit ranges from 0.5 to 2.5 meters per second.

[0044] The entry point or feeding location may be at the water surface, above the water surface, partially below the water surface, or below the water surface within the fish holding unit. The entry point may be at any angle relative to the fish holding unit, for example, feed pellets may be delivered upward, downward, or from the side relative to gravity, or any angle in between. Additionally, the entry point may be at any depth within the fish holding unit.

[0045] In a preferred embodiment, the feed pellets are hydraulically transported to the fish holding unit above or below the water surface or simultaneously at the water surface, which allows the fish to consume the feed pellets in a less stressful manner as they do not have to compete for feed pellets that are only present at the water surface.

[0046] In a preferred embodiment, the feed pellets are hydraulically transported to the fish holding unit partially below, or preferably below, the surface of the water in the fish holding unit.

[0047] An entry point above the water surface drops a stream of non-recirculating water into the water of the fish holding unit. If the entry point is partially below or below the water surface, only a portion of the non-recirculating water, or none of it, will drop into the water of the fish holding unit. Limiting or eliminating the drop reduces the mixing rate of the non-recirculating water and the water of the fish holding unit. Therefore, if the entry point is partially below or below the water surface, the effectiveness of using non-recirculating water with parameter differences is enhanced.

[0048] In a preferred embodiment, the method further comprises the step of washing the non-recirculating water before adding the feed pellets to the water stream.

[0049] Cleaning should be understood to include any suitable cleaning method for removing or degrading microorganisms or viruses, or for removing or degrading unpalatable substances such as compounds or proteins produced by microorganisms. Such cleaning means may be microfiltering, reverse osmosis, distillation, heat treatment, ultraviolet (UV) treatment, ozonation, or the use of chemicals to remove or bind substances present in the water, for example, by ion exchange, chelation, oxidation, or precipitation.

[0050] In another aspect, the present invention relates to a recirculating aquaculture system (RAS), the system comprising a fish holding unit in fluid communication with a water supply via a conduit, the fish holding unit containing a volume of water defining a water depth, the water having an osmolality concentration, an oxygen concentration, a CO2 concentration, an N2 concentration, an NH4 concentration, + The recirculating aquaculture system has a fish holding unit that contains an osmotic pressure concentration measuring unit, a conductivity measuring unit, an oxygen concentration measuring unit, a CO2 concentration measuring unit, a N2 concentration measuring unit, an NH4 + a data processing unit configured to receive data from one or more of the concentration measuring unit, the temperature measuring unit, and the pH measuring unit, the conduit being configured to receive data from the data processing unit and to measure a concentration of the fish relative to the water in the fish holding unit; i) an osmolality concentration difference of at least 1 mOsm / kg; ii) a conductivity difference of at least 0.01 μS / cm; iii) an oxygen concentration difference of at least 0.05 mg / kg; iv) CO2 concentration difference of at least 0.05 mg / kg; v) N2 concentration difference of at least 0.05 mg / kg; vi) at least 0.05 mg / kg NH4 + concentration difference; vii) a temperature difference of at least 0.1°C; and viii) pH difference of at least 0.1 and the conduit includes a feed loading section, whereby when feed is added to the system at the feed loading section, the feed is hydraulically transported underwater through the conduit to the fish holding unit at the entry point.

[0051] The system can achieve the same objectives as those achieved by the method of the present invention, as well as additional objectives.

[0052] The conduit may be configured to provide water having differences i) to viii) compared to the water in the fish holding unit.

[0053] The fish holding unit may have any desired shape suitable for containing liquid. It may be, for example, a cylindrical unit or a rectangular unit. It may be a tank, container, aquarium, basin, etc., made of any material. It may also be a pond or basin where some filtration and / or cleaning is used. The top of the fish holding unit may be open or may have a removable or fixed lid. When the system is used as needed, i.e., to raise fish, there is water in the aquaculture system. The majority of the water is usually contained in the fish holding unit where the fish are raised.

[0054] The conduit may be connected to a single fish holding unit or to two or more fish holding units. Feed may be added to a single stream of non-recirculating water at a feed loading station and then distributed to multiple individual fish holding units. Feeding to one or more inlet points may be simultaneous, individual, sequential, or continuous. The inlet point may be an outlet or outlet end of the conduit. The conduit may be in direct fluid communication with the fish holding unit such that the outlet is located within a volume defined by the fish holding unit.

[0055] The conduit may have any suitable size and shape for accommodating the flow of pellet-laden water. Typically, the conduit is cylindrical, but may also be a semi-cylindrical or elliptical cylinder. In some embodiments, the conduit is a cylinder having a diameter ranging from 20 mm to 100 mm, such as 22, 50, or 80 mm. In some embodiments, the conduit is a cylinder with a diameter varying between 20 mm and 100 mm.

[0056] The conduit may include a regulating means for regulating the amount of water that may flow into the conduit. Such a regulating means may be any suitable means, such as one or more of a valve, a pump, and an opening. The water supply may be from a pre-pressurized source so that an adequate water flow is obtained when water from the source is allowed to flow into the conduit. In this case, the means for regulating the water flow may be only the pressurized source of fresh water.

[0057] In a preferred embodiment, the conduit includes means for regulating the flow of water, and the conduit and means for regulating the flow of water are configured to allow a flow of water having a Reynolds number of 500,000 or less, preferably 200,000 or less, more preferably 100,000 or less, more preferably 50,000 or less, such as in the range of 500 to 50,000.

[0058] In a preferred embodiment, the recirculating aquaculture system (RAS) has an entry point partially below or below the water level of the fish holding unit.

[0059] In a preferred embodiment, the conduit is configured for clean-in-place.

[0060] Clean-in-place systems are well known in the art. Using a clean-in-place conduit allows the conduit to be cleaned without disassembly. Such cleaning has the advantage of maintaining the effectiveness of using non-recirculating water to provide feed without the significant downtime caused by having to disassemble the conduit for cleaning.

[0061] In addition to the conduit, the RAS typically also has a recirculation conduit configured to recirculate water from the fish holding unit back to the fish holding unit.

[0062] The water source may be for supplying non-recirculating water to the fish holding unit through a conduit, whereby feed added at the feed loading section is hydraulically transported by the non-recirculating water through the conduit to the fish holding unit at the inlet point.

[0063] Referring to FIG. 1, a schematic diagram of a recirculating aquaculture system (RAS) 1 according to one embodiment of the present invention is shown. Generally, elements having the same or similar functions have the same reference numerals. The RAS 1 includes a fish holding unit 2 in the form of a tank with an opening at the top. When the fish holding unit 2 is used for its intended purpose, i.e., for raising fish, it contains a volume of water 99 forming a water surface 100 and a water depth D, and fish (not shown). A water supply source 3 is in fluid communication with the fish holding unit 2. In the illustrated embodiment, the water supply source 3 includes a water reservoir 32 containing clean water that provides water to the water supply source 3 via a conduit 30. A feed storage unit 31 in the form of a silo is located adjacent to a feed loading section 34 located downstream of the water reservoir 32. The feed storage unit 31 supplies feed pellets to the feed loading section 34. The feed loading section 34 includes a feed loading means (not shown), such as a venture injector, for loading the feed pellets into the water supply source 3 through the conduit 30. The amount of feed pellets can be adjusted to the time the opening is open. Alternatively, the feed pellets can be measured volumetrically or gravimetrically before loading them into the water. Arrows indicate the conduits within the recirculating aquaculture system 1 and the intended direction of water flow.

[0064] Feed pellets (not shown) are hydraulically transported into the fish holding unit 2 at inlet points 21. While the RAS 1 in FIG. 1 shows multiple inlet points 21, the RAS 1 of the present invention may have any number of inlet points 21 shown. The inlet points 21 are configured to distribute non-recirculating water containing feed pellets from the water supply 3 at different depths within the fish holding unit 2 via conduits 30. One inlet point 21 is located above the water surface 100, another inlet point 21 is located at the water surface 100, and two inlet points 21 are located at different depths in the water 99 of the fish holding unit 2. Such a design is beneficial for various types of fish within the fish holding unit 2, such as demersal or pelagic fish that feed at different depths. The illustrated embodiment enables hydraulic transport of feed at several depths / locations within the fish holding unit 2 using non-recirculating water. In this particular embodiment, the inlet points 21 are located in the water 99 below the water surface 100.

[0065] A water pump 33 is positioned upstream of the inlet point 21 and provides a flow of non-recirculating water from the water reservoir 32 into the conduit 30, and feed is added to the non-recirculating water flow, and the feed is hydraulically transported into the water 99 within the fish holding unit 2. Although the water pump 33 is shown in a particular location, it can be located anywhere within the water supply 3 downstream of the water reservoir 32.

[0066] The RAS has a recirculation system 4 that includes a cleaning system 41. The recirculation system 4 includes a cleaning system pump 42 capable of recirculating water 99 0.5 to 5 times per hour. Water from the fish holding unit 2 is recirculated in a recirculation conduit 43 within the recirculation system 4. The cleaning system 41 can include any unit operations suitable for a RAS, such as one or more of a biofiltration unit, a solids removal unit, a pH control unit, a temperature control unit, an ultraviolet (UV) treatment unit, an oxygenation unit, a CO2 stripping unit, and an ozonation unit. Details not shown or described will be readily apparent to those skilled in the art.

[0067] The RAS1 includes a monitoring system 60 mounted on or within the fish holding unit 2 for monitoring parameters of the water 99 within the fish holding unit 2. The monitoring system 60 includes a membrane osmometer, a conductivity meter, a thermometer, and a pH meter. Specific components of the monitoring system 60 may be determined specifically for the RAS1, and it may include more or fewer components than shown. In one embodiment, the monitoring system 60 may also monitor the biochemical oxygen demand (BOD), chemical oxygen demand (COD), dry matter, H2S content, and / or turbidity of the water 99 within the fish holding unit 2.

[0068] The water supply 3 includes a conditioning system 50 for adjusting the parameters of the non-recirculated water. The conditioning system 50 includes a data processing unit (not shown) that controls an additive supply 51. The conditioning system 50 and the additive supply 51 jointly control the parameters of the non-recirculated water. The additive supply 51 includes a container for salts, specifically NaCl and Na2CO3, to control osmolality and a container for HCl to lower the pH. pH can be increased using Na2CO3, and osmolality can be simultaneously changed with HCl. NaCl, HCl, and Na2CO3 all affect conductivity. The additive supply 51 can also include an oxygenation unit with O2 to adjust the O2 concentration of the non-recirculated water. The conditioning system 50 may also include a CO2 stripping unit, which can adjust the pH. The temperature is monitored by a thermometer, and the temperature of the non-recirculated water can be increased or decreased using a heat exchanger (not shown), increased using a heating element, or cooled using a Peltier element or the like (not shown).

[0069] In certain embodiments, the conditioning system 50 receives data regarding the COD, BOD, and / or dry matter of the water 99 in the fish holding unit 2 as representative of the geosmin content of the water 99 in the fish holding unit 2. The conditioning system 50 may also optionally receive data regarding the H2S content and / or turbidity. The conditioning system 50 may then add an appetizing agent from the additive source 51 depending on the estimated concentration of geosmin in the water 99 or based on the H2S content and / or turbidity in the fish holding unit 2.

[0070] The water supply system 3 can also include a scrubbing unit 35 for conditioning non-recirculating water, e.g., in the conduit 30. The scrubbing unit 35 is configured to remove particles, undesirable materials, or microorganisms or viruses, or a combination thereof. The scrubbing unit 35 can include, for example, a biofiltration unit, a solids removal unit, a UV treatment unit, and an ozonation unit.

[0071] The RAS1 comprises a data processing unit 61 configured to acquire data from the monitoring system 60 and to control the regulating system 50 based on the acquired data. In Figure 1, the data flow is indicated by dotted lines. The data flow may be via cable connections between the monitoring system 60, the data processing unit 61, and the regulating system 50 and the additive source 51, or the data flow may be wireless.

[0072] Generally, the conditioning system 50 receives data from the data processing unit 61 and controls the composition of the non-recirculated water based on the data of the water 99 in the fish holding unit 2. When the fish in the fish holding unit 2 are not being fed, the non-recirculated water is conditioned to correspond to the water 99 in the fish holding unit 2. Before and during feeding, the non-recirculated water is conditioned to correspond to the osmolality concentration, conductivity, oxygen concentration, CO2 concentration, N2 concentration, NH4 + At least one of the concentration, temperature and pH is adjusted to be different from the corresponding parameters of the water 99 in the fish holding unit 2 .

[0073] The present invention is not limited to the embodiments shown and described above, but various modifications and combinations can be made.

[0074] Example Example 1 - Hydraulic transport of feed in RAS Feed (pellets) stored in a feed storage unit was added to the RAS conduit via a lobe pump or ejector. The amount of water relative to pellets (shown below as a ratio of water to pellets by weight) and water flow were varied. Liquid loss, fines loss, and residence time were measured. The results are shown in Table 3 below.

[0075] [Table 3]

[0076] In Table 3, "Lobe" refers to the use of a lobe pump (a pump that sucks pellets up from a feed storage unit where the pellets are stored underwater). "Ejector" refers to the use of an ejector to add pellets to a conduit (sucking the pellets into the water flow in the conduit). The ejector is placed after the pump in the conduit, thereby eliminating the need for the feed pellets to pass through the conduit pump.

[0077] "Weight loss, liquid" means weight loss, for example from oil, leaving pellets in the water stream of a conduit. "Fines" refers to weight loss of feed pellets from crumbled, dusty, torn pieces of pellets that are lost, for example, in the water flow of the conduit. "Velocity" indicates the flow rate of the water flow caused by the pellets. "Retention time" refers to the time the pellets are retained in the water flow of the conduit.

[0078] Conclusion: Hydraulic transport of feed pellets provides very low fines generation and low liquid loss even at different water to pellet ratios.

[0079] Example 2 - Feeding with Recirculated and Non-Recirculated Water Feeding with recirculated and non-recirculated water was compared in two RAS, each with a fish-holding unit having a diameter of 19 m and a depth of 7 m.

[0080] In the first RAS, feed pellets were added to the recirculating water in the water recirculation conduit and hydraulically transported to the fish holding unit. The feed pellets were added after mechanical and biological filtration of the recirculating water.

[0081] In the second RAS, feed pellets are added to non-recirculating freshwater and hydraulically transported to the fish holding unit.

[0082] The salinity and temperature of the freshwater were lower than those of the recirculated water. The salinity of the recirculated water was approximately 3% (by mass) and the dry matter content was 40,000 mg / L (mainly salts), and the salinity and temperature of the recirculated water corresponded to the water in the fish holding unit. In comparison, the dry matter content of the freshwater was 190 mg / L. The operator also noticed that the recirculated water smelled of geosmin.

[0083] The operator confirmed the following: Fish fed freshwater had an increased appetite compared to fish fed recirculated water. In RAS using freshwater feeding, fish schooled larger at the feeding point. When freshwater was flowing through the pipe before the feed pellets were introduced into the freshwater, fish schooled at the feeding point, indicating that the fish noticed the difference in water properties at the feeding point due to the inflow of freshwater.

[0084] When fish congregate at the feeding point, the chances of the feed pellets being eaten increases and the residence time of the feed pellets in the fish holding unit is reduced, which improves feed utilization, ensuring a higher proportion is eaten, and reducing the impact of uneaten feed on water quality such as turbidity. The inventions described in the original claims of this application are set forth below. [1] A method of raising fish in a recirculating aquaculture system (RAS) including a fish holding unit in fluid communication with a water supply, the fish holding unit containing a volume of water defining a water depth, the water having an osmolality, conductivity, oxygen concentration, CO 2 Concentration, N 2 concentration, NH 4 + a concentration, a temperature, and a pH, and the recirculating aquaculture system further comprises a recirculation conduit, and the method further comprises: providing a flow of non-recirculating water to the water supply, the non-recirculating water having an osmotic concentration, a conductivity, an oxygen concentration, a CO 2 Concentration, N 2 concentration, NH 4 + differs from the water in said fish holding unit with respect to at least one of concentration, temperature, and pH; Preparing feed pellets; and adding the feed pellets to the non-recirculating water and hydraulically transporting the feed pellets to the fish holding unit; A method for raising fish in a recirculating aquaculture system, comprising the steps of: [2] The non-recirculating water is less than the water in the fish holding unit. i) an osmolality concentration difference of at least 1 mOsm / kg; ii) a conductivity difference of at least 0.01 μS / cm; iii) an oxygen concentration difference of at least 0.05 mg / kg; iv) at least 0.05 mg / kg of CO 2 concentration difference; v) at least 0.05 mg / kg N 2 concentration difference; vi) at least 0.05 mg / kg NH 4 + concentration difference; vii) a temperature difference of at least 0.1°C; and viii) pH difference of at least 0.1 [1] A method of raising fish in a recirculating aquaculture system that differs by at least one of the following: [3] The method of raising fish in a recirculating aquaculture system according to [1] or [2], wherein the non-recirculating water has an osmolality difference of at least 1 mOsm / kg compared to the water in the fish holding unit. [4] The osmotic pressure concentration, the oxygen concentration, and the CO 2 Concentration, N 2 Concentration, NH 4 + The method for raising fish in a recirculating aquaculture system according to [1] or [2], further comprising adjusting one or more of the concentration, the temperature, and the pH. [5] The conditioning of the non-recirculating water relative to the water in the fish holding unit i) an osmolality concentration difference of at least 1 mOsm / kg; ii) a conductivity difference of at least 0.01 μS / cm; iii) an oxygen concentration difference of at least 0.05 mg / kg; iv) at least 0.05 mg / kg of CO 2 concentration difference; v) at least 0.05 mg / kg N 2 concentration difference; vi) at least 0.05 mg / kg NH 4 + concentration difference; vii) a temperature difference of at least 0.1°C; and viii) pH difference of at least 0.1 [4] A method for raising fish in a recirculating aquaculture system. [6] The osmolality, conductivity, oxygen concentration, CO 2 Concentration, N 2 concentration, NH 4 + The method further includes monitoring one or more of the concentration, temperature, and pH. [1] 5. How to raise fish in a recirculating aquaculture system. [7] The method of raising fish in a recirculating aquaculture system according to [1], wherein the non-recirculating water flow has a Reynolds number in the range of 500 to 50,000. [8] A method of raising fish in a recirculating aquaculture system according to any of [1] to [7], wherein the feed pellets are hydraulically transported to the fish holding unit at or below a part of the surface of the water in the fish holding unit. [9] The method of raising fish in a recirculating aquaculture system of any of [1] to [8], further comprising the step of cleaning the non-recirculating water before adding the feed pellets to the non-recirculating water, the cleaning comprising one or more of microfiltration, heat treatment, ultraviolet (UV) treatment, and ozone treatment.

[10] A recirculating aquaculture system (RAS) comprising a fish holding unit in fluid communication with a water supply via a conduit, the fish holding unit containing a volume of water defining a water depth, the water having an osmolality concentration, a conductivity, an oxygen concentration, a CO 2 Concentration, N 2 concentration, NH 4 + concentration, temperature, and pH, The recirculating aquaculture system includes an osmotic pressure measurement unit, a conductivity measurement unit, an oxygen concentration measurement unit, a CO concentration measurement unit, a CO concentration measurement unit, a CO concentration measurement unit, an osmotic pressure ... 2 Concentration measurement unit, N 2 Concentration measurement unit, NH 4 + further comprising a data processing unit configured to receive data from one or more of the concentration measuring unit, the temperature measuring unit, and the pH measuring unit; The conduit receives data from the data processing unit and compares it to the water in the fish holding unit. i) an osmolality concentration difference of at least 1 mOsm / kg; ii) a conductivity difference of at least 0.01 μS / cm; iii) an oxygen concentration difference of at least 0.05 mg / kg; iv) at least 0.05 mg / kg of CO 2 concentration difference; v) at least 0.05 mg / kg N 2 concentration difference; vi) at least 0.05 mg / kg NH 4 + concentration difference; vii) a temperature difference of at least 0.1°C; and viii) pH difference of at least 0.1 and configured to provide water having at least one of: A recirculating aquaculture system wherein the conduit includes a feed loading section whereby when feed is added to the system at the feed loading section, the feed is hydraulically transported underwater through the conduit to the fish holding unit at an entry point.

[11] The recirculating aquaculture system (RAS) according to

[10] , wherein the conduit has a diameter of 10 cm to 100 cm.

[12] The recirculating aquaculture system (RAS) of any of

[10] to

[11] , wherein the conduit is configured for cleaning-in-place.

[13] A recirculating aquaculture system (RAS) according to any one of

[10] to

[12] , further comprising a recirculation conduit.

[14] A recirculating aquaculture system (RAS) according to any one of

[10] to

[13] , wherein the water source is configured to supply non-recirculating water to the fish holding unit through the conduit, whereby the feed added at the feed loading section is hydraulically transported by the non-recirculating water through the conduit water to the fish holding unit at the inlet point. [Explanation of symbols]

[0085] 1 recirculating aquaculture system, 2 fish holding units, 21 entry points, 3 water source; 30 Conduit, 31 Feed storage units, 32 water tanks, 33 pumps, 34 Feed loading section, 35 cleaning units, 4 recirculation systems, 41 cleaning systems, 42 Cleaning system pump, 43 recirculation conduit; 50 adjustment system, 51 additive sources, 60 surveillance systems, 61 data processing device, 99 water, 100 water surface, D Water depth.

Claims

1. 1. A method of raising fish in a recirculating aquaculture system (1), abbreviated as RAS, comprising a fish holding unit (2) in fluid communication with a water supply (3), said fish holding unit (2) containing a volume of water (99) defining a water depth (D), said water (99) being controlled by osmolality, conductivity, oxygen concentration, CO 2 Concentration, N 2 concentration, NH 4 + a concentration, temperature, and pH, and the recirculating aquaculture system (1) further comprises a recirculation conduit (43), and the method comprises: providing a flow of non-recirculating water to said water supply source (3), said non-recirculating water having osmolality concentration, conductivity, oxygen concentration, CO 2 Concentration, N 2 concentration, NH 4 + different from the water (99) in said fish holding unit (2) in terms of at least one of concentration, temperature, and pH; Preparing feed pellets; and adding the feed pellets to the non-recirculating water and hydraulically transporting the feed pellets to the fish holding unit (2); A method for raising fish in a recirculating aquaculture system, comprising the steps of:

2. The non-recirculated water is less than the water (99) in the fish holding unit (2). i) an osmolality difference of at least 1 mOsm / kg; ii) a conductivity difference of at least 0.01 μS / cm; iii) an oxygen concentration difference of at least 0.05 mg / kg; iv) at least 0.05 mg / kg CO 2 concentration difference; v) at least 0.05 mg / kg N 2 concentration difference; vi) at least 0.05 mg / kg NH 4 + concentration difference; vii) a temperature difference of at least 0.1°C; and viii) a pH difference of at least 0.1 2. The method of rearing fish in a recirculating aquaculture system (1) according to claim 1, wherein the method differs by at least one of the following:

3. 3. The method for raising fish in a recirculating aquaculture system (1) according to claim 1 or 2, wherein the non-recirculating water has an osmolality difference of at least 1 mOsm / kg compared to the water (99) in the fish holding unit (2).

4. The osmotic pressure concentration, the oxygen concentration, and the CO 2 Concentration, N 2 concentration, the NH 4 + 3. The method for raising fish in a recirculating aquaculture system (1) according to claim 1 or 2, further comprising the step of adjusting one or more of the concentration, the temperature and the pH.

5. The conditioning of the non-recirculating water is compared to the water (99) in the fish holding unit (2). i) an osmolality difference of at least 1 mOsm / kg; ii) a conductivity difference of at least 0.01 μS / cm; iii) an oxygen concentration difference of at least 0.05 mg / kg; iv) at least 0.05 mg / kg CO 2 concentration difference; v) at least 0.05 mg / kg N 2 concentration difference; vi) at least 0.05 mg / kg NH 4 + concentration difference; vii) a temperature difference of at least 0.1°C; and viii) a pH difference of at least 0.1 5. The method of raising fish in a recirculating aquaculture system (1) according to claim 4, which results in at least one of

6. The osmolality, conductivity, oxygen concentration, CO of the water (99) in the fish holding unit (2) 2 Concentration, N 2 concentration, NH 4 + 6. The method for raising fish in a recirculating aquaculture system (1) according to any one of claims 1 to 5, further comprising the step of monitoring one or more of concentration, temperature and pH.

7. 2. The method for raising fish in a recirculating aquaculture system (1) according to claim 1, wherein the non-recirculating water flow has a Reynolds number in the range of 500 to 50,000.

8. 8. The method for raising fish in a recirculating aquaculture system (1) according to any one of claims 1 to 7, wherein the feed pellets are hydraulically transported to the fish holding unit (2) below the water surface (100) or a part of the water (99) of the fish holding unit (2).

9. 9. The method for raising fish in a recirculating aquaculture system (1) according to any one of claims 1 to 8, further comprising the step of cleaning the non-recirculating water before adding the feed pellets to the non-recirculating water, the cleaning comprising one or more of microfiltration, heat treatment, ultraviolet (UV) treatment, and ozone treatment.

10. A recirculating aquaculture system (1), abbreviated as RAS, comprising a fish holding unit (2) in fluid communication with a water supply source (3) via a conduit (30), said fish holding unit (2) containing a volume of water (99) defining a water depth (D), said water (99) being characterized by osmolality, conductivity, oxygen concentration, CO 2 Concentration, N 2 concentration, NH 4 + having a concentration, temperature, and pH; The water supply (3) comprises a regulation system (50), The recirculation aquaculture system (1) further comprises a recirculation conduit (43), The recirculating aquaculture system (1) includes an osmotic concentration measuring unit, a conductivity measuring unit, an oxygen concentration measuring unit, a CO 2 Concentration measurement unit, N 2 Concentration measurement unit, NH 4 + a data processing unit (61) configured to receive data from one or more of the concentration measuring unit, the temperature measuring unit, and the pH measuring unit; The adjusting system (50) is configured to receive data from the data processing unit (61) and adjust the non-recirculating water based on the corresponding data of the water (99) in the fish holding unit (2), and the adjusted non-recirculating water is compared to the water (99) in the fish holding unit (2). i) an osmolality difference of at least 1 mOsm / kg; ii) a conductivity difference of at least 0.01 μS / cm; iii) an oxygen concentration difference of at least 0.05 mg / kg; iv) at least 0.05 mg / kg CO 2 concentration difference; v) at least 0.05 mg / kg N 2 concentration difference; vi) at least 0.05 mg / kg NH 4 + concentration difference; vii) a temperature difference of at least 0.1°C; and viii) a pH difference of at least 0.1 and The conduit (30) includes a feed loading section (34) whereby when feed is added to the system at the feed loading section (34), the feed is hydraulically transported underwater through the conduit (30) to the fish holding unit (2) at an inlet point (21).

11. 11. The recirculating aquaculture system (1) according to claim 10, wherein the conduit (30) is a cylinder having a diameter in the range of 20 mm to 100 mm.

12. 12. The recirculating aquaculture system (1) according to any one of claims 10 to 11, wherein the conduit (30) is configured for clean-in-place.

13. 13. A recirculating aquaculture system (1) according to any one of claims 10 to 12, wherein the water supply (3) is configured to supply non-recirculating water to the fish holding units (2) through the conduits (30), whereby the feed added at the feed loading section (34) is hydraulically transported by the non-recirculating water through the conduits (30) to the fish holding units (2) at the inlet points (21).

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