AN APPARATUS PROVIDING COOLING OF SEAWATER SURFACES COMPRISING A BUBBLE CURTAIIN
20250290262 · 2025-09-18
Inventors
Cpc classification
E02B1/003
FIXED CONSTRUCTIONS
International classification
Abstract
A system is provided having a bubble curtain comprising a pipe arranged with holes in respective pipe walls. Compressed air applied onto the pipe generates bubbles of the bubble curtain upwelling colder water from below a seawater surface. A position of the pipe below the seawater surface is a function of a defined target temperature of the cooled seawater surface.
Claims
1. A system comprising a bubble curtain (10) configurable to manipulate a temperature of a seawater surface (18) to be approximately equal a defined target temperature of the seawater surface (18), wherein a pipe (10a) of the bubble curtain (10) is positioned at an adjustable depth below the seawater surface (18) such that an average temperature of respective seawater layers of a sea water column (19) located between a respective one of the adjustable positions of the pipe (10a) and the sea water surface (18) to be approximately equal the defined target temperature and is upwelled and mixed by bubbles released through holes arranged in respective walls of the pipe (10a), wherein the bubbles are ascending and entraining water from the respective seawater layers of the sea water column (19).
2. The system of claim 1, wherein a temperature profile of a water column (19) is established by measuring respective temperatures of seawater layers of the sea water column (19) and iterating different combinations of temperatures of the respective sweater layers as a function of respective depth positions of the pipe (10a) until an average temperature of the column (19) is approximately equal the defined target temperature.
3. The system of claim 1, wherein the depth position of the pipe (10a) is modified with a distance from a position above the pipe (10) wherein bubbles are formed.
4. The system of claim 1, wherein the bubble curtain (10) comprises at least two pipes (10a) arranged in parallel with a defined distance between them.
5. The system of claim 1 wherein the pipe (10a) comprises a plurality of holes in respective walls of the pipe (10a), wherein the number of holes is limited to form a total summed hole area opening-surface being less than a cross sectional area of the pipe (10a).
6. The system of claim 1, wherein the pipe (10a) is arranged with means for controlling a position of a submerged pipe (10a) to be located above a seabed surface with a defined distance from the seabed surface, or below a sea water surface.
7. The system of claim 6, wherein the means for controlling the position is at least a float arranged with an adjustable bouncy enabling a shift of position of the pipe (10a) upwards or downwards relative to a seawater surface (18), or the means are trawl doors.
8. The system of claim 1, wherein the pipe (10a) comprises an inner tubing (10d) surrounded by an outer tubing (10f), wherein the inner tubing (10d) receives compressed air from an external located compressor while a space (10g) in between the first and second tubing (10d, 10f) receives a cooling agent from a cooling machine.
9. The system of claim 8, wherein the cooling agent is replaced with a fluid heated to a defined temperature.
10. The system of claim 1, wherein a ship (22) is configured to deploy a bubble curtain (10) at a position defined by a meteorological institution.
11. The system of claim 1, wherein at least one temperature sensor is configured to be deployed in an induced water surface current from the bubble curtain (10).
12. The system of claim 11, wherein a measured temperature from the at least one temperature sensor is used to modify a pressure of a compressor feeding compressed air to the pipe (10a), or the location wherein the pipe (10a) is located is adjusted upwards or downwards relative to the sea surface (18).
13. The system of claim 2, wherein extra colder water is supplied to the location of the system (10) by pumping water from another nearby location comprising colder water.
14. The system of claim 1, wherein the target temperature is 26.5 C.
Description
DESCRIPTION OF THE FIGURES
[0021]
[0022]
[0023]
[0024]
DETAILED DESCRIPTION OF AN EMBODIMENT
[0025] Although the present invention is disclosed in connection with specific examples of embodiments, it should not be construed as being in any way limited to the presented examples. The accompanying claim set defines the scope of protection of the present invention. In the context of the claims, the terms comprising or comprises do not exclude other possible elements or steps. Further, the mentioning of references such as a or an etc. should not be construed as excluding a plurality. The use of reference signs in the claims with respect to elements indicated in the figures shall also not be construed as limiting the scope of the invention.
[0026] Furthermore, combining individual features mentioned in different claims may possibly be advantageously, and the mentioning of these features in different claims does not exclude that a combination of features is not possible and advantageous.
[0027]
[0028] The ascending bubbles will entrain surrounding water 11a, 11b upwards on both sides of the bubble curtain 10 from the pipe 10a to the seawater surface 18. A natural seawater surface water current 17 is illustrated moving towards the bubble curtain 10. When the ascending bubbles 12 interfere with the natural seawater surface water current 17 parts of the bubbles 12 are moving away from the bubble curtain 10 on both sides 13a, 13b of the bubble curtain 10. When the respective water currents 17, 14a, 14b meet like this the water of the meeting water currents will be mixed in a turbulent manner as illustrated by the reference numeral 15a, 15b and 16, for example.
[0029]
[0030] When a certain depth is selected for the pipe 10a of the bubble curtain 10, the temperature of the mixed water is dependent on the selected depth, i.e., the temperature of the ascending water bubbles entraining water from the surrounding water the ascending bubbles passes. Therefore, if respective temperatures of respective layers of water between the depth position of the pipe 10a and the seawater surface 18 is known it is possible to calculate a possible temperature of the mixed water in the surface of the water, which may be a target temperature, for example a target temperature of 26,5 C. when tropical cyclone mitigation is the object of the deployment of the bubble curtain 10.
[0031] By varying the depth location of the pipe 10a different target temperatures may be possible to achieve, and since a target temperature according to the present invention of the cooling water is the target temperature of the sea water surface a more efficient surface water cooling is achieved since the cooling water remains longer on the sea water surface because the cooling water has approximately the same weight (density) as the surface water layer that is cooled, and the cooling water will not sink downwards as known with other prior art cooling techniques, for example collecting colder water from below a thermocline.
[0032] However, it may occur situations wherein the bubbles from the pipe 10a starts to be formed in a distance from the position of the pipe 10a. This can for example be observed with a submerged video camera and the position of the pipe 10a can be lowered further compensating for the distance from the pipe to the position wherein bubbles are generated entraining water.
[0033]
[0034] It is within the scope of the present invention that several temperature sensors 20 may be deployed in the seawater area of interest and for example an average temperature of the respective measured temperatures may be used when assessing if a target temperature is achieved. Other techniques providing a same measurement(s) is also within the scope of the present invention.
[0035]
[0036] The ship 22 is further arranged with a compressor feeding compressed air through a pipe 22b connected in a center position of the pipe 10a.
[0037] It also within the scope of the present invention that a bubble curtain 10 according to the present invention can be located stationary on a selected position, or for example the boat 22 can move a bubble curtain 10 across a seawater surface. The bubble curtain can be positioned in the seawater with for example the same technique used for trawls as known from the fishing industry.
[0038] The compressor arranged for example onboard a ship 22 can be of any conventional compressor type delivering the necessary flux of air with for example a required overpressure (depending on the actual installation depth). Some of the largest commercial compressors have capacities of approximately 6-7 000 Nm3/min of air (N denotes normal air) with working pressure of 16-20 bar and power consumption of some 35 MW. Connecting compressors in parallel will multiply the output capacity to even higher flux rates.
[0039] As discussed above, just upwelling cold water may not be enough to achieve a desired temperature of a larger seawater surface. The problem of difference of density of colder water and warmer water that is mixed can be solved according to an aspect of the present invention. With reference to
[0040] Therefore, increasing the efficiency when cooling a larger seawater area can be achieved by lowering a pipe 10a of a bubble curtain 10 to a depth below the seawater surface 18 defining a seawater column 19 which the bubbles 12 entrain water from respective seawater layers having a combined average temperature equal to a defined target temperature, or a temperature just below or just above the target temperature. An aspect of the present invention is that if too cold water is collected by the bubble curtain 10 the efficiency of the cooling will be less efficient since the colder water rest a shorter time on the sea water surface before sinking due to the higher weight of the cooling water. Therefore, determining the depth of the location wherein the pipe 10a is to be located is of importance for the efficiency of the operation.
[0041] With reference to
[0042] Therefore, changing a vertical position of a pipe 10a relative to a seawater surface can be used to achieve an efficient temperature control of a larger seawater surface.
[0043] An important factor is also the speed of an induced surface water current on the seawater surface. The speed is directly related to how much air is pushed through a pipe 10a of a bubble curtain 10 and the induced surface speed should be in the same order as a natural water current speed at the location of the bubble curtain 10 in order to maintain a continuous mixing of the natural surface current and the bubble-induced surface flow.
[0044] The pipe diameter of a pipe can be found from practical engineering diagrams based on the working pressure, permissible pressure drop, air flux, and pipe length etc.
[0045] The diameter of the holes in the surface of the pipe 10a can be calculated from common knowledge of distributed flow systems. For example, according to the practices with manifolds the total area of the holes should be less than the cross-sectional area of the pipe 10a of the bubble curtain 10.
[0046] Here follows some examples, wherein a target temperature of 26.5 C. is to be achieved in areas of the Gulf of Mexico. A typical depth of the location of a pipe 10a below the seawater surface in these areas is estimated from known temperature date to be 150 meters.
[0047] The depth of 150 meters is decided on knowledge of a temperature profile of respective layers of a water column 19 between a possible position of a pipe 10a and the seawater surface. By adjusting the depth position of the pipe 10a different average temperatures of the water column 19 can be calculated.
[0048] It is also within the scope of the present invention to use more than one pipe 10a in a bubble curtain 10, for example in a parallel configuration.
TABLE-US-00001 TABLE 1a Bubble-induced surface water current speed when 30 000 Nm3/min of air is led down to 150 m. Length of pipe Trough one single pipe Through two pipes, each 1000 m 108 cm/s 161 cm/s 2000 m 86 cm/s 128 cm/s 5000 m 63 cm/s 94 cm/s
TABLE-US-00002 TABLE 1 b Bubble-induced surface water current speed when 10 000 Nm3/min of air is led down to 150 m. Length of pipe Trough one single pipe Through two pipes, each 1000 m 75 cm/s 112 cm/s 2000 m 60 cm/s 89 cm/s 5000 m 44 cm/s 65 cm/s
TABLE-US-00003 TABLE 1 c Bubble-induced surface current speed when 5 000 Nm3/min of air is led down to 150 m. Length of pipe Trough one single pipe Through two pipes, each 1000 m 59 cm/s 89 cm/s 2000 m 47 cm/s 71 cm/s 5000 m 35 cm/s 52 cm/s
[0049] Respective calculations show that a harsh environment with a natural surface current of 1.5 m/s requires a two pipe solution each with five compressors delivering 30 000 Nm3/min over maximum 1 km length. At the other end of the scale: a single 5 km pipe will be able to homogenize the upper 150 m below 26.5 in a current of up to 35 cm/s.
[0050] A complicating factor in some applications of an example of embodiment of the present invention is for example the fact that when trying to stop a development of a tropical cyclone it is necessary to identify a trajectory the center of the tropical cyclone will follow over the seawater surface. Further, the depth of the water needs to be deep enough to enable establishment of a seawater column 19 having an average temperature of the respective seawater layers that is close to the target temperature of 26,5 C. The examples above disclose that a depth of 150 m can achieve this average temperature in the Gulf of Mexico. This necessary depth need not always be available dependent on the trajectory of a specific tropical storm that is approaching. Respective meteorological authorities have the capability to estimate a trajectory of a tropical storm, but the trajectory can change. Therefore, deployment of a bubble curtain system or systems according to the present invention needs to be somewhat dynamical. Therefore, a small fleet of ships 22 illustrated in
[0051] A further possible problem can be that the depth at the location is not deep enough to satisfy the necessary average temperature of a seawater column 19 as disclosed in
[0052] It is also within the scope of the present invention to replace the cooling agent with a heated fluid at a selected temperature. This may depend on underwater currents transporting cold water upwards in a water column, or due to the use of an example of embodiment of the present invention. For example, keeping a surface area free from ice, or establishing a temperature in the seawater surface that is beneficial for a specific biological activity.
[0053] Another solution to the problem of too little cold water at a specific location is to arrange a pipe from another location on a seabed wherein the water at this location is below for example a thermocline at the specific location. A pump may then be adding colder water to the location of the bubble curtain. By monitoring the resulting surface temperature, the volume of colder water supplied to the location missing colder water may be increased or reduced just by controlling the pump.
[0054] Monitoring surface temperatures with a temperature sensor as discussed in connection with
[0055] According to an example of embodiment of the present invention, a system comprising a bubble curtain 10 is configurable to manipulate a temperature of a seawater surface 18 to be in an order of magnitude of a defined target temperature of the seawater surface 18, wherein a pipe 10a of the bubble curtain 10 is positioned at an adjustable depth below the seawater surface 18, wherein an average temperature of respective seawater layers of a sea water column 19 located between a respective one of the adjustable positions of the pipe 10a and the sea water surface 18 equals in order of magnitude the defined target temperature and is upwelled and mixed by bubbles released through holes arranged in respective walls of the pipe 10a, wherein the bubbles are ascending and entraining water from the respective seawater layers of the sea water column 19.
[0056] According to the example of embodiment of the present invention disclosed above, a temperature profile of a water column 19 is established by measuring respective temperatures of seawater layers of the sea water column 19 and iterating different combinations of temperatures of the respective sweater layers as a function of respective depth positions of the pipe 10a until an average temperature of the column 19 is in the order of magnitude of the defined target temperature.
[0057] According to the example of embodiment of the present invention disclosed above, the bubble curtain 10 comprises at least two pipes 10a arranged in parallel in a distance from each other.
[0058] According to the example of embodiment of the present invention disclosed above, the pipe 10a comprises a plurality of holes in respective walls of the pipe 10a, wherein the number of holes is limited to form a total summed hole area opening-surface being less than a cross sectional area of the pipe 10a.
[0059] According to the example of embodiment of the present invention disclosed above, the pipe 10a is arranged with means for controlling a position of a submerged pipe 10a to be located above a seabed surface with a defined distance from the seabed surface, or below a sea water surface.
[0060] According to the example of embodiment of the present invention disclosed above, the means for controlling the position is at least a float arranged with an adjustable bouncy enabling a shift of position of the pipe (10a) upwards or downwards relative to a seawater surface (18), or the means are trawl doors.
[0061] According to the example of embodiment of the present invention disclosed above, the pipe 10a comprises an inner tubing 10d surrounded by an outer tubing 10f, wherein the inner tubing 10d receives compressed air from an external located compressor while a space 10g in between the first and second tubing 10d, 10f receives a cooling agent from a cooling machine.
[0062] According to the example of embodiment of the present invention disclosed above, a ship 22 is configured to deploy a bubble curtain (10) at a position defined by a meteorological institution.
[0063] According to the example of embodiment of the present invention disclosed above, at least one temperature sensor is configured to be deployed in an induced water surface current from the bubble curtain 10.
[0064] According to the example of embodiment of the present invention disclosed above, a measured temperature from the at least one temperature sensor is used to modify a pressure of a compressor feeding compressed air to the pipe 10a, or the location wherein the pipe 10a is located is adjusted upwards or downwards relative to the sea surface 18.
[0065] According to the example of embodiment of the present invention disclosed above, extra colder water is supplied to the location of the system (10) by pumping water from another nearby location comprising colder water.
[0066] According to the example of embodiment of the present invention disclosed above, wherein the target temperature is 26,5 C.