This application claims priority to and the benefit of New Zealand Application No. 750607, filed on Feb. 12, 2019, the entire disclosure of which is hereby incorporated by reference.
The invention relates to a fluid current producing or simulating apparatus assembly which is suitable for creating certain predictable current pattern formations and to a method of installation/application. The invention is directed particularly but not solely for a water current producing or simulating apparatus assembly for training water users in a pool or enclosed body of water to be able to handle many different current conditions in relative safety and/or the current simulation apparatus can be used as an amusement facility.
Due to a ready access to water at beaches and rivers, New Zealand has a relatively high death rate from drowning compared to other countries. Injury is also another problem with water use which in itself is costly to the country including time off work and various health professionals such as doctors and facilities like hospitals.
Aggressive rip currents like for example at many New Zealand North Island, West Coast beaches are a hazard for swimmers, fishermen and boating. Any activities in or around water carry the risk of injury or drowning. Almost any use adjacent or in water is at risk from unnecessary drowning. To counter this risk, New Zealand has numerous agencies such as water safety council and lifesaving organizations that attempt to reduce the problem by advertising or by being on site. Maintaining such organizations and infrastructure is costly and the country would benefit from water users being better trained to cope with adverse water conditions
A problem with existing methods of training people in regard to water safety and swimming, is a lack of opportunity to train in potentially challenging conditions in a safe and secure manner. Desired challenging conditions include needing different water conditions including currents and waves.
Existing wave pools can be used for some training methods but are expensive to alter and are not designed to readily create different water current patterns with not many or potentially none being mobile.
Currently training for challenging situations involves the use of existing outdoor natural areas such as beaches and rivers. However, it is well known that beaches, rivers and lakes though being challenging can cause unnecessary risk to swimmers during training. Use is dependent on a number of factors i.e weather conditions, safety and accessibility.
All references, including any patents or patent applications cited in this specification are hereby incorporated by reference. No admission is made that any reference constitutes prior art. The discussion of the references states what their authors assert, and the applicants reserve the right to challenge the accuracy and pertinency of the cited documents. It will be clearly understood that, although a number of prior art publications may be referred to herein; this reference does not constitute an admission that any of these documents form part of the common general knowledge in the art, in New Zealand or in any other country.
It is acknowledged that the term ‘comprise’ may, under varying jurisdictions, be attributed with either an exclusive or an inclusive meaning. For the purpose of this specification, and unless otherwise noted, the term ‘comprise’ shall have an inclusive meaning—i.e. that it will be taken to mean an inclusion of not only the listed components it directly references, but also other non-specified components or elements. This rationale will also be used when the term ‘comprised’ or ‘comprising’ is used in relation to one or more steps in a method or process.
It is an object of the invention to provide fluid current producing apparatus assembly and method of installation or operation that ameliorates some of the disadvantages and limitations of the known art or at least provide the public with a useful choice.
In a first aspect the invention resides in a fluid current producing apparatus assembly 1 for use in a fluid such as a body of water, the assembly including at least one receptacle 2, and current producing apparatus 3 and inflation and deflation apparatus 22c. Each, receptacle 2 includes a body forming at least one enclosed space 19 which further contains at least one independently inflatable and deflatable chamber therein for receipt of a fluid to at inflate a portion of the receptacle 2 therein having an inner surface 17b and the body having an outer surface 17a being outside the enclosed space 19 which is where controllable inflation and deflation occurs to modify the shape and flow pattern of receptacle 2, and the body of the receptacle 2 having end wall 15, side walls 16, an outer surface 17a of a top wall 17 and an outer surface 17a of a base wall 18 wherein the receptacle 2 also includes at least one enclosed space 19 is formed of chambers 30, 31 which are constructed to allow inflation or deflation therein by inflation and deflation apparatus 22c,
wherein the at least one receptacle 2 is fluidly joined or connected to current producing apparatus 3 such that the current producing apparatus 3 is configured to operate by drawing in a portion of fluid from the surrounding body of fluid surrounding the fluid current producing assembly and pushes or forces a first subportion of fluid back over the outer surface 17a of the at least one inflated receptacle 2 in a direction away from the current producing apparatus 3 in a circuit;
wherein inflation by the inflation and deflation apparatus 22c, of the at least one chamber 30, 31 by a second subportion of fluid drawn into at least a part of chamber 30, 31 of at least one receptacle 2 forces at least an outside part or portions of the at least one receptacle 2 to be inflated—as an inflated chamber and formed of a particular outward upper shape thereby when the first subportion of fluid is forced by current producing apparatus 3 over the outer surface 17a of each receptacle 2 from in front of the current producing apparatus 3 or away from the current producing apparatus 3, whereby the portion of fluid is drawn in predominantly from the surrounding fluid of the current producing apparatus 3 and extra fluid is drawn in from first the side walls 16 via first aperture 21 and then through at least one first passageway 20 back towards the current producing apparatus 3 in a circuit of flow, thereby creating different current or wave patterns for the fluid flowing over the outer surfaces 17a of the inflated chambers 30, 31.
Preferably each receptacle 2 includes the at least one first passageway 20 extending from end wall 15 to end wall 15 which is connected to the first aperture 21 where first aperture 21 connects to first passageway 20 located on side walls 16 this is an extra facility to allow fluid to be pulled away from the side walls 16 to at least reduce eddy currents forming on side walls 16 of receptacle 2, wherein there is no inflation and deflation in this first passageway 20 and only minor flow will be induced in and through first passageway 20 as compared to the flow outside the sides 9 of the fluid current producing apparatus assembly 1 and back to current producing apparatus 3.
Preferably, each body of receptacle 2 includes a closable inlet and outlet system which is formed of at least one second aperture 22 to allow constant inflation or deflation of at least each enclosed space 19 or chamber 30, 31 via the inflation and deflation apparatus 22c with the fluid being any suitable flowable material such as water which will change the pattern of flow of fluid over the outer surface 17a of at least top wall 17 of each receptacle 2.
Preferably, each receptacle 2 includes a bag connecting system in the form of in this example of one part of a zip fastening system located at an edge between the top wall 17 and end wall 15, and at least one cover flap to cover the zip fastening system whereby each adjoining receptacle 2 includes part of the zip fastening system to work together to fasten one receptacle 2 to another adjoining receptacle 2 whereby each receptacle 2 includes track and one of each receptacle includes a slider so that when two receptacles 2 are abutting or adjoining so that they can be zipped together to form a continuous channel wherein the first aperture 21 accessing first passageway 20 are located in side walls 16 to insure little or no eddy currents will form on side walls 16.
Preferably, each receptacle 2 is fabricated from a malleable or flexible type of product that is able to allow pressurizing by means of fluid which cause at least a portion of the receptacle 2 to be inflated or de-inflated wherein the fluid is water.
Preferably, each receptacle 2 has at least one middle chamber 30 and at least two outer chambers 31 which are interconnected to allow inflation or deflation there through and therein which are fluidly separated from each other each having at least one enclosed space 19 or chambers 30, 31 therein.
Preferably, when inflated, the top wall 17 of the middle chamber 30 and outer chamber 31 are shaped to cause different current or wave patterns there over at least the outer surface 17a of the top wall 17 wherein the shape of the middle chamber 30 significantly affects the wave pattern.
Preferably, the second enclosed space 19 of the receptacle 2 includes a first outer shape (see
Preferably or alternatively, at least one receptacle 2 includes a second shape (see
Preferably, each receptacle 2 includes a third middle shape (see
Preferably each receptacle 2 includes a fourth middle shape (see
Preferably, the current producing apparatus 3 includes a housing with at least one pump 41 and meshed guarded intake piping 43 wherein the piping fluidly interconnects the current producing apparatus 3 to the first passageway 20 of at least one receptacle 2 to enable the pump 41 to draw in fluid, which is then forced or pumped out, over the top wall 17 of the receptacle.
Preferably, a power supply is operatively connected to the pump 41 or pumping system and inflation and deflation apparatus 22c.
Preferably, the receptacle 2 includes rounded corners between side walls 16 and top wall 17 and between any changes in slope of the surface of the top wall 17 of the receptacles.
Preferably several receptacles 2 form an inflatable and/or de-flation bag system which are individually inflated and deflated via the inlet and outlet associated with second aperture 22 and connect by a piping system 22a to at least one enclosed space 19 or chamber 30, 31 for at least a portion of the at least one receptacle 2 wherein the piping system 22a includes interconnected pipework 22b, and inflation and deflation apparatus 22c.
Preferably several receptacles 2 are fluidly interconnected by the piping system 22a that will be attached to the inlet and outlet associated with second aperture 22 of each receptacle 2 to at least one enclosed space 19 or chamber 30, 31 and to an inflation and deflation apparatus 22c whereby each individual receptacle 2 is inflated and deflated by pumping fluid such as fluid on demand.
Preferably a pumping sequence is utilized in regards to the inflation and deflation of individual enclosed space 19 or chamber(s) 30, 31 of the receptacle 2 to be controlled by the inflation and deflation apparatus 22c which are controlled by a computer program that will simulate potential multiple current types.
Preferably the inflation and deflation apparatus 22c includes at least one pump, electronic controlled solenoid, pump and piping system 22a being operatively connected to the second entry apertures 22 having an inlet and outlet valve system of the side walls 16 of receptacle 2.
In a second aspect, the invention resides in a fluid current producing apparatus assembly for a body of water wherein each receptacle 2 consist of the minimum following items
In a second aspect the invention resides in a method of assembly of a fluid current producing or simulating apparatus assembly in a body of water, the fluid current producing or simulating apparatus assembly includes at least one receptacle 2 that is to be inflated having a middle chamber 30 between side or outer chambers 31 having at least one inflatable chamber 30, 31 therein, to be fluidly joined or connected to a current producing apparatus 3 and inflation and deflation apparatus 22c, such that the current producing apparatus 3 draws fluid from around the current producing apparatus 3 and through the first passageway 20 and first aperture 21 of receptacles 2 and to then force the fluid over the outside of the middle chamber 30 and top half of the outer chamber 31 of the receptacle 2 being inflated by inflation and deflation apparatus 22c and back around through receptacle 2 in a continuous circuit with few vortices, wherein the assembly of the apparatus includes the following steps:
The invention will now be described, by way of example only, by reference to the accompanying drawings:
The following description will describe the invention in relation to preferred embodiments of the invention, namely a fluid current producing or simulation/simulating apparatus assembly. The invention is in no way limited to these preferred embodiments as they are purely to exemplify the invention only and that possible variations and modifications would be readily apparent without departing from the scope of the invention.
At least one current producing apparatus 3, which is configured or constructed to be able to operate with a suitable fluid such as water to be able to receive or drawing in that fluid and then push the fluid in a defined direction, is located at one end such as end 7 of the area which serves to define the current direction over the inflatable receptacle 2. The current direction of the fluid, such as for example water, is oriented parallel with the sides 9 of the area of several receptacles 2, in at least semi-enclosed area or body of water.
In general the current producing or simulating apparatus assembly 1 is designed to have a participant experience of the flow (see arrows FF—forced flow and DF—drawn flow in figures representing the direction of flow of the fluid e.g., water) of a moving body of fluid in different modes by installing fluidly connected receptacles 2 on the floor of a body of fluid and forcing fluid over, around and through them in an almost continuous circuit, with optionally few or no vortices created. The modes in the form of outward shapes of the receptacles 2 can be used for any type of use, such as for example training, safety, and/or recreational purposes. The arrows DF and FF show some or most of the main or predominate flow directions but not all returning to the current producing apparatus 3 and the size of the arrows is meant to represent the proportion of the flow with respect to each other.
Methods can be used to hold the receptacles 2 down under a fluid e.g. water, such as vacuuming it down with suction pads to the pool floor, or holding it down with water bags located above the surface of the water and that sit on top of stilts that run down to the submerged receptacle system and connected under the water.
The modes or outward shapes are produced by inflating the receptacles 2, which include an enclosed space 19 which are formed as chambers 30, 31 of the receptacles 2, vary differently across each receptacle 2 and/or in different inflation levels from one end of the pool to the other. The inflating process can include initial air inflation to enable the positioning of the fluid current producing or simulating apparatus assembly 1 in the pool of water and then purging the air by filling with water to sink the fluid current producing or simulating apparatus assembly 1 into position relative to the floor of the pool or bed of the body of water. Each receptacle 2 has middle chamber 30 and outer chamber 31 that can also be referred to as portions, each with its own at least one second aperture 22 which includes an inlet and outlet structure leading to enclosed spaces 19 or chambers 30, 31 which are fluidly separate to a first passageway 20, e.g. a pipe.
Some current-producing or current simulation/simulating examples can be a rapids mode as seen in
If the assembly as disclosed herein is used for recreational use, the setup will require the wake ramp receptacle 2 to be installed along the first number of receptacles which is connected to the current producing apparatus 3 and the wake press 54 needs to be bolted to a frame of the current producing apparatus 3.
The wake press 54 is a predesigned shape that is designed to be efficient in creating and forming wake wave patterns, The fluid such as water is forced via the current producing apparatus 3 under the wake press 54 and may then be forced upwards by the middle chamber wake ramp thus creating a specific wave formation. The wake press 54 is controllable meaning up down and left and right, with the up down method creating a larger and smaller wave configuration and the left and right method steering the wave.
The wake ramp also can steer the wave via inflation and deflation. Please note all controlling of the wake press 54 is done via a either an electric or hydraulic system which controls varying ram configurations.
The use of the fluid current producing or simulating apparatus assembly 1 and its various modes or receptacle shapes, can assist in demonstrating authentically the intensity and strength of the water at different water heights and also to demonstrate a mild, controlled, real world sensation. From there we can create a scaffold learning experience in order for the participant to develop a mental and physical response of staying calm, staying afloat and to not swim against the current.
The receptacles 2 of the present invention are made or fabricated out of any suitable malleable or flexible type of material or combination of materials such as for example hypalon or PVC vinyl e.g. a bag or an inflatable bag which are constructed to allow flow down and over an outside or outer surface 17a of a middle chamber of receptacle 2 away from a current producing apparatus 3 with a return flow mostly passing back around combined side walls 16 of receptacle 2 and some flow being drawn through a first passageway 20 of each receptacle 2 and through side port inlets of at least one first aperture 21 (which can be an entry or exit aperture to first passageway 20 e.g. a pipe in a circuit back towards current producing apparatus 3, and separately be able to have a least a portion of each receptacle 2 to be inflated, de-inflated pressurised therein by the fluid, via a separate at least one chamber 30, 31 of the receptacle(s)), to produce the certain outward shapes for the outward flow of the rest of the fluid in a circuit to travel over the outer surface 17a of the chambers 30, 31 to be influenced to produce a certain wave or pattern as desired. Side wall 16 has at least one inlet or port (e.g. with a flap) being the first aperture 21 fluidly leading to and connected to first passageway 20 to remove or at least reduce eddy currents from side walls 16 so that no or very little eddy currents will form near or on the sides of receptacle 2.
This first aperture 21 is an extra facility to allow water to be pulled away and drawn in from outside of the side walls 16 to stop eddy currents forming on the side walls 16 of the receptacle 2 whereby there is no inflation and deflation in this first aperture to first passageway 20.
Receptacles 2 and Inflatable Receptacle System
As seen in
Once the fluid current producing or simulating apparatus assembly 1 is placed in a body of water, each receptacle 2 has at least one open first passageway 20 extending from end wall 15 to end wall 15 fluidly connected to an entry region of a first aperture 21. An inlet and outlet valve or port system located on at least the side walls 16 and in one example can be an entry or outlet aperture and receptacle joining or fastening system in the form of for example, a zipper or similar device for the receptacle connecting system 25 which together function to allow the fluid flow as forced by the current producing apparatus 3, to pass the fluid over the top wall of the at least one receptacle 2 away from the current producing apparatus 3 and be drawn back around along sides 9 of the fluid current producing or simulating apparatus assembly 1 with small flow through first passageway 20 and side inlets of first apertures 21 of side walls 16 from a distal end of the first passageway 20 from the current producing apparatus 3 back to the current producing apparatus 3 or vice versa, in a continuous circuit.
Each second aperture 22 includes a valve system for entry to enclosed space 19 or chamber 30, 31 i.e. are not fluidly connected to the first passageway 20 and its first apertures 21. The inlet and outlet system of second aperture 22 includes a valved system for an inlet or outlet having a port and valve, connectable to piping as shown in
Furthermore, as shown in
At least one entry region of first aperture 21 is fluidly connected via a first entry which leads to first passageway 20 which is designed to provide an entry for fluid to then pass into first passageway 20. In this example, entry region of first aperture 21 and its entry to first passageway 20 can be shaped to be smaller in diameter or volume than first passageway 20 for a small amount of return flow back to the current producing apparatus 3.
Each second entry aperture 22 can include this example of an entry aperture of the inlet and outlet valve system which is for separate access from an optional first passageway 20, to enclosed space 19 which is in the form of at least one individually enclosed space 19 or chamber 30, 31 of all receptacles 2, which is fillable or pressurized with any suitable fluid such as for example water and also air to form a specific outward shape for various modes of use. The inlet and outlet valve system of the second aperture 22 is in this example an entry aperture which also includes a re-sealable valve member—not shown. Top or outer surface 17a varies in shape by having angled walls whereas the outer surface of the base wall 18 can be relatively flat and end walls 15 are substantially planar vertical walls.
The second apertures 22 includes in this example entry apertures for the inlet and outlet valve system of each receptacle 2 and includes a valve body assembly, an inflation and deflation apparatus 22c which includes a valve body assembly with its own inflation and deflation pumping system, electronic controlled solenoid and a piping system 22a (e.g. pressure piping of any kind) as shown in
The inflation and deflation apparatus 22c consists of a pressure producing pump that fills the inlet pipework to each enclosed space 19 or chamber 30, 31 along with a vacuum suction pump that vacuums or sucks the water from the outlet pipework and chamber adjoining. The inlets and outlets are controlled via computer modulation and are connected but not limited to a electronic solenoid bank. This allows for inflation and deflation to each enclosed space 19 or chamber 30, 31 systematically. Every enclosed space 19 or chamber 30, 31 will be numbered and referenced back to the digital control matrix.
After pumping some air into the receptacles 2, enclosed space 19 or chambers 30, 31, the receptacles 2 having chambers, enclosed spaces 19 or chambers 30, 31 are able to be positioned at a suitable location, whereby water is then pumped into the enclosed space 19 or chambers 30, 31 to allow the complete fluid current producing or simulating apparatus assembly 1 to be able to be lowered and positioned anywhere from the floor or bed of a body of water to the surface, to some defined position in between.
A receptacle connecting system 25 as shown in
Each receptacle 2 in this example, can include at least one distinct volume or chamber of different shapes in one plane or in several planes on top of each other. For example there can be a middle chamber 30 which is separate and consists of enclosed space 19 within which is between two outer chambers 31 each having an enclosed space 19 within which is separate and consists of enclosed space 19 being a mirror image of each other which can be inflated and deflated according to different or similar shapes and pressures but which each chamber is are separate to each other. The middle chamber 30 can be smaller, larger or the same or different in volume than the two outer chambers 31. The two outer chambers 31 can be of similar shape or not. The three distinct chambers enable each inflatable receptacle 2 to be inflated similarly and/or differently from one another and in each inflatable receptacle 2 such as the middle chamber 30 can be inflated separately to form for example the rapids mode (
There is no limit to the number, shape and configuration of enclosed spaces 19 or chambers 30, 31 in receptacles 2 to achieve different current or wave patterns. Furthermore, shapes and extent of curves, ramps, rounded edges, length of slopes, levels angles flat level areas etc of any shape features is not limited in any way.
As shown in the example
As shown in the example
As shown in
As shown in
Current Producing Apparatus 3
The current producing apparatus 3 includes a housing 40, at least one pump 41 and piping 43 (e.g. meshed) with the front being defined as facing the receptacles 2. As seen in the examples of
As shown in this example there can be at least one pump 41 or pumping system located at the back of the housing 40 functioning to draw water in from around the current producing apparatus 3 and suck water in from each end of the fluidly interconnected receptacles 2 via the main interconnected first passageways 20 e.g. pipes. The pumps 41 then deliver or push the water via the volume surrounding the submerged current producing apparatus 3 and piping 43 (e.g. meshed) and then to the front of the housing 40 and over the receptacle 2 from one end to the distal end and back again in circulation cycle.
As shown in
As shown in
The motor 51 and hydraulic pump system 52 are operatively connectable to the current producing apparatus 3 to cause the current producing apparatus 3 to work to draw fluid from around the current producing apparatus 3 and through the first passageways 20 e.g. of receptacles 2 and push the fluid flow back over the middle chamber of each receptacle 2.
In a desirable combination of a middle chamber 30 between outer chambers 31, the middle chambers 30 of each receptacle 2 having at least one enclosed space 19 therein can only be inflated to a certain level because of their relationship to the outer chamber 31.
The side walls 16 which also include first apertures 22 of the inlet and outlet valve system are for receiving fluid e.g. water, to inflate the enclosed space 19 or chambers 30, 31 of all portions of the receptacle 2 except first passageway 20 to a certain shape.
The side walls 16 which include first apertures 21 which are fluidly connected to the first passageway 20 are also positioned to aid in delivering the water back to the current producing apparatus 3 and stop or reduce eddy currents forming on the side walls 16.
Operation
The fluid current producing or simulating apparatus assembly 1 can be located in an optimum position in the pool or body of water as determined by modelling.
The pumping sequences in regards to the inflation and defilation of the individual chambers of the receptacles can be controlled by an inflation and deflation apparatus 22c which will be controlled by a computer program that will simulate potential multiple current types. The shapes and positions of the enclosed space 19 or chambers 30, 31 which will provide multiple options of current and wake shapes.
As shown in
However, in the rapids shape mode of
In
As shown in
Once the desired flow of water has started in a circuit, the pump 42 of the current producing apparatus 3 will be bought up to speed all the while a service technician maintains the pump speed and safety procedures. If a rapids mode (e.g.
There are many outer possibilities for the shapes of the top or outer surfaces 17a of the receptacle 2. Such as there being non symmetric shapes or one slope to one side. As shown in some figures, the middle chamber 30 can be peaked as in
Other modes or shapes include for example a wake boarding or skiing mode (e.g., see
In order for a pool to continue in use after lessons on the fluid current producing or simulating apparatus assembly 1 have been completed, the apparatus assembly 1 will either stay deflated (water removed) on the pool floor or be detached from each other and from the current producing apparatus 3 to then be removed.
Please reference
In one aspect the invention resides in a fluid current producing or simulating apparatus assembly 1 for a body of water wherein:
Please note this is the minimum requirement to a receptacle 2 and in this configuration a rip current simulation is created.
As shown in
First passageway 20 does not inflate and deflate. It is solely a pipe to add the flow back to the current producing apparatus 3.
Side entry ports formed as first apertures 21 eliminate eddy currents forming on side walls 16.
Each chamber 30, 31 is its own internal chamber and no chamber is interconnected but are merely mounted on the base surface 18 of the receptacle 2.
Each enclosed space 19 or chamber 30, 31 has at least a pair of inlets and outlets of the inlet and outlet valve system of second apertures 22 on and through the side of fluid current producing or simulating apparatus assembly 1 in side walls 16 which are fluidly interconnected together to the enclosed space 19 or chambers 30, 31. Other positions for these inlet and outlets i.e. second apertures 22 of the inlet and outlet valve system are also possible.
One example Assembly Method
Suction or pushing air or water in, can be provided via the inflation and deflation apparatus 22c
These steps can be altered without affecting the end result of installing and/or removing the fluid current simulation apparatus 1. For example, placing the current producing apparatus 3 in place in the pool before the receptacles 2. Or for example one can connect the receptacles 2 together before connecting to the current producing apparatus 3.
Optional Advantages
Throughout the description of this specification, the word “comprise” and variations of that word such as “comprising” and “comprises”, are not intended to exclude other additives, components, integers or steps.
The fluid current producing or simulating apparatus of the present invention can be used on any body of water which enables the assembly to work which can include an enclose body of water, or semi enclosed. The term “enclosed” can mean providing sides and/or ends to any body of water such as for example fixed or moving walls or floating walls or baffles etc. The walls need not be continuous but be enough to allow the fluid current producing or simulating apparatus assembly 1 of the present invention to work adequately to produce suitable or useful currents for training and/or enjoyment.
The number of receptacles 2 will vary depending on what area is desired to be covered to produce the desired current pattern. The size and shaped of receptacle 2 will also determine what type of current or mode is required and so will vary accordingly. In another variation, instead of a plurality of receptacles 2 there can be just one inflatable cover the whole area. When referring to ‘inflatable’ equally this word can mean ‘inflatable’ and/or ‘deflatable’ are both included in its general meaning.
The shape orientation, number and position of the first passageway 20 can be varied to suit particular current pattern requirements and cost. First passageway 20 is shown as being oval shaped but equally any cross-sectional shape is possible e.g. circular. More than one first passageway 20 of the same or different cross sections and longitudinal shape is also possible. The receptacles 2 can be of identical shape or they can be mixed depending on the type of current required. The degree of inflation for each receptacle 2 can be varied with regard to the individual middle and outer portions and also between each abutting or adjoining receptacle 2 to produce different modes or current simulation patterns. Any number and arrangement of chambers or volumes and methods of inflating or deflating either singularly separately or together, for each receptacle 2 or more than one receptacle 2 is possible.
The top wall of the receptacles 2 can be of similar shape or be different or form an overall slope from end 7 to end 8 of the area, as well as the sloping from side wall 16 to side wall 16 of each receptacle 2. Extra baffles or ribs can be placed within the enclosed space of a receptacle 2 and also protruding ribs or depressions can also be applied to the outside of each receptacle 2.
The first passageway(s) 20 are shown as being fluidly interconnected but equally the second passageways as formed as enclosed space 19 or inflatable chambers 30, 31 that are as shown as being fluidly separate, can in another option be fluidly interconnected as well with each other across each end of each chamber of each receptacle 2 for all interconnected receptacles 2. The direction of flow of the fluid can be firstly forced away from the current producing apparatus 3 to be drawing distally at the far end of the first passageway 20 way or receipt from the current producing apparatus 3, to draw back towards the current producing apparatus 3 or vice versa. The shapes of the first passageways 20, enclosed space 19, and chambers 30, 31 outer surfaces 17a, apertures or ports 21, 22 can be varied in size shape and positioning to suit requirements. For example, first passageway 20 is in the shape of a pipe or tube.
All chambers and compartments will usually be separate to allow for individual controllable inflation and deflation.
The receptacles 2 can be fabricated from a hypalon material though any other materials and combination of a malleable or flexible material are also possible. One combination example can include from the top, a coloured hypalon layer followed by a neoprene layer, followed by an adhesive primer layer or coating, followed by high density (tenacity) textile layer, followed by two neoprene layers. There can be multiple malleable options.
In terms of power options instead of the diesel motor, one can use any other suitable means such as for example an electrical power system being mains connected, solar power or use batteries. The current producing apparatus 3 can operate electrically or portably with any suitable pumps 42 that can be used with and in water, such as hydraulic or electric pumps
The at least one pump 42 in the current producing apparatus 3 and inflation and deflation apparatus 22c for pumping fluid relative to second aperture 22 in side wall 16 to inflate the enclosed space 19 or chambers 30, 31 which will also be controlled by a computer as well as having shrouds in front of the water stream exiting the pump in order to steer the water in a correct or specified direction.
As shown in
As shown in
Please note that even though the drawings do not show the shroud around the pump housing to be a mesh material in nature, the water is drawn in from all sides except the front facing the receptacles 2 where the water is forced out.
To those skilled in the art to which the invention relates, many changes in construction and widely differing embodiments and application of the invention will suggest themselves without departing from the scope of the invention as defined in the appended claims. The disclosures and the descriptions herein are purely illustrative and are not intended to be limiting.
The various embodiments described above include a number of different features, and it will be apparent to one skilled in the art that they may be combined in combinations other than those specifically described, in order to achieve the object of the invention, and without departing from the spirit and scope of the present invention. All such modifications and variations as would be apparent to persons skilled in the art fall within the broad scope and ambit of the invention.
It will also be understood that where a product, method or process as herein described or claimed and that is sold incomplete, as individual components, or as a “kit of parts”, that such exploitation will fall within the ambit of the invention.
These and other features and characteristics of the present invention, as well as the method of operation and functions of the related elements of structures and the combination of parts and economics of manufacture, will become more apparent upon consideration of the following description with reference to the accompanying drawings, all of which form part of this specification, wherein like reference numerals designate corresponding parts in the various figures.
It is acknowledged that the term ‘comprise’ may, under varying jurisdictions, be attributed with either an exclusive or an inclusive meaning. For the purpose of this specification, and unless otherwise noted, the term ‘comprise’ shall have an inclusive meaning—i.e. that it will be taken to mean an inclusion of not only the listed components it directly references, but also other non-specified components or elements. This rationale will also be used when the term ‘comprised’ or ‘comprising’ is used in relation to one or more steps in a method or process. The terms “including and having” or “having and including”, as used herein, are defined as comprising (i.e., open language).
For purposes of the description hereinafter, the terms “upper”, “up”, “lower”, “down”, “right”, “left”, “vertical”, “horizontal”, “top”, “bottom”, “lateral”, “longitudinal”, “side”, “front”, “rear” and derivatives thereof shall relate to the invention as it is oriented in the drawing figures. However, it is to be understood that the invention may assume various alternative variations, except where expressly specified to the contrary.
It is also to be understood that the specific devices illustrated in the attached drawings, and described in the following specification are simply exemplary embodiments of the invention. Hence specific dimensions and other physical characteristics related to the embodiments disclosed herein are not to be considered as limiting.
It will of course be realised that while the foregoing has been given by way of illustrative example of this invention, all such and other modifications and variations thereto as would be apparent to persons skilled in the art are deemed to fall within the broad scope and ambit of this invention as is hereinbefore described.
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750607 | Feb 2019 | NZ | national |
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