The present invention relates generally to the pool cleaners for swimming pools and/or spas, and more particularly to handheld vacuum style cleaners for pools.
While modern swimming pool and/or spa facilities typically include a filtration unit containing appropriate filter media, it is often desirable to use additional devices to clean portions of the pool where solid debris, such as fine grit, silt, twigs, leaves, insects and other particulate matter accumulate notwithstanding the built in filter system.
Electric motor driven pumps for use with swimming pools and/or spas are generally known in the art, wherein a battery operated motor drives a pump or blade to pull water and impurities through a strainer, then the pump/blade and finally ejecting the liquid back into the pool.
There is a desire for an improved handheld pool vacuum cleaner in which larger items are more probably collected prior to the strainer/filter to avoid damage to the filaments in the strainer/filter.
There is a desire for an improved handheld pool vacuum cleaner with greater suction force or to process a greater volume of water in a given period of time.
There is a desire for an improved impeller for a handheld pool vacuum cleaner.
A handheld pool cleaner features an input, an output, an annular impeller and a power source to drive the annular impeller to draw pool water through the pool cleaner. The annular impeller draws water through the inside of the annulus from the input to an output, and is able to allow particles of a certain diameter to pass unobstructed (without pre-filtering). Cleaning of the pool water may occur by way of an eddy trap at the input, a strainer/filter at the output, an separate in pool filtration system into which the output may eject the water or some combination of the foregoing
The impeller is comprised of a cylinder featuring spiral veins about the inner surface. The spiral veins have a depth less than the full radius of the cylinder, so as to create an annular shape pulling water inside the impeller rather than about it. The passage within the annular impeller which is not traversed by the spinning veins facilitate passage of debris laden water through the impeller.
The input may be a simple opening in the device housing or may include a cleaning head having an input tube having a bypass, a fore receptacle about the bypass, and an fluid connection to the inner passage through the impeller. The output may include an aft receptacle having a strainer/filter bag assembly, or it may include a direct connection adapted to receive a hose to a built in pool filtration system.
In one example the input includes a bypass, baffles, or other indirect fluid connection with the impeller, and these bypass gaps, baffles or disconnections between the inlet and the outlet of the fore receptacle can be generally referred to as fluid flow disruptions. The fluid flow disruptions create an eddy trap in the fore receptacle, causing heavier, larger or denser debris to fall into or collect within the fore receptacle while other debris is able to pass through the impeller without pre filtering, and into the device outlet.
Incorporating an aft receptacle, such as a strainer/filter bag assembly, downstream of the impeller at the output is an optional improvement which may allow less wear and tear on filter bags as compared to device in which the filter bag is positioned upstream of the impeller. Debris which is too large to pass through the through passage of the impeller is impeded and does not tear the filter, whereas, due to the shape of the impeller, smaller or longer objects are unlikely to contact the blades as would be the case with externally protruding blades in the impeller.
The motor rotates to drive the high speed rotation of the impeller, and gears may be used to ensure the operating frequency of the impeller is within an appropriate operating range as compared to the actual frequency of the motor. The centrifugal and displacement forces generated in the high-speed rotation of the impeller creates suction to draw sewage water into the input, through the eddy trap/fore receptacle (if provided), through the annular impeller, and out the output which could be an aft receptacle, a bypass valve or a direct connection to the built in pool filtration system. Heavier debris tends to accumulate in the eddy trap (if provided), so as to be less likely to damage the filaments in the filter bag or impact the impeller.
The input from the cleaning head through the fore receptacle to the impeller need not be in perfect fluid communication with the impeller. Gaps or open slates around the primary intake nozzle temporarily agitate the flow and redirect larger objects from the impeller, which may creating an improved eddy trap for large debris in a handheld pool cleaner. The inlet to the fore receptacle may be directed towards a baffle, which the outlet from the fore receptacle may be positioned at a different angle so as to improve the eddy trap effect.
A combination of an eddy trap upstream of the impeller and a strainer/filter bag assembly downstream of the annular impeller may serve to protect the strainer/filter bag assembly from damage potentially caused by larger or heavy debris which is caught in the eddy trap. A cylinder/annular shaped impeller featuring veins on the inner surface of cylinder (rather than radial from the centre) may improve flow through the device as compared to prior art devices.
Preferably, the motor and power supply for the device is sealed from the impeller and fore and aft receptacle, so as to prevent water from corroding or damaging the motor and power supply. A small engine may also be used to drive the impeller, without departing from the inventive aspects related to the locations of the various debris receptacles, impeller and filter.
The impeller duct shape, with internal spiral blades, provides additional benefit in that debris is less likely to strict the blades than in traditional axle driven designs.
In one example, the body of the device comprises an outer cover and an inner cover, the outer cover and inner cover defining an outer cavity which may be referred to as the motor cavity wherein a drive shaft for the motor and gears are to be located, and an inner cover defining an inner cavity which may be referred to as the suction cavity wherein the impeller rotates.
In one example, the input detachably attaches to the body in front of the impeller. Where the input includes a fore receptacle, an output of the fore receptacle is in fluid communication with the impeller and the inlet tube of the fore receptacle is available to draw fluids into the device, but otherwise the fore receptacle has a water tight seal to the body of the device. In such a pool cleaner, the fore receptacle can be fully removed for cleaning and to empty collected debris. In another example of the pool cleaner, the input may include a fore receptacle which is fully attached to the device, but contains a door which may be opened to allow debris to be cleared from the eddy trap in the fore receptacle.
In another pool cleaner, the output comprises an aft receptacle with a strainer or cage within a removable filter bag, which strainer/filter bag assembly detachably attaches to the body in back of the impeller. An input of the aft receptacle is in fluid communication with the impeller and outlets from the aft receptacle and the filter are available to permit discharge of water from the device. In such an embodiment, the aft receptacle and filter can be fully removed for cleaning and to empty collected debris and replacement of the filter bag (if necessary). In another embodiment, the aft receptacle is attached, but contains a door which may be opened to allow the filter to be removed and debris to be cleared from the filter before replacing it in the aft receptacle. A bypass valve may be provided should the aft receptacle fill or all outputs become clogged, and an attachment to permit direct connection to an external or built in pool filtration system may be provided
Certain embodiments of the present invention will now be described in greater detail with reference to the accompanying drawings.
As shown in
The sewage/debris water leaving the impeller 200 flows into aft receptacle 303 about which the filter bag 302 is to be fitted. Aft receptacle 303 is plastic cage portions 301 defining openings 304 to strain larger material from the water before it exits into the filter bag 302 and is returned to the pool or spa. The aft receptacle 303 detachably attaches to the body of the device at output cap 400 by means of a snap, threaded or other connection.
As shown in
Waste water pulled through the impeller 30 is expelled into a aft receptacle 50 (as indicated in
In prototyping, an impeller having total diameter of approximately 49 mm has one helical internally disposed blade which protrudes to within approximately 7 mm of the centre axis of the impeller (total diameter of the through bore when seen from the front is approximately 14 mm). Due to the helical shape of the blade, the impeller allows unobstructed passage of hard rubbish with a maximum diameter of approximately 2 cm, twigs smaller than approximately 10 cm by 0.5 cm, and leaves or flower heads smaller than approximately 20 cm by 8 cm or 15 cm by 15 cm. As tested, with the impeller operating at speeds of about 1000 r/min, through put of approximately 37 liters per minute was possible.
Larger impellers, and veins of larger or smaller relative size may be used, within the scope of handheld pool cleaners, without departing from the purposes herein disclosed.
The foregoing embodiments and advantages are merely exemplary and are not to be construed as limiting the present invention. The present teaching can be readily applied to other types of apparatuses. Also, the description of the embodiments of the present invention is intended to be illustrative, and not to limit the scope of the claims, and many alternatives, modifications, and variations will be apparent to those skilled in the art.
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