Whirlpool bath with descaling function
10537210 ยท 2020-01-21
Inventors
Cpc classification
A61H33/0087
HUMAN NECESSITIES
A61H33/028
HUMAN NECESSITIES
A61H2033/0037
HUMAN NECESSITIES
International classification
B08B9/032
PERFORMING OPERATIONS; TRANSPORTING
A61H33/00
HUMAN NECESSITIES
Abstract
A whirlpool bath with descaling function is provided. The whirlpool bath 1 comprises a bathtub body 10 including a bathtub 11, suction port 20 sucking the water contained in the bathtub 11, first jet nozzles 30 jetting bubble water into the bathtub 11, a circulation pipe 40 including a water supply pipe 41 and a return pipe 42, a pump 50 installed in the circulation pipe 40, a bypass pipe 60 branched from the water supply pipe 41 and connected to the return pipe 42 to directly return the water in the water supply pipe 41 to the pump, and a second jet nozzle 70 mixing air with water passing through the bypass pipe 60 to generate and jet bubble water. The scale of the circulation pipe 40, the pump 50 and the bypass pipe 60 is removed by bubble water generated by the second jet nozzle 70.
Claims
1. A whirlpool bath with descaling function, comprising: a bathtub body 10 including a bathtub 11; a suction port 20 sucking the water contained in said bathtub 11; first jet nozzles 30 jetting bubble water into said bathtub 11; a circulation pipe 40 including a water supply pipe and a return pipe 42, wherein said water supply pipe 41 is connected to said first jet nozzles 30 and supplies water to said first jet nozzles 30, and said return pipe 42 is connected to said suction port 20 and returns water in said bathtub 11; a pump 50 installed in said circulation pipe 40 to provide a water pressure for sucking the water in said bathtub 11 through said suction port 20 and for jetting bubble water through said first jet nozzles 30; a bypass pipe 60 branched from said water supply pipe 41 and connected to said return pipe 42 to directly return the water introduced into said water supply pipe 41 to said pump 50 through said return pipe 42; and a second jet nozzle 70 installed in said bypass pipe 60 and mixing air with water passing through said bypass pipe 60 to generate and jet bubble water, wherein the scale of said circulation pipe 40, said pump 50 and said bypass pipe 60 is removed by bubble water generated by said second jet nozzle 70.
2. The whirlpool bath with descaling function according to claim 1, wherein said second jet nozzle 70 comprise: a bypass pipe connect part 71 connected to said bypass pipe 60 and receiving water from said bypass pipe 60; a mixing part 72 formed in the downstream of said bypass pipe connect part 71, wherein water and air are mixed to generate bubble water; a nozzle part 73 connected to said mixing part 72 and having a nozzle 73a for jetting bubble water into said return pipe 42 or said bypass pipe 60; a Venturi part 74 formed between said bypass pipe connect part 71 and said mixing part 72; and an intake part 75 formed in communication with said mixing part 72 and supplying external air to said mixing part 72 by a negative pressure generated by the action of said Venturi part 74.
3. The whirlpool bath with descaling function according to claim 2, wherein said second jet nozzle 70 comprises a check valve 76 installed in said intake part 75 for blocking water from flowing backward through said intake part 75.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1)
(2)
(3)
(4)
(5)
(6)
DETAILED DESCRIPTION
(7) Hereinafter, a whirlpool bath according to the present invention will be described with reference to the accompanying drawings. A detailed example given below just exemplarily describe the present invention and does not restrict the present invention.
(8) As illustrated in
(9) The bathtub body 10 includes a bathtub 11.
(10) The suction port 20 sucks the water contained in the bathtub 11.
(11) The first jet nozzles 30 jet bubble water into the bathtub 11.
(12) The circulation pipe 40 includes a water supply pipe 41 and a return pipe 42.
(13) The water supply pipe 41 is connected to the first jet nozzles 30. The water supply pipe 41 supplies water to the first jet nozzles 30. The return pipe 42 is connected to the suction port 20. The return pipe 42 returns water in the bathtub 11 to the pump 50.
(14) The pump 50 is installed in the circulation pipe 40. The pump 50 provides a water pressure for sucking the water in the bathtub 11 through the suction port 20 and for jetting bubble water through the first jet nozzles 30.
(15) In the whirlpool bath 1 of the present invention, the water contained in the bathtub 11 is sucked into the suction port 20 and sends to the pump 50 through the return pipe 42, and the water pumped by the pump 50 is again jetted into the bathtub 11 through the first jet nozzles 30 formed at ends of the water supply pipe 41 via the water supply pipe 41. In the first jet nozzles 30, water supplied from the water supply pipe 41 and air from the outside are mixed to generate bubble water, and the bubble water is jetted into the bathtub 11. Although it is preferable to jet the bubble water through the first jet nozzles 30, the case where water is jetted is not excluded.
(16) According to a feature of the present invention, the whirlpool bath 1 includes a bypass pipe 60 and a second jet nozzle 70. That is, the whirlpool bath 1 of the present invention comprises a descaling device 2 including the bypass pipe 60 and the second jet nozzle 70.
(17) The bypass pipe 60 is a pipe branched from the water supply pipe 41 and it is connected to the return pipe 42. The water flowing into the bypass pipe 60 from the water supply pipe 41 is returned to the pump 50 through the return pipe 42 without passing through the bathtub 11.
(18) The second jet nozzle 70 is a nozzle for generating bubble water by mixing air with water passing through the bypass pipe 60. The second jet nozzle 70 is installed in the bypass pipe. The second jet nozzle 70 jets the bubble water to the bypass pipe 60 or the return pipe 42.
(19) The bubble water generated by the second jet nozzle 70 suppresses generation of scale in the return pipe 42, the pump 50, the water supply pipe 41 and the bypass pipe 60 involved in the circulation of the water and piped to the downstream of the second jet nozzle 70, and the bubble water removes the scale already generated in the pipes, by the known cleaning action of the bubble water.
(20) Namely, since the bypass pipe 60 branched from the water supply pipe 41 is piped to the return pipe 42 and the second jet nozzle 70 is provided to the bypass pipe 60, high pressure bubble water is jetted into the return pipe 42. The bubble water jetted to the return pipe 42 passes through the return pipe 42, the pump 50, the water supply pipe 41 and the bypass pipe 60 in order, thereby the scale generated in the pipes is cleaned and scale formation in the pipes is suppressed.
(21) The first jet nozzles 30 are not particularly limited as long as they can mix the air and water supplied through the water supply pipe 41 to generate bubble water and jet the bubble water into the bathtub 11.
(22) As illustrated in
(23) The water supply pipe connect part 31 is connected to the water supply pipe 41. The water supply pipe connect part 31 receives water from the water supply pipe 41.
(24) The mixing part 32 is formed in the downstream of the water supply pipe connect part 31, wherein water and air are mixed to generate bubble water.
(25) The nozzle part 33 is connected to the mixing part 32. The nozzle part 33 has a nozzle 33a for jetting bubble water into the bathtub 11.
(26) The Venturi part 34 is formed between the water supply pipe connect part 31 and the mixing part 32, and has a narrow diameter.
(27) The intake part 35 is formed in communication with the mixing part 32. The intake part 35 supplies external air to the mixing part 32 by a negative pressure generated by the action of the Venturi part 34.
(28) When the water supplied from the water supply pipe 41 flows from the water supply pipe connect part 31 to the mixing part 32 via the Venturi part 34, a negative pressure is generated by the flow velocity increase in the Venturi part 34. Thereby, outside air is introduced into the mixing part 32 through the intake part 35. In the mixing part 32, bubble water mixed with water and air is generated, and the bubble water is jetted into the bathtub 11 though a nozzle 33a of the nozzle part 33.
(29) A check valve 36 may be provided in the intake part 35 to prevent water from flowing backward to the outside through the intake part 35. The check valve 36 applicable to the first jet nozzle 30 is not limited as long as it is a valve that can prevent water from flowing backward through the intake part 35. For example, the check valve 36 such as a thin film type check valve 76 applied to the second jet nozzle 70 described later can be applied.
(30) The second jet nozzle 70 is substantially the same as the first jet nozzle 30 in that air is mixed with water to generate and jet bubble water.
(31) As illustrated in
(32) The second jet nozzle 70 is not particularly limited as long as it is a structure capable of mixing air with water passing through the bypass pipe 60 to generate bubble water and jet it.
(33) Since the scale removing action of the bubble water jetted by the second jet nozzle 70 occurs at a position downstream of the point where the second jet nozzle 70 is installed, preferably, the bypass pipe 60 is connected to the return pipe 42 at a location adjacent to the suction port 20 as possible.
(34) The installation position of the second jet nozzle 70 in the bypass pipe 60 is not particularly limited as long as it can supply the bubble water to the return pipe 42.
(35) In the embodiment illustrated in
(36) As illustrated in
(37) The bypass pipe connect part 71 is connected to the bypass pipe 60. The bypass pipe connect part 71 receives water from the bypass pipe 60.
(38) The mixing part 72 is formed in the downstream of the bypass pipe connect part 71, wherein water and air are mixed to generate bubble water.
(39) The nozzle part 73 is connected to the mixing part 72. The nozzle part 73 has a nozzle 73a for jetting bubble water into the return pipe 42 or the bypass pipe 60.
(40) The Venturi part 74 is formed between the bypass pipe connect part 71 and the mixing part 72, and it has a narrow diameter.
(41) The intake part 75 is formed in communication with the mixing part 72. The intake part 75 supplies external air to the mixing part 72 by a negative pressure generated by the action of the Venturi part 74.
(42) In the embodiment illustrated in
(43) According to the second jet nozzle 70, when the water supplied from the water supply pipe 41 flows from the bypass pipe connect part 71 to the mixing part 72 via the Venturi part 74, a negative pressure is generated by the flow velocity increase in the Venturi part 74 s, thereby, outside air is introduced into the mixing part 72 through the intake part 75. In the mixing part 72, bubble water mixed with water and air is generated, and the bubble water is jetted into the return pipe 42 or the bypass pipe 60.
(44) The water jetted into the return pipe 42 by the second jet nozzle 70 passes the return pipe 42, the pump 50, the water supply pipe 41 and the bypass pipe 60 in order, thereby the scale generated in the pipes is cleaned and scale formation in the pipes is suppressed.
(45) A check valve 76 may be provided in the intake part 75 to prevent water from flowing backward to the outside through the intake part 75.
(46) As illustrated in
(47) A check valve 76 may include a valve chamber 77 and a thin plate valve 78. The check valve 76 may be mounted on the valve mounting groove 75a.
(48) The valve chamber 77 is tightly fitted to the valve mounting groove 75a. The valve chamber 77 includes an insert hole 77a and air paths 77b. The insert hole 77a is formed at the center and the air paths 77b are formed around the insert hole 77a. The air paths 77b allow the mixing part 72 to communicate with the outside via the intake passage 75b.
(49) The thin plate valve 78 may include an insert rod part 78a and a flexible thin plate part 78b. The insert rod part 78a is inserted and fixed to the insert hole 77a. The flexible thin plate part 78b is formed at the lower end of the insert rod part 78a to selectively cover the air path 77b.
(50) According to the action of the check valve 76 as described above, the inflow of air into the mixing part 72 from the outside through the air path 77b is allowed by the fact that the thin plate part 78b of the thin plate valve 78 is displaced downward and that the air path 77b is opened (dotted line in
(51) Therefore, the air is supplied to the mixing part 72 through the check valve 76 by the negative pressure generated in the Venturi part 74, but the water in the mixing part 72 cannot flow backward to the outside due to the action of the check valve 76.
(52) As illustrated in
(53) Reference numeral 80 in