SWITCHING SYSTEM FOR EDR WATER PURIFIER WITH MULTIPLE SOLENOID VALVES
20230129450 ยท 2023-04-27
Inventors
Cpc classification
B01D61/52
PERFORMING OPERATIONS; TRANSPORTING
Y02A20/124
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
International classification
B01D61/52
PERFORMING OPERATIONS; TRANSPORTING
C02F1/469
CHEMISTRY; METALLURGY
Abstract
A switching system has two inlet ends, two outlet ends, and an EDR membrane stack. Each inlet end and each outlet end are connected to both a primary branch and a secondary branch. Solenoid valves are mounted on each primary branch and each secondary branch to switch between opening and closing. The EDR membrane stack has two inlets, two outlets, and two electrodes. One inlet is connected to the primary branch of the two inlet ends while the other is connected to the secondary branch of the two inlet ends. One outlet is connected to the primary branch of the two outlet ends while the other is connected to the secondary branch of the two outlet ends. The polarity of the two electrodes is interchangeable to realize the reverse polarity of the electrodes. The two water flows that pass through the EDR membrane stack are interchangeable.
Claims
1. A switching system for an electrodialysis reversal (EDR) water purifier with multiple solenoid valves, the switching system comprising: a first inlet end; a second inlet end; a first main inlet branch path communicating with the first inlet end; a first sub inlet branch path communicating with the first inlet end; a second main inlet branch path communicating with the second inlet end; a second sub inlet branch path communicating with the second inlet end; a first outlet end; a second outlet end; a first main outlet branch path communicating with the first outlet end; a first sub outlet branch path communicating with the first outlet end; a second main outlet branch path communicating with the second outlet end; a second sub outlet branch path communicating with the second outlet end; an EDR membrane stack having a first inlet opening; the first main inlet branch path and the second main inlet branch path connected in parallel and then communicating with the first inlet opening; a second inlet opening; the first sub inlet branch path and the second sub inlet branch path connected in parallel and then communicating with the second inlet opening; a first outlet opening; the first main outlet branch path and the second main outlet branch path connected in parallel and then communicating with the first outlet opening; a second outlet opening; the first sub outlet branch path and the second sub outlet branch path connected in parallel and then communicating with the second outlet opening; a first electrode; and a second electrode; the first electrode and the second electrode electrically connected to a positive electrode and a negative electrode respectively and interchangeably; and multiple solenoid valves respectively mounted on the first main inlet branch path, the first sub inlet branch path, the second main inlet branch path, the second sub inlet branch path, the first main outlet branch path, the first sub outlet branch path, the second main outlet branch path, and the second sub outlet branch path; each of the solenoid valves being capable of opening and closing such that two water paths flowing through the EDR membrane stack are interchangeable.
2. The switching system as claimed in claim 1, wherein the switching system has a conventional operation mode and a reversal operation mode; when the switching system is in the conventional operation mode, the solenoid valves mounted on the first main inlet branch path, the second sub inlet branch path, the first main outlet branch path, and the second sub outlet branch path are open, and the solenoid valves mounted on the first sub inlet branch path, the second main inlet branch path, the second main outlet branch path, and the first sub outlet branch path are closed; when the switching system is in the reversal operation mode, the solenoid valves mounted on the first sub inlet branch path, the second main inlet branch path, the second main outlet branch path, and the first sub outlet branch path are open, and the solenoid valves mounted on the first main inlet branch path, the second sub inlet branch path, the first main outlet branch path, and the second sub outlet branch path are closed; and when the switching system switches between the conventional operation mode and the reversal operation mode, the positive electrode and the negative electrode that are respectively connected to the first electrode and the second electrode are interchanged.
3. The switching system as claimed in claim 1, wherein the switching system has an electric control device being capable of controlling each of the solenoid valves to open or close, and being capable of controlling the positive electrode and the negative electrode that are respectively connected to the first electrode and the second electrode to interchange.
4. The switching system as claimed in claim 2, wherein the switching system has an electric control device being capable of controlling each of the solenoid valves to open or close, and being capable of controlling the positive electrode and the negative electrode that are respectively connected to the first electrode and the second electrode to interchange.
5. The switching system as claimed in claim 1, further comprising: multiple check valves mounted on the first main inlet branch path, the first sub inlet branch path, the second main inlet branch path, the second sub inlet branch path, the first main outlet branch path, the first sub outlet branch path, the second main outlet branch path, and the second sub outlet branch path; in a flowing direction of water, each of the check valves disposed subsequent to the corresponding solenoid valve in order.
6. The switching system as claimed in claim 4, further comprising: multiple check valves mounted on the first main inlet branch path, the first sub inlet branch path, the second main inlet branch path, the second sub inlet branch path, the first main outlet branch path, the first sub outlet branch path, the second main outlet branch path, and the second sub outlet branch path; in a flowing direction of water, each of the check valves disposed subsequent to the corresponding solenoid valve in order.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0011]
[0012]
[0013]
DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
[0014] With reference to
[0015] With reference to
[0016] A preferred embodiment is described as follows.
[0017] With reference to
[0018] With reference to
[0019] According to the above, by switching the flow direction of the water path between the conventional operation mode and the reversal operation mode, the two water paths on both sides of the EDR membrane stack are switched, thereby achieving the interchange of the clean water path and the high concentration water path. Further, by switching the electrodes connected to the first electrode 55 and the second electrode 56, the polarity of the electrodes of the EDR membrane stack can be reversed. Thus, the present invention effectively alleviates the generation of scale on the surface of the membrane stack, thereby extending the service life of the EDR membrane stack and the electrodes and improving the water purification efficiency of the EDR membrane stack.
[0020] Besides, the switching system has an electric control device (not shown in the drawings). The electric control device is capable of controlling opening and closing of each of the solenoid valves and switching the electrodes. Therefore, after the EDR membrane stack has run for a period of time, the electric control device can close some of the solenoid valves and opens the others and interchange the electrodes to switch between the conventional operation mode and the reversal operation mode.
[0021] Even though numerous characteristics and advantages of the present invention have been set forth in the foregoing description, together with details of the structure and features of the invention, the disclosure is illustrative only. Changes may be made in the details, especially in matters of shape, size, and arrangement of parts within the principles of the invention to the full extent indicated by the broad general meaning of the terms in which the appended claims are expressed.