Mineralization waterway system and mineral spring mineralization water purifier
By designing a mineralized water system, using series switching pipelines and suppressing filter cartridges to control the direction of water flow, the problem of excessive mineral release from the mineralized filter cartridges in water purifiers is solved, achieving healthy mineralization of water quality.
Patent Information
- Application Number
- CN202423148305.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-19
- Publication Date
- 2025-12-30
- Estimated Expiration
- 2034-12-19
AI Technical Summary
Existing water purifiers release excessive amounts of minerals into the water after passing through mineralization filters, which can negatively impact human health.
A mineralized water system is designed to control the direction of water flow by switching pipelines and suppressing filter cartridges in series. This allows water containing suppressing substances to flow through the mineralized filter cartridges, inhibiting the release of minerals and reducing the mineral content in the water.
Effectively control the mineral content in water within a safe range to meet the mineral needs of different users and ensure the health of drinking water.
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Figure CN223737797U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to water purification technical field especially, relate to a kind of mineralized water road system and including the mineralized water road system of mineral spring mineralization water purifier. BACKGROUND
[0002] People's demand for drinking water is higher and higher, the problem caused by environmental pollution, pipeline pollution etc., lead to municipal tap water is difficult to meet the requirement of resident direct drinking. Therefore, currently in many residential areas and rural areas are installed commercial water station or household water purification equipment, for the purification treatment of municipal tap water, for people to use.
[0003] Currently commercial water station and household water purification equipment mostly adopt RO reverse osmosis technology, reverse osmosis membrane aperture is small, interception rate is high, can intercept more than 0.0001 micron material, including harmful heavy metal ions, microorganism, antibiotic etc., also including beneficial mineral matter etc. Therefore lack the mineral matter required by human body, long-term drinking produces adverse effect on human body, harm human health. Therefore, the product is applied by mineralization filter element to mineralize the water after purification. However, due to the design defect, currently this product can exist the condition that mineral release amount is too high, thereby leading to drinking water to human body health. SUMMARY
[0004] The utility model provides a kind of mineralized water road system and mineral spring mineralization water purifier, to solve the technical problem that mineral content in water body provided by water purifier is too high.
[0005] According to the first aspect of the utility model, a kind of mineralized water road system is provided in an embodiment, including first pipe line, second pipe line, mineralization filter element and inhibition filter element;
[0006] The first pipe line and the second pipe line are connected in parallel, the mineralization filter element is connected to the first pipe line, and the inhibition filter element is connected to the second pipe line;
[0007] The mineralized water road system further includes a series switching pipe line for connecting the inhibition filter element and the mineralization filter element, the output end of the series switching pipe line is connected to the first pipe line or the mineralization filter element, the input end of the series switching pipe line is connected to the second pipe line or the inhibition filter element, and the series switching pipe line is provided with a valve body.
[0008] In an embodiment, the valve body is a switch valve or a one-way valve.
[0009] In an embodiment, the mineralized water road system further includes a first control valve, the first control valve is arranged in the first pipe line and located at the upstream end of the mineralization filter element, and the first control valve is used to control the on-off of the first pipe line.
[0010] The output end of the series switching pipeline is connected between the first control valve and the mineralization filter element.
[0011] In one embodiment, the mineralization water pipeline system further comprises a second control valve, which is arranged in the second pipeline and located at the downstream end of the inhibition filter element, and is used to control the opening and closing of the second pipeline.
[0012] The input end of the series switching pipeline is connected between the inhibition filter element and the second control valve.
[0013] In one embodiment, the mineralization water pipeline system further comprises a backflow pipeline and a third control valve.
[0014] The input end of the backflow pipeline is connected to the downstream end of the mineralization filter element, the output end of the backflow pipeline is connected to the upstream end of the inhibition filter element, and the third control valve is arranged in the backflow pipeline.
[0015] In one embodiment, the mineralization water pipeline system further comprises a fourth control valve, which is arranged at the downstream end of the mineralization filter element.
[0016] In one embodiment, the mineralization water pipeline system further comprises a water inlet pipeline and a water outlet pipeline, and the first pipeline and the second pipeline are connected in parallel between the water inlet pipeline and the water outlet pipeline.
[0017] In one embodiment, the mineralization filter element comprises a zinc-containing filter material, and the inhibition filter element comprises an alkaline filter material.
[0018] In one embodiment, the mineralization filter element comprises zincite or hydrozincite, and the inhibition filter element comprises magnesite, brucite, sepiolite or calcite.
[0019] According to the second aspect of the present application, in one embodiment, a mineral spring mineralization water purifier is provided, which comprises the mineralization water pipeline system of the first aspect.
[0020] According to the mineralization water pipeline system and the mineral spring mineralization water purifier of the above embodiments, by arranging the series switching pipeline for connecting the inhibition filter element and the mineralization filter element in series, and connecting the output end of the series switching pipeline to the first pipeline or the mineralization filter element, and connecting the input end of the series switching pipeline to the second pipeline or the inhibition filter element, a water pipeline is formed, in which the inhibition filter element is located upstream and the mineralization filter element is located downstream, and the water containing the inhibition substance flows through the mineralization filter element. When the inhibition substance flows through the mineralization filter element, the release of mineral substances from the mineralization filter element can be inhibited. Therefore, by arranging the series switching pipeline, the water containing the inhibition substance can enter the mineralization filter element, and the release of mineral substances from the mineralization filter element can be inhibited, so that the situation of excessive content of mineral substances in the water can be prevented. BRIEF DESCRIPTION OF DRAWINGS
[0021] In order to more clearly illustrate the technical solutions of the embodiments of the present application or the prior art, the following will briefly introduce the drawings needed to be used in the embodiments or the prior art description. Obviously, the drawings described below are only some embodiments of the present application, and for those skilled in the art, other drawings can also be obtained according to the structures shown in these drawings without creative labor.
[0022] Figure 1 is a structural schematic diagram of the mineralized water system provided by the first embodiment of the present application;
[0023] Figure 2 is a water flow direction diagram of the mineralized water system provided by the first embodiment of the present application when the first pipeline and the second pipeline simultaneously discharge water;
[0024] Figure 3 is a water flow direction diagram of the mineralized water system provided by the first embodiment of the present application when the first pipeline alone discharges water;
[0025] Figure 4 is a water flow direction diagram of the mineralized water system provided by the first embodiment of the present application when the mineralized filter core is in a soaking state;
[0026] Figure 5 is a structural schematic diagram of the mineralized water system provided by the second embodiment of the present application;
[0027] Figure 6 is a water flow direction diagram of the mineralized water system provided by the second embodiment of the present application when the mineralized filter core is in a soaking state and the water body containing high-concentration minerals flows in the reflux pipeline;
[0028] Figure 7 is a water flow direction diagram of the mineralized water system provided by the second embodiment of the present application when the mineralized filter core is in a soaking state and the water body containing high-concentration minerals is discharged;
[0029] Figure 8 is a water flow direction diagram of the mineralized water system provided by the second embodiment of the present application when the first pipeline and the second pipeline simultaneously discharge water.
[0030] Explanation of reference numerals:
[0031] 100, mineralized water system; 10, first pipeline; 20, second pipeline; 30, mineralized filter core; 40, suppression filter core; 50, water inlet pipeline; 60, water outlet pipeline; 70, series switching pipeline; 81, valve body; 82, first control valve; 83, second control valve; 84, third control valve; 85, fourth control valve; 90, reflux pipeline.
[0032] The purposes, functional features and advantages of the utility model will be further explained in combination with embodiments with reference to the drawings. DETAILED DESCRIPTION
[0033] The technical solutions in the embodiments of the utility model will be clearly and completely described in combination with the drawings in the embodiments of the utility model. Obviously, the described embodiments are only part of the embodiments of the utility model, rather than all the embodiments. Based on the embodiments in the utility model, all other embodiments obtained by those skilled in the art without creative labor fall within the protection scope of the utility model.
[0034] It should be noted that all the directional indications (such as up, down, left, right, front, back, etc.) in the embodiments of the utility model are only used to explain the relative position relationship, movement condition, etc. between components in a certain specific posture, and if the specific posture changes, the directional indications also change accordingly.
[0035] It should also be noted that when an element is referred to as being "fixed to" or "set on" another element, it can be directly on the other element or can have a middle element simultaneously. When an element is referred to as being "connected" to another element, it can be directly connected to the other element or can have a middle element simultaneously.
[0036] In addition, the description of "first", "second" and the like in the utility model is only for the purpose of description, and cannot be understood as indicating or implying the relative importance of the indicated technical features or implicitly indicating the number of the indicated technical features. Therefore, the features limited by "first", "second" can explicitly or implicitly include at least one of the features. In addition, the technical solutions of each embodiment can be combined with each other, but it must be based on the realization of those skilled in the art, and when the combination of technical solutions appears contradictory or unachievable, it should be considered that the combination of technical solutions does not exist, and is not within the protection scope required by the utility model.
[0037] The reverse osmosis membrane filtration technology used by the water purification equipment can filter all substances in water, and the pure water without any beneficial elements is not healthy good water in a certain sense, and does not meet the latest concept of healthy good water. Therefore, the product application of mineralizing the purified water through the mineralization filter element is born. However, in the related art, the release amount of mineral substances may be too high.
[0038] In view of this, the utility model provides a mineralized water system and a mineral spring mineralization water purifier, which can reduce the release amount (dissolution amount) of mineral substances when needed, so as to prevent the occurrence of the case that the content of mineral substances in water is too high.
[0039] Embodiment one:
[0040] As Figure 1 shown in the mineralized water system 100 provided by the embodiments of the present application, which comprises a first pipeline 10, a second pipeline 20, a mineralization filter core 30 and an inhibition filter core 40. The mineralization filter core 30 is connected to the first pipeline 10, and the inhibition filter core 40 is connected to the second pipeline 20.
[0041] The mineralization filter core 30 can release (dissolve) mineral substances into the water flowing therethrough, so that the water contains mineral substances, to meet the requirement of people for mineralized drinking water. The inhibition filter core 40 can release inhibition substances into the water flowing therethrough, so that when the water containing the inhibition substances flows through the mineralization filter core 30, the release of the mineral substances from the mineralization filter core 30 can be inhibited, thereby avoiding the case that the content of the mineral substances in the water is too high.
[0042] By connecting the mineralization filter core 30 to the first pipeline 10, the water output from the first pipeline 10 contains mineral substances. By connecting the inhibition filter core 40 to the second pipeline 20, the water output from the second pipeline 20 contains inhibition substances, which are used to inhibit the dissolution of the mineral substances in the mineralization filter core 30.
[0043] In an embodiment, the first pipeline 10 and the second pipeline 20 are arranged in parallel. In this way, the water containing mineral substances in the first pipeline 10 and the water containing inhibition substances in the second pipeline 20 can be mixed and then discharged. Moreover, the on-off of the first pipeline 10 and the second pipeline 20 can be controlled by a valve or the like, so that the first pipeline 10 and the second pipeline 20 arranged in parallel can independently output water, i.e. the water in the first pipeline 10 and the water in the second pipeline 20 are discharged separately. People can obtain the water containing mineral substances from the first pipeline 10 or the water containing inhibition substances from the second pipeline 20 according to the requirement. In this way, different requirements of people for drinking water can be met.
[0044] Please refer to Figure 1 , the mineralized water system 100 further comprises a water inlet pipeline 50 and a water outlet pipeline 60, and the first pipeline 10 and the second pipeline 20 are connected in parallel between the water inlet pipeline 50 and the water outlet pipeline 60. In this way, the parallel arrangement of the first pipeline 10 and the second pipeline 20 is realized. The water inlet pipeline 50 can be connected to the first pipeline 10 and the second pipeline 20 through a three-way valve or a flow divider, and the first pipeline 10 and the second pipeline 20 can be connected to the water outlet pipeline 60 through the three-way valve. When the first pipeline 10 and the second pipeline 20 output water at the same time, the water output from the first pipeline 10 and the second pipeline 20 can be mixed and then discharged through the water outlet pipeline 60.
[0045] Please refer to Figure 1The mineralized water system 100 further comprises a series switching pipeline 70 for connecting the inhibiting filter 40 and the mineralizing filter 30 in series, the output end of the series switching pipeline 70 is connected to the first pipeline 10 or the mineralizing filter 30, and the input end of the series switching pipeline 70 is connected to the second pipeline 20 or the inhibiting filter 40. In this way, the inhibiting filter 40 is located upstream and the mineralizing filter 30 is located downstream, and the water containing the inhibiting substance flows through the mineralizing filter 30.
[0046] In a specific implementation, to prevent the content of the mineral in the water from being too high, the water containing the inhibiting substance can flow through the mineralizing filter 30 through the series switching pipeline 70 to inhibit the mineralizing filter 30 from releasing the mineral, so as to reduce the content of the mineral in the water. Specifically, when the mineralizing filter 30 is in a soaking state, for example, when the water flow rate in the first pipeline 10 is too slow, the water stops flowing, or the water stops flowing for a set time period, the content of the mineral in the water (especially in the mineralizing filter 30) can be too high. The water containing the inhibiting substance enters the mineralizing filter 30 through the series switching pipeline 70, so as to inhibit the mineralizing filter 30 in the soaking state from releasing the mineral, thereby preventing the content of the mineral in the water from being too high. The soaking state in the embodiment refers to a case where the flow rate in the filter is less than a design threshold, including a case where the water stops flowing or the flow rate is slow.
[0047] Referring to Figure 1 The series switching pipeline 70 is provided with a valve body 81. The valve body 81 has a water flow passable state and a water flow impassable state. In a specific application, the valve body 81 can also be a flow valve. By providing the valve body 81 on the series switching pipeline 70, it can be controlled whether the water flow can pass through the series switching pipeline 70 from the inhibiting filter 40 to the mineralizing filter 30. For example, when the mineralizing filter 30 is in a soaking state, the valve body 81 can be in a water flow passable state, so that the water flow can pass through the series switching pipeline 70 from the inhibiting filter 40 to the mineralizing filter 30, thereby inhibiting the mineralizing filter 30 from releasing the mineral, so as to reduce the content of the mineral in the water, prevent the content of the mineral from exceeding a set standard, and control the content of the mineral within a safe standard range. When the water flow rate in the first pipeline 10 exceeds a set flow rate, the concentration of the mineralizing substance in the water flowing through the mineralizing filter 30 will not exceed the set standard, and the content of the mineral in the water does not need to be reduced, so that the valve body 81 can be in a water flow impassable state.
[0048] Referring to Figure 1The mineralized water system 100 further comprises a first control valve 82, which is arranged in the first pipe 10 and located at the upstream end of the mineralization filter 30. The first control valve 82 is used to control the on-off or / and flow rate of the first pipe 10. By controlling the opening or closing of the first control valve 82, it can be determined whether the water is delivered to the mineralization filter 30. By controlling the flow rate of the first pipe 10 through the first control valve 82, the amount of mineral substance released by the mineralization filter 30 into the water per unit volume can be controlled. Specifically, when the flow rate of the water in the first pipe 10 is greater than the set flow rate, the content of the mineral substance in the water per unit volume will decrease, and when the flow rate of the water in the first pipe 10 is lower than the set flow rate, the content of the mineral substance in the water per unit volume will increase. Therefore, the flow rate of the first pipe 10 can be adjusted through the first control valve 82, and thus the content of the mineral substance in the water of the first pipe 10 can be adjusted.
[0049] The output end of the series switching pipe 70 is connected between the first control valve 82 and the mineralization filter 30. In this way, the output end of the series switching pipe 70 is connected to the upstream end of the mineralization filter 30, and the water in the series switching pipe 70 can flow to the mineralization filter 30.
[0050] Please refer to Figure 1 The mineralized water system 100 further comprises a second control valve 83, which is arranged in the second pipe 20 and located at the downstream end of the inhibition filter 40. The second control valve 83 is used to control the on-off or / and flow rate of the second pipe 20. The input end of the series switching pipe 70 is connected between the inhibition filter 40 and the second control valve 83. In this way, the input end of the series switching pipe 70 is connected to the downstream end of the inhibition filter 40. When the second control valve 83 is closed and the valve body 81 is opened, the water containing the inhibition substance can flow to the series switching pipe 70, and then flow to the mineralization filter 30.
[0051] In an embodiment, the valve body 81 is a switch valve. By controlling the opening or closing of the switch valve, the connection and disconnection of the series switching pipe 70 can be controlled. In combination with the opening or closing state of the first control valve 82 and the second control valve 83, the mineralized water system 100 can meet different needs.
[0052] For example, as shown in Figure 2 When the water in the first pipe 10 and the second pipe 20 needs to be discharged at the same time, the first control valve 82 and the second control valve 83 can be controlled to be opened, and the switch valve is closed. At this time, the series switching pipe 70 is disconnected, and the first pipe 10 and the second pipe 20 are in a parallel state. The water containing the mineral substance in the first pipe 10 and the water containing the inhibition substance in the second pipe 20 can be mixed in the water outlet pipe 60 and then discharged. As shown in Figure 3As shown, when the first pipeline 10 needs to discharge water alone, the first control valve 82 can be controlled to open, and the switch valve and the second control valve 83 can be controlled to close. At this time, the first pipeline 10 is connected, and the second pipeline 20 and the series switching pipeline 70 are disconnected. The water containing mineral substances in the first pipeline 10 can be discharged through the water outlet pipeline 60. Figure 4 As shown, when the mineralization filter element 30 is in the soaking state, the first control valve 82 and the second control valve 83 can be controlled to close, and the switch valve can be controlled to open. At this time, the mineralization filter element 30 and the inhibition filter element 40 are connected through the series switching pipeline 70, and the water containing inhibition substances can flow to the mineralization filter element 30 through the series switching pipeline 70.
[0053] It can be understood that in other embodiments, the valve body 81 can also be a one-way valve. In particular, when the first pipeline 10 and the second pipeline 20 need to discharge water at the same time or the second pipeline 20 needs to discharge water alone, the second control valve 83 is opened. At this time, the resistance of the water flowing through the inhibition filter element 40 along the second pipeline 20 to the second control valve 83 is smaller than the resistance of the water flowing through the series switching pipeline 70 to the one-way valve. Therefore, the water flowing through the inhibition filter element 40 will not flow to the mineralization filter element 30 through the one-way valve (valve body 81) along the series switching pipeline 70, but will flow to the water outlet pipeline 60 along the second pipeline 20. When the mineralization filter element 30 is in the soaking state, the second control valve 83 is closed, and the water flowing through the inhibition filter element 40 cannot flow to the water outlet pipeline 60 along the second pipeline 20. Therefore, the water flows to the mineralization filter element 30 through the one-way valve (valve body 81) along the series switching pipeline 70, so as to inhibit the mineralization filter element 30 from releasing mineral substances.
[0054] As shown in Figure 1 and Figure 4 , the mineralization water pipeline system 100 further comprises a fourth control valve 85 arranged at the downstream end of the mineralization filter element 30. In an embodiment, the fourth control valve 85 can be arranged at the water outlet pipeline 60. In particular, when the mineralization filter element 30 is in the soaking state, the switch valve and the fourth control valve 85 can be controlled to open. The water containing high-concentration mineral substances in the mineralization filter element 30 can be discharged, and the water containing inhibition substances can flow into the mineralization filter element 30. The water containing inhibition substances can fill the mineralization filter element 30, and the mineralization filter element 30 can be soaked by the water containing inhibition substances. The water containing high-concentration mineral substances in the mineralization filter element 30 can be discharged to the waste water pipeline.
[0055] In an embodiment, the mineralization water pipeline system 100 further comprises a controller (not shown in the figure). The first control valve 82, the second control valve 83, the fourth control valve 85, and the switch valve are electrically connected to the controller. The controller is used to control the opening and closing of the first control valve 82, the second control valve 83, the fourth control valve 85, and the switch valve.
[0056] In one embodiment, the first control valve 82, the second control valve 83, the fourth control valve 85 and the switch valve are all solenoid valves. Of course, in other embodiments, the first control valve 82, the second control valve 83, the fourth control valve 85 and the switch valve can also be other valves.
[0057] In one embodiment, the mineralization water system 100 further comprises a TDS detector (Total dissolved solids) connected to the water outlet pipe 60 for detecting the TDS value of the water flow.
[0058] In one embodiment, the controller is electrically connected with the TDS detector, and the TDS detector can transmit the obtained TDS value to the controller, and the controller controls the opening or closing of the valve body 81 and the control valves according to the TDS value.
[0059] In one embodiment, the mineralization filter core 30 comprises zinc-containing filter material, and the inhibition filter core 40 comprises alkaline filter material. Zinc is a trace element that plays a vital role in the human body, exists in more than 200 enzymes, participates in the synthesis of nucleic acids, proteins and carbohydrates, and the absorption and utilization of vitamin A. Zinc is indispensable for cell replication, immune activity, tissue repair and growth, and is a key element for growth and development, reproductive genetics, the immune system and bone metabolism. Therefore, by setting the mineralization filter core 30 to comprise zinc-containing filter material, the mineral zinc is released into the water body, which is beneficial to the health of the human body. In addition, water with a pH value between 7.0 and 9.0 is the best water quality suitable for human health, and by setting the inhibition filter core 40 to comprise alkaline filter material, the water quality can be kept within the range of pH value of 7.0 to 9.0.
[0060] It should be noted that although zinc is one of the essential trace elements for the human body, which helps the growth and development of the human body and can also participate in vitamin metabolism. However, when the zinc in drinking water exceeds the standard, the zinc intake of the human body may exceed the standard, which can cause some harm to the human body, such as zinc poisoning and abnormal lipid metabolism. Therefore, by setting the inhibition filter core 40 to inhibit the excessive release of zinc elements, the situation of excessive zinc concentration can be avoided.
[0061] It can be understood that in other embodiments, the mineralization filter core 30 can also comprise filter material containing other minerals, such as copper, calcium, magnesium, potassium, strontium, etc. It should be noted that when the mineralization filter core 30 comprises filter material containing other minerals, the corresponding inhibition filter material in the inhibition filter core 40 can be matched.
[0062] In one embodiment, the mineralization filter core 30 comprises zincite or hydrozincite; and the inhibition filter core 40 comprises magnesite, or brucite, or sepiolite, or calcite.
[0063] The utility model discloses an embodiment further provides a mineralized water purifier, including mineralized water system 100 of above. Through adopting mineralized water system 100, when the mineral content in water is too high, the release of minerals can be reduced.
[0064] Embodiment two:
[0065] The mineralized water system 100 and the mineralized water purifier provided by the embodiment are different from the embodiment one in whether a reflux pipeline 90 is arranged, which is embodied as follows: in the embodiment one, the reflux pipeline 90 is not arranged; and in the embodiment, the mineralized water system 100 comprises the reflux pipeline 90.
[0066] Please refer to Figure 5 , the mineralized water system 100 further comprises the reflux pipeline 90 and a third control valve 84, the input end of the reflux pipeline 90 is connected to the downstream end of the mineralized filter element 30, the output end of the reflux pipeline 90 is connected to the upstream end of the inhibition filter element 40, and the third control valve 84 is arranged on the reflux pipeline 90.
[0067] In the embodiment, the input end of the reflux pipeline 90 is connected to the first pipeline 10, and the output end of the reflux pipeline 90 is connected to the water inlet pipeline 50. It can be understood that in other embodiments, the input end of the reflux pipeline 90 can also be connected to the water outlet pipeline 60, and the output end of the reflux pipeline 90 can also be connected to the second pipeline 20. When the technical scheme is adopted, the fourth control valve 85 is located downstream of the connection position of the reflux pipeline 90 and the water outlet pipeline 60.
[0068] By arranging the reflux pipeline 90, when the mineralized filter element 30 is in the soaking state, the water containing high-concentration minerals in the mineralized filter element 30 can flow into the reflux pipeline 90, and then the water containing inhibition substances can flow into and fill in the mineralized filter element 30, so that the mineralized filter element 30 can be soaked by the water containing inhibition substances.
[0069] In specific implementation, when the mineralized filter element 30 is in the soaking state, as shown in Figure 6 , the on-off valve and the third control valve 84 can be controlled to be opened, and the first control valve 82, the second control valve 83 and the fourth control valve 85 can be controlled to be closed, so that the water containing high-concentration minerals in the mineralized filter element 30 can flow into the reflux pipeline 90, and then the water containing inhibition substances can flow into the mineralized filter element 30. Of course, as shown in Figure 7 , the on-off valve and the fourth control valve 85 can also be controlled to be opened, and the first control valve 82, the second control valve 83 and the third control valve 84 can be controlled to be closed, so that the water containing high-concentration minerals in the mineralized filter element 30 can flow out of the water outlet pipeline 60, and then the water containing inhibition substances can flow into the mineralized filter element 30. When the first pipeline 10 and the second pipeline 20 need to supply water at the same time, as shown in Figure 8As shown, the control switch valve and the third control valve 84 are closed, the first control valve 82, the second control valve 83 and the fourth control valve 85 are opened, at this time, the series switching pipeline 70 and the backflow pipeline 90 are disconnected, the first pipeline 10 and the second pipeline 20 are in parallel, and the water in the first pipeline 10 and the water in the second pipeline 20 are mixed in the outlet pipeline 60 and then discharged.
[0070] In an embodiment, the third control valve 84 is electrically connected with the controller, and the controller can be used to control the opening and closing of the third control valve 84.
[0071] In an embodiment, the third control valve 84 is an electromagnetic valve. Of course, in other embodiments, the third control valve 84 can also be other valves.
[0072] In addition to the above differences, the mineralized water pipeline system 100, the mineralized water purifier and the accessory parts provided by the embodiment can be designed with reference to the first embodiment, and will not be described here.
[0073] The above only describes the preferred embodiments of the present application, and does not limit the patent range of the present application, and any equivalent structural transformation, direct / indirect application in other related technical fields under the utility model concept of the present application, or the contents of the present application specification and drawings are included in the patent protection range of the present application.
Claims
1. A mineralized waterway system characterized by, The mineralization water system comprises a first pipeline, a second pipeline, a mineralization filter and an inhibition filter. The first pipeline and the second pipeline are arranged in parallel, the mineralization filter is connected to the first pipeline, and the inhibition filter is connected to the second pipeline. The mineralization water system further comprises a series switching pipeline for connecting the inhibition filter and the mineralization filter in series, an output end of the series switching pipeline is connected to the first pipeline or the mineralization filter, an input end of the series switching pipeline is connected to the second pipeline or the inhibition filter, and the series switching pipeline is provided with a valve body.
2. The mineralized waterway system of claim 1, wherein, The valve body is a switch valve or a one-way valve.
3. The mineralized waterway system of claim 1, wherein, The mineralization water system further comprises a first control valve, the first control valve is arranged on the first pipeline and located at an upstream end of the mineralization filter, and the first control valve is used for controlling the on-off of the first pipeline. The output end of the series switching pipeline is connected between the first control valve and the mineralization filter.
4. The mineralized waterway system of claim 1, wherein, The mineralization water system further comprises a second control valve, the second control valve is arranged on the second pipeline and located at a downstream end of the inhibition filter, and the second control valve is used for controlling the on-off of the second pipeline. The input end of the series switching pipeline is connected between the inhibition filter and the second control valve.
5. The mineralized waterway system of any one of claims 1 to 4, wherein, The mineralization water system further comprises a return pipeline and a third control valve. An input end of the return pipeline is connected to a downstream end of the mineralization filter, an output end of the return pipeline is connected to an upstream end of the inhibition filter, and the third control valve is arranged on the return pipeline.
6. The mineralized waterway system of any one of claims 1 to 4, wherein, The mineralization water system further comprises a fourth control valve, the fourth control valve is arranged on a downstream end of the mineralization filter.
7. The mineralized waterway system of any one of claims 1 to 4, wherein, The mineralization water system further comprises a water inlet pipeline and a water outlet pipeline, and the first pipeline and the second pipeline are connected in parallel between the water inlet pipeline and the water outlet pipeline.
8. The mineralized waterway system of any one of claims 1 to 4, wherein, The mineralization filter comprises zinc-containing filter material, and the inhibition filter comprises alkaline filter material.
9. The mineralized waterway system of claim 8, wherein, The mineralization filter comprises zincite or hydrozincite, and the inhibition filter comprises magnesite, brucite or sepiolite or calcite.
10. A mineral spring mineralization water purifier, characterized in that, The mineralization water system comprises the mineralization water system according to any one of claims 1 to 9.