The present invention relates to condensing mechanism technology and more particularly, to a condensing mechanism for a distilled water dispenser that is set above the body of a distilled water dispenser to condense the steam generated by the heating of the inner tank of the body into distilled water.
A known structure of a distilled water dispenser, such as shown in U.S. Pat. Nos. 4,342,623A, 6,280,577B1, 6,009,238A, has a barrel-shaped body, and a stainless steel inner tank is placed above the body. The inner tank has an electric heating tube set therein. An upper cover housing is detachably assembled on the top of the body. The upper cover housing is equipped with a condensing pipe and a fan. One end of the condensing pipe goes down and straight through the inner tank, and the other end of the condensing pipe is a water outlet that extends to the front of the upper cover housing. In this way, the water in the inner tank is heated through the electric heating tube, so that the steam generated after the water boils enters the condensing pipe, and at the same time, the fan blows air to the condensing pipe, so that the steam in the condensing pipe is condensed into distilled water, and then flows to the water outlet for users to collect.
Because the above-mentioned conventional condensing pipe has to be hidden in the limited space of the upper cover housing, the stainless steel tube is wound up and down in two turns, so the passage of the pipe is shorter. In order to improve its condensing efficiency, it had to increase the manufacturing cost by adding multiple radiating fins in the condensing pipe. However, due to the short passage of the condensing pipe that is wound up and down two turns, the steam quickly flows to the water outlet, causing problems such as insufficient condensation, waste of steam, and high temperature of the outlet water. Under no circumstances, only reduce the power of the electric heating tube or change it to intermittent heating, so that the amount of steam generated is less, and the condensing line has time to condense into distilled water, so it often takes a long time to generate enough distilled water. For this reason, how to improve the shortcomings of the above-mentioned conventional distilled water dispenser condensing pipe is the subject to be actively overcome by the present invention.
The present invention has been accomplished under the circumstances in view. It is one object of the present invention to provide a condensing mechanism for distilled water dispenser, which uses a condensing coil that has multiple layers of spiral coil arranged on different horizontal planes in a continuous form, so that it can improve the condensation efficiency, shorten the time required to generate distilled water, reduce the temperature of the distilled water outlet, and avoid the use of radiating fins.
To achieve this and other objects of the present invention, a condensing mechanism is to be set above a body of a distilled water dispenser to condense the steam generated by the heating of an inner tank of the body into distilled water. The condensing mechanism comprises a condensing coil and a fan. The condensing coil comprises a first layer of spiral coil. The first layer of spiral coil is formed of a stainless steel tube that is continuously wound in a spiral on a first horizontal plane. The stainless steel tube has one end thereof terminating in a steam inlet port for connecting to the inner tank of the body, and an opposite end thereof terminating in a distilled water outlet port. The fan is arranged on the condensing coil, and used to drive air to the condensing coil so that the steam in the stainless steel tube is cooled and condensed into distilled water.
The condensing mechanism of the distilled water dispenser of the present invention can achieve the effects as follows:
1. Improve condensation efficiency: The condensing coil of the present invention is a structure that has multiple layers of spiral coil arranged on different horizontal planes in a continuous form. A longer stainless steel tube can be added to the limited space of the upper cover housing to make the condensation channel longer and easier to exchange heat with the fan's wind, thus improving the condensation efficiency.
2. Shorten the time required to produce distilled water: Based on the condensation function as described above, the distilled water dispenser can implement a high-power electric heating tube and set it to continuously heat the water in the inner tank, so that the water quickly boils to produce a large amount of steam into the condensing coil, and the steam continuously circulates in the condensing coil and is cooled down to produce distilled water, shortening the time required to produce distilled water.
3. Lower the temperature of distilled water: Based on the condensation function as described above, the present invention further extends the condensing passage, so the temperature of the distilled water reaching the outlet of the coil can be lower than that of the conventional water dispenser, allowing the user to quickly obtain distilled water with a temperature suitable for drinking.
4. Free radiating fins: Based on the condensation function as described above, where are already enough channels to condense into distilled water, so there is no need to install conventional radiating fins, which can reduce the process and manufacturing cost of manufacturing coils.
Referring to
Refer to
The steam inlet port 15 is preferably located at the center of the first layer of spiral coil 11. The first layer of spiral coil 11 is preferably continuously spirally wound from the center to the surrounding. The distilled water outlet port 16 preferably extends to one side of the condensing coil 10. The fan 20 is preferably an axial flow heat dissipation fan, which is arranged above the condensing coil 10, and is used to drive the air outside the upper cover housing 53 to flow toward the condensing coil 10 (as shown in
Based on the design that the first layer of spiral coil 11 of the condensing coil 10 is formed by continuously winding the stainless steel tube 14 in a spiral shape on the first horizontal plane H1, the condensing mechanism of the present invention can extend the vapor condensation passage of the condensing coil 10 in the limited space inside the upper cover housing 53. Therefore, the stainless steel tube 14 of the first layer of spiral coil 11 has a longer time to exchange heat with the cold air driven by the fan 20, so that the steam in the pipeline is condensed into distilled water with a lower temperature.
Refer to
Refer to
Through the above-mentioned structural design extending to the second layer of spiral coil 12 and even the third layer of spiral coil 13, the present invention can fit a stainless steel tube 14 with a length of up to 3 meters in the upper cover housing 53 of the existing distilled water dispenser 50. Therefore, there are enough heat dissipation channels and circulation time to condense the steam into distilled water at a lower temperature. Based on this condensation effect, referring to
Referring to
Although a particular embodiment of the invention has been described in detail for purposes of illustration, various modifications and enhancements may be made without departing from the spirit and scope of the invention. Accordingly, the invention is not to be limited except as by the appended claims.
Number | Date | Country | Kind |
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109214042 | Oct 2020 | TW | national |