The present disclosure relates to a flashing thermostat, in particular to a flash double-temperature linkage temperature controller.
Common flashing adjustable thermostat of model KST is a thermostat using a temperature sensing bimetallic strip as the temperature sensing element. The bimetallic strip is bent and deformed due to temperature changes, which then causes flashing closure or separation of the movable contact and the fixed contact. Referring to
Referring to
1. Low power: such an electric kettle typically has a low power as the flashing adjustable thermostat is not suitable for large current loads due to the fact that the resistivity of the spring strip in the thermostat is relatively large.
2. Short service life: for ordinary electric kettles, each time the water is boiled, the contacts are switched on and off once, while for the electric kettle with a flashing adjustable thermostat of model KST, it will frequently activate the contacts in the thermostat during the heat preservation process, and for each activation, it operates at full power, which leads to a greatly reduced service life of the entire electric kettle as the service life of the contacts is limited.
3. Large noise: traditional electric kettles with a single-circuit thermostat, once activated, operate at full power with a loud sound from the boiling water, which is particularly obvious when using the heat preservation function at night.
The disclosure aims at providing a flash double-temperature linkage temperature controller, which has high power, low noise, and long service life.
The technical scheme adopted by the disclosure for solving the technical problem is as follows.
There is provided a flash double-temperature linkage temperature controller, including a mounting plate and a mounting post arranged on the mounting plate. A temperature sensing bimetallic strip, a first ceramic ring, a first fixed contact piece set, a second ceramic ring, a first movable contact piece set, a third ceramic ring, a second fixed contact piece set, a fourth ceramic ring, a second movable contact piece set and a fifth ceramic ring are sequentially arranged on the mounting post from top to bottom. A first ceramic post is connected between an end of the temperature sensing bimetallic strip and an end of the first movable contact piece set, and a second ceramic post is connected between the end of the first movable contact piece set and an end of the second movable contact piece set. A temperature regulating mechanism, with a top abutting against a middle of the second movable contact piece set, is arranged on the mounting plate. A linkage rod is provided between the first movable contact piece set and the second movable contact piece set.
In the disclosure, the first movable contact piece set is connected with the second movable contact piece set through a conducting strip.
In the disclosure, the temperature regulating mechanism includes an insulating ejector rod, an adjusting screw for pushing the insulating ejector rod to move up and down, the insulating ejector rod has a top abutting against the second movable contact piece set, and the second movable contact piece set is provided with a positioning recess corresponding to the top of the insulating ejector rod.
In the disclosure, one end of the linkage rod protrudes outward and the other end of the linkage rod is recessed inward, the second movable contact piece set is provided with a positioning protrusion corresponding to a recessed portion of the linkage rod, the first movable contact piece set is provided with a positioning recess corresponding to a protruding portion of the linkage rod.
In the disclosure, one end of the first ceramic post is connected with the temperature sensing bimetallic strip, and the other end of the first ceramic post is connected with the second ceramic post by penetrating through the end of first movable contact piece set.
In the disclosure, the linkage rod has a hollow interior.
In the disclosure, the second ceramic post includes a fixed portion and a movable portion with an adjustable length.
The disclosure has the beneficial effects as follows. In the disclosure, by changing the traditional single circuit to a double circuit, connecting two sets of movable and fixed contact piece sets through the linkage rod and the second ceramic post, and designing the height of the second ceramic post, contacts of the two sets of movable and fixed contact piece sets can be operated successively at different temperatures, so that the required fixed temperature difference can be obtained. The two sets of movable and fixed contact piece sets are respectively connected with and control two electric heating tubes, thus achieving the effect of double electric heating tubes (high power) operating during heating and single electric heating tube (low power) operating during heat preservation, greatly reducing the operating times of the high power contact piece set, i.e., greatly improving the service life of the electric kettle. Furthermore, the low-power electric heating tube operates with a low noise, so that it is silent or has a micro-sound during heat preservation. Meanwhile, the double circuit is also beneficial for manufacturing a high-power electric heating appliance.
The disclosure is further illustrated in the following description with reference to the embodiments and the accompanying drawings, in which:
Referring to
As a preferred embodiment, the first fixed contact piece set 5 and the second fixed contact piece set 9 are respectively provided with a lug, the first movable contact piece set 7 and the second movable contact piece set 11 are respectively provided with a lug and are connected with each other through a conducting strip 16. Only one lug is needed to be kept to facilitate wiring. For similar consideration, two power lines may also be directly connected to the lugs of the first movable contact piece set 7 and the second movable contact piece set 11, which has the same technical effect.
In this embodiment, one end of the linkage rod 15 protrudes outward and the other end of the linkage rod 15 is recessed inward. The second movable contact piece set 11 is provided with a positioning protrusion 11p corresponding to a recessed portion 15r of the linkage rod 15, the first movable contact piece set 7 is provided with a positioning recess 7r corresponding to a protruding portion 15p of the linkage rod 15, and the linkage rod 15 can be prevented from deviating by the positioning protrusion 11p and the positioning recess 7r. The linkage rod 15 may be an insulating solid and has a hollow interior, thereby reducing the weight and improving the sensitivity. The linkage rod 15 may also be a conductive solid, so that the current in the first movable contact piece set 7 and the second movable contact piece set 11 can be shunted to adapt to higher power and prolong the service life.
In this embodiment, both ends of the first ceramic post 13 are formed as a protruding pointed cone, in which one end is inserted into the temperature sensing bimetallic strip 3 and the other end is connected with the second ceramic post 14 by penetrating through the end of first movable contact piece set 7. One end of the second ceramic post 14 is formed as a recessed counter bore into which the end of the first ceramic post 13 is inserted, and the other end of the second ceramic post 14 is formed as a protruding pointed cone and is inserted into the end of the second movable contact piece set 11. During manufacturing, a relative distance between the first movable contact piece set 7 and the second movable contact piece set 11 may be adjusted by using the second ceramic post 14 with different lengths so as to meet the requirements of different temperature differences. Referring to
The operating principle of the disclosure is described hereinafter. A side where the temperature sensing bimetallic strip 3 is located is tightly attached to the bottom of a heating appliance, the first movable and fixed contact piece sets and the second movable and fixed contact piece sets are respectively connected with a high-power electric heating tube and a low-power electric heating tube, and disconnection temperature difference between two sets of the movable and fixed contact piece sets is assumed to be 5° C. If we need to use water with temperature of 65° C., the temperature for disconnecting the contacts in the high-power circuit may be set to be 60° C. by the temperature regulating mechanism and the temperature for resetting (i.e., closing) the contacts in the high-power circuit may be set to be 57° C. Accordingly, the temperature for disconnecting the contacts in the lower-power circuit may be set to be 65° C. and the temperature for resetting (i.e., closing) the contacts in the lower-power circuit may be set to be 62° C. In this way, two electric heating tubes (high-power and low-power) operate simultaneously to heat water from room temperature to 60° C., which has a high heating speed, and then the low-power electric heating tube operates to heat the water from 60° C. to 65° C. After that, the heat preservation between 62° C. and 65° C. is realized by operating the low-power electric heating tube, which is low in preservation noise, even almost silent. In this way, it is not necessary for the high-power contact piece set to operate frequently, which improves the service life of the electric kettle. If we need to boil the water, the temperature for disconnecting the contacts in the high-power circuit may be set to be more than 100° C. by the temperature regulating mechanism, while the temperature for disconnecting the contacts in the low-power circuit may be set to be higher. In this way, two electric heating tubes (high-power and low-power) operate simultaneously to boil water, which has a fast heating speed. After the water is boiled, the power supply may be cut off by a steam switch provided separately in the electric kettle.
The above description is only preferred embodiments of the present disclosure, and technical solutions that can achieve the object of the present disclosure by substantially the same means shall all fall within the protection scope of the present disclosure.
Number | Date | Country | Kind |
---|---|---|---|
201810327655.8 | Apr 2018 | CN | national |
Filing Document | Filing Date | Country | Kind |
---|---|---|---|
PCT/CN2019/076929 | 3/5/2019 | WO |
Publishing Document | Publishing Date | Country | Kind |
---|---|---|---|
WO2019/196571 | 10/17/2019 | WO | A |
Number | Name | Date | Kind |
---|---|---|---|
1783520 | Pearce | Dec 1930 | A |
2409420 | Clark | Oct 1946 | A |
2641681 | Willman | Jun 1953 | A |
2740864 | Tsai | Apr 1956 | A |
2987607 | Paulin | Jun 1961 | A |
3194927 | Place | Jul 1965 | A |
3236977 | Huffman | Feb 1966 | A |
3354278 | Piacent | Nov 1967 | A |
3364323 | Arlin | Jan 1968 | A |
3425016 | Meyers | Jan 1969 | A |
3774012 | Vogel | Nov 1973 | A |
3964004 | Mertler | Jun 1976 | A |
4090166 | Burch | May 1978 | A |
4109225 | Hollweck | Aug 1978 | A |
4249154 | Grable | Feb 1981 | A |
4345389 | Balchunas | Aug 1982 | A |
4633238 | Goessler | Dec 1986 | A |
4704595 | Essig | Nov 1987 | A |
4720696 | Oldani | Jan 1988 | A |
4899124 | Hollweck | Feb 1990 | A |
4968963 | DeWitt | Nov 1990 | A |
5973586 | Mertler, Jr. | Oct 1999 | A |
6639504 | Eberl | Oct 2003 | B2 |
7741947 | Tateishi | Jun 2010 | B2 |
20210134546 | Gan | May 2021 | A1 |
Number | Date | Country |
---|---|---|
587046 | Mar 1994 | EP |
2170655 | Aug 1986 | GB |
Number | Date | Country | |
---|---|---|---|
20210134546 A1 | May 2021 | US |