1. Field of the Invention
The invention relates to a switch, and more particularly to a temperature switch that controls power supply from a power source to a heating device for protecting the heating device when an abnormal temperature condition exists.
2. Description of the Related Art
A common electrical appliance configured for heating, such as a water dispenser, a coffeemaker, an electrical iron, a hairdryer, etc., employs a temperature switch to control a heater thereof to keep a desired temperature and to prevent dangers resulting from continuous heating at an abnormal temperature. In order to ensure safety of the electrical appliance, a fuse is usually disposed therein to avoid damage resulting from power supply abnormality. As such, the temperature switch and the fuse are usually disposed in common electrical appliances to control temperature and ensure safety.
However, when the temperature switch and the fuse are incorporated into an electrical appliance, additional wirings are required, thus resulting in more assembly steps and higher costs. Besides, electrical appliance designs have a trend toward miniaturization. If all of the temperature switch, the fuse, and the additional wirings are configured into the electrical appliance, a relatively large space must be provided therefor, thereby resulting in limitation of product design.
Therefore, an object of the present invention is to provide a safety temperature switch that is easy to assemble, that has a lower cost, and that can control temperature effectively.
According to the present invention, a temperature switch is adapted to be electrically connected with a first wire and a second wire. The temperature switch comprises:
abase including a base body and a cap body connected to the base body to form an accommodating chamber therebetween;
a conducting mechanism including a first conducting piece adapted to be electrically connected to the first wire, a second conducting piece adapted to be electrically connected to the second wire, a fixed conducting component electrically connected to the first conducting piece and having a fixed contact disposed in the accommodating chamber, a conducting resilient piece having a movable contact contactable with the fixed contact, the movable contact being biased to separate from the fixed contact, and at least one fuse electrically interconnecting the conducting resilient piece and the second conducting piece; and
a temperature control mechanism configured to control contact between the movable contact of the conducting resilient piece and the fixed contact of the fixed conducting component with a sensed temperature.
Other features and advantages of the present invention will become apparent in the following detailed description of the preferred embodiment with reference to the accompanying drawings, of which:
Referring to
In this embodiment, the base 3 includes a base body 31 made of an insulating and high temperature resistant material, such as a ceramic material or a plastic material, a cap body 32 connected to the base body 31 to form an accommodating chamber 30 therebetween, and a mounting bracket 33 sleeved on the base body 31. The base body 31 has a base wall 311, and a surrounding wall 312 extending upwardly from a periphery of the base wall 311 toward the cap body 32. The base wall 311 has a platform 313 extending into the accommodating chamber 30, and two conducting-piece mounting grooves 314 formed in a bottom surface of the base wall 311. The cap body 32 has an annular holding wall 321 abutting against a top end of the surrounding wall 312 of the base body 31, an extending wall 322 extending inwardly from the annular holding wall 321 toward the center of the accommodating chamber 30, and an annular limiting wall 323 extending downwardly from the extending wall 322 toward the bottom of the base body 31. A limiting hole 324 is formed through the limiting wall 323 and the extending wall 322.
The conducting mechanism 4 includes: a first conducting piece 41 adapted to be electrically connected to the first wire 22 and extending into one of the conducting-piece mounting grooves 314; a second conducting piece 42 adapted to be electrically connected to the second wire 23, extending into the other one of the conducting-piece mounting grooves 314, and having two first coupling holes 421; a fixed conducting component 43 configured as a vertical rod, extending through the base wall 311 of the base 31, electrically connected to the first conducting piece 41, and having a fixed contact 431 disposed in the accommodating chamber 30; a conducting resilient piece 45 disposed on the platform 313 of the base 3 such that the limiting hole 324 is aligned with an intermediate portion thereof, and having a free end 451, a movable contact 452 disposed on the free end 451 and contactable with the fixed contact 431, the movable contact 452 being biased to separate from the fixed contact 431, and two second coupling holes 453 aligned with the two first coupling holes 421, respectively; a gasket 44 disposed on the conducting resilient piece 45; a coupling component 46 that is made of an insulating material and passes through the gasket 44 and the conducting resilient piece 45 to clamp the conducting resilient piece 45 between the gasket 44 and the base body 31; and two fuses 48 electrically interconnecting the conducting resilient piece 45 and the second conducting piece 42 and extending through the first coupling holes 421 and the second coupling holes 453.
The temperature control mechanism 5 includes a temperature-sensing cap 51 made of a heat-conductive material and connected to the cap body 32 of the base 3 to form a deformation space 52 between the cap body and the temperature-sensing cap 51, and a temperature-sensing control plate 54 that is disposed in the deformation space 52, and that has a deforming part 541 disposed at a central portion thereof and deformable due to temperature change in such a manner to move between a proximate position and a distal position farther away from the conducting resilient piece 45 than the proximate position, and a heat-conductive part 542 disposed along a periphery thereof and deformable to contact the temperature-sensing cap 51. The temperature control mechanism 5 further includes a linking rod 53 made of a heat-insulating ceramic material and disposed movably in the limiting hole 324. The linking rod 53 is aligned with the deforming part 541, is disposed between and in contact with the temperature-sensing control plate 54 and the conducting resilient piece 45, and is movable toward and away from the temperature-sensing control plate 54 and the conducting resilient piece 45 along a longitudinal direction of the limiting hole 324 such that, when the deforming part 541 of the temperature-sensing control plate 54 is at the proximate position, the movable contact 452 is in contact with the fixed contact 431, and when the deforming part 541 of the temperature-sensing control plate 54 is at the distal position, the movable contact 452 is spaced apart from the fixed contact 431.
In this embodiment, when the temperature switch 20 is in a conducting condition as shown in
When the heating component 21 is heated to reach a pre-determined first temperature, the deforming part 541 of the temperature-sensing control plate 54 moves from the proximate position to the distal position, so that the linking rod 53 is no linger pressed against the conducting resilient piece 45, thus allowing the movable contact 452 on the free end 451 of the conducting resilient piece 45 to be biased to separate from the fixed contact 431 to interrupt electrical connection between the first and second wires 22, 23. In other words, the temperature switch 20 is converted from a conducting condition as shown in
Referring to
Abnormal condition of the conducting mechanism 4 may also exist, e.g., when the temperature rises to the predetermined first temperature, the deforming part 541 of the temperature-sensing control plate 54 moves to the distal position, if the movable contact 452 and the fixed contact 431 are still abnormally in contact with each other to form a closed circuit between the first wire 22 and the second wire 23, the heater of the electrical appliance keeps on heating to thereby result in an increase in the temperature of the temperature-sensing cap 51 and the environmental temperature thereof. When the temperature of the heating component 21 rises to the third temperature, the fuses 48 are blown to form an open circuit, so as to change the temperature switch 20 to a second safety condition as shown in
To sum up, by integrating the fuses 48 of the conducting mechanism 4 and the temperature control mechanism 5 on the base 3, the temperature switch 20 according to the present invention serves as a double safety control device with the same size as a conventional temperature switch. For this reason, when the temperature switch 20 is installed on the electrical appliance, neither changing arrangement of other components nor providing additional wirings for connecting with other safety objects are needed. Besides, the fuses 48 can be disposed fixedly in the base 3 according to the present invention, so as to enhance stability of the fuses 48 under the abnormal environmental temperature.
While the present invention has been described in connection with what is considered the most practical and preferred embodiment, it is understood that this invention is not limited to the disclosed embodiment but is intended to cover various arrangements included within the spirit and scope of the broadest interpretation so as to encompass all such modifications and equivalent arrangements.
Number | Date | Country | Kind |
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100139374 | Oct 2011 | TW | national |