The present invention relates to a thermal protector used to prevent the overheating of a hot-air generating device of a hair dryer, an electronic fan heater, a popcorn machine, etc.
Conventionally, a thermal protector like that shown in
To an upper exposed portion 5 of the external circuit connection terminal 3, one end 6-1 of a movable plate 6 is secured, for example, with spot welding. At the other end 6-2 of the movable plate 6, a movable contact 7, which protrudes over the lower surface, is arranged by caulking the upper surface. In the central portion of the movable plate 6, a bimetal 11 whose breadth direction is aligned by drop preventing pieces 8a and 8b, which are arranged to be erect at both sides, and whose both ends in the vertical direction are engaged in two engagement pieces 9a and 9b, which are formed to be hooked and as opposed to each other, to engage with the movable plate 6 is arranged. Additionally, on an upper exposed portion 12 of the external circuit connection terminal 4, a fixed contact 13 is arranged by being caulked. The movable contact 7 and the fixed contact 13 are arranged in positions which correspond to each other.
In this thermal protector 1, the bimetal 11 warps in a convex state in an upward direction at a temperature equal to or lower than a preset temperature, and the movable contact 7, which is supported by the other end 6-2, of the movable plate 6 made of an elastic body is pressed against the fixed contact 13 by its elasticity, so that the contacts are closed.
This thermal protector 1 is used as a temperature over-rise preventing device arranged on a flow path of hot air so as to prevent the overheating of a hot-air generating device arranged, for example, in a hair dryer, an electronic fan heater, a popcorn machine, etc. The bimetal responds to the hot air of an extra-high temperature, and the warpage in the convex state in the upward direction until at that time is inverted to the concave state in the upward direction, whereby the contacts are released, an electric current to the hot-air generating device is interrupted, and the overheating is prevented.
Conventionally, such a thermal protector is used by leaving the periphery of the contacts that open/close a power supply open as shown in
A hair dryer is taken as an example. The number of recent hair dryers, which have a large capacity to emit a high volume of air (wind velocity) with high heat in order to enhance the performance as a dryer, has been growing. For such a large-capacity hair dryer that emits a high volume of air with high heat, the size of its heater must be enlarged with an increase in the size of its fan. Accordingly, the number of hair dryers where a high electric current over 10A flows in use has been becoming large.
Generally, the higher a flowing electric current or a voltage between contacts, the more an arc occurs between the contacts released when the electric current is interrupted. As described above, also in the case where an electric current as high as 10A flows at a high voltage of 100V, an arc occurs between the contacts when the electric current is interrupted. In the case of the above described large-capacity hair dryer, the energizing and the interrupt of a power supply for the heater are performed in a relatively frequent manner during its use.
The thermal protector as the above described conventional technique has one problem. Namely, as described above, a time period during which an arc that occurs between contacts when a power supply is interrupted discharges between the contacts is an instant from a macroscopic viewpoint, and an arc instantaneously occurs and disappears without being carried away by a wind even in hot air having a high rate of flow in normal cases. However, if the wind velocity exceeds a limit, an arc comes out of the contacts and is spattered to a peripheral conductive member in many cases.
Normally, the temperature of an arc is as high as several thousand degrees centigrade. Therefore, a phenomenon that if an arc between contacts is spattered to a conductive member other than the contacts even for a moment, the portion of the conductive member is extraordinarily heated and melted has been proved to occur from a microscopic viewpoint.
If a conductive member in the periphery of contacts is repeatedly melted, this causes diverse problems such as hastening the wear-out of the conductive member, causing a short circuit, or the like.
An object of the present invention is to provide a thermal protector that properly completes the interrupt of an electric current without damaging a peripheral member by an arc between contacts, which comes out of the contacts by being carried away by a wind velocity, even if a high electric current is interrupted in a large volume of air, in view of the above conventional circumstances.
In a preferred embodiment according to the present invention, a thermal protector, which opens/closes an electric circuit with a bimetal inverting a warpage direction by using a set temperature as a boundary, is configured by comprising: a fixed contact connected to one of external circuit connection terminals; a movable contact that is connected to the other of the external circuit connection terminals and arranged in a position corresponding to the fixed contact; and a partition wall that encloses an arrangement portion of the fixed contact and the movable contact from three sides, is adjacent to the fixed contact and the movable contact in a range which does not inhibit contact operations of the fixed contact and the movable contact, and is formed to be higher than at least the height of the fixed contact.
In the preferred embodiment, this thermal protector is configured in such a way that the movable contact is arranged at one end of a movable plate, which engages with the bimetal, the other end of the movable plate is secured and connected to the other of the external circuit connection terminals, and at least a partition wall in a central portion among the three sides of the partition wall is higher than a contact gap between the fixed contact and the movable contact when the contacts are released, and has a height which does not exceed the height of the one end of the movable plate when the contacts are released.
Additionally, in the preferred embodiment, the partition wall has a height which exceeds at least the fixed contact, and is arranged to enclose the movable plate.
Furthermore, the partition wall is made of an insulating material. In another preferred embodiment, the partition wall is incorporated into one body with the one and the other of the external circuit connection terminals.
As described above, according to the present invention, a problem that a conductive member in the periphery of contacts is extraordinarily heated and melted by a spattering arc, which hastens damage or causes a short circuit is solved. As a result, the reliability of an appliance is improved. Furthermore, the thermal protector is configured to make it difficult that a wind directly flows between the contacts in any direction, whereby restrictions on an arrangement position of the thermal protector are eliminated, which enhances the degree of freedom of designing an appliance where the thermal protector is arranged inside, and offers a convenience.
a) is a plan view of a thermal protector according to a first preferred embodiment;
b) is a sectional side view showing the configuration of contacts closed at a normal temperature;
c) is a sectional side view showing the state where the contacts are open at a high temperature;
d) is a perspective view showing an entire configuration;
a) is a plan view of a thermal protector according to the first preferred embodiment,
In the thermal protector 15 shown in
As shown in
If the bimetal 26 warps from a normal convex state in the upper direction, which is shown in
In this configuration, a difference from the case shown in
Additionally, this partition wall 28 is formed to be higher than at least the height of the fixed contact 27 as shown in
Furthermore, at least a partition wall 28-1 in the central portion of the three sides of the partition wall 28 is configured to be higher than the contact gap g, which is shown in
In this way, in the thermal protector according to this preferred embodiment, it becomes difficult that a wind directly flows between the contacts even at a wind velocity which exceeds a limit in the case of a conventional thermal protector. Therefore, even if an arc which discharges between the contacts the moment when a high electric current is interrupted becomes larger than a normal value, or even if a wind velocity at that time is high, the arc does not come out of the contacts by being carried by the wind and is not spattered to a peripheral conductive member, or the arc is very slight if it exists. Accordingly, the problem that a conductive member in the periphery of contacts is extraordinarily heated and melted, which hastens damage or causes a short circuit is solved, and the reliability of an appliance is improved.
As shown in this figure, the thermal protector 30 in this modification example represents the state where contacts are released when an electric current is interrupted in a similar manner as in
As described above, if not only the partition wall 31-1 in the central portion of the three sides but also the partition walls 31-2 on the two sides are configured to enclose the movable contact 23 and the other end 22-2 of the movable plate 22, it becomes more and more difficult that a wind flows between the contacts. Accordingly, an appliance exposed to a higher wind velocity can be supported.
Note that, however, a higher partition wall is not always good to prevent a wind from directly flowing between the contacts. For example, if the partition wall is formed to be too high and exceeds the movable contact 23 and the other end 22-2 of the movable plate 22 as indicated by a broken line 32 in
Accordingly, as described above, although the partition wall 31 must be set to be higher than the gap g when the contacts are released, it must have a height which does not exceed the heights of the movable contact 23, and the end 22-2 of the movable plate 22.
According to both of the above described preferred embodiment and its modification example, the partition wall is arranged by imposing a limitation to enclose only a contact portion. However, the present invention is not limited to this configuration. The partition wall may be formed to enclose the whole of the main body of the thermal protector except for the external circuit connection terminals 17 and 18. This configuration is explained below as the second preferred embodiment.
As shown in
As described above, by forming the whole of the main body 34 of the thermal protector except for the external circuit connection terminals 17 and 18 to be enclosed by the partition wall 35, a configuration where a wind is difficult to directly flow between the contacts in any direction is implemented. Therefore, even if the thermal protector 33 within an appliance is arranged in an orientation oblique or orthogonal to the direction of a wind velocity, effects of preventing a problem that an arc between released contacts when a high electric current is interrupted is carried away by a high wind velocity, and damages a conductive member in the periphery of the contacts is maintained. Accordingly, the degree of freedom of designing an appliance where the thermal protector is arranged inside can be enhanced, which offers a convenience.
As described above in detail, according to the present invention, a partition wall having a height in a range which does not confine an arc excessively is arranged at least in the neighborhood of contacts in a thermal protector as a temperature over-rise preventing device included in recent hair dryer, electronic fan heater, popcorn machine, etc., which use a high electric current. Accordingly, an arc between the contacts can be prevented from coming out of the contacts by being carried way by a wind, and from being spattered to a conductive member in the neighborhood of the contacts even when a high electric current is interrupted, or in a wind of a high rate of flow.
As a result, the problem that a conductive member in the periphery of contacts is extraordinarily heated and melted by a spattering arc, which hastens damage or causes a short circuit can be solved, whereby effects that the reliability of an appliance is improved can be obtained.
Furthermore, the whole of the main body of the thermal protector is enclosed by a partition wall, so that a configuration where a wind is difficult to directly flow between contacts in any direction is implemented. Therefore, even if the thermal protector within an appliance is arranged in an orientation oblique or orthogonal to the direction of a wind velocity, effects of preventing an arc between released contacts when a high electric current is interrupted from being carried away by a high wind velocity, and from damaging a conductive member in the periphery of the contacts is maintained. Accordingly, the degree of freedom of designing an appliance where the thermal protector is arranged inside is enhanced, which offers a convenience.
Industrial Applicability
As described above, if the thermal protector according to the present invention is arranged in a desired position in an appliance that uses a high electric current or a wind of a high rate of flow, no problems are caused by the melting, the damage, the short circuit, etc. of a conductive member, and the reliability of the appliance is high. Therefore, the present invention is applicable to all of industries using a hot-air generating device, such as a hair dryer, an electronic fan heater, a popcorn machine, etc., which utilize a high electric current or a wind of a high rate of flow, and require high reliability.
Number | Date | Country | Kind |
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2001-059063 | Mar 2001 | JP | national |
Filing Document | Filing Date | Country | Kind | 371c Date |
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PCT/JP02/01878 | 2/28/2002 | WO | 00 | 9/2/2003 |
Publishing Document | Publishing Date | Country | Kind |
---|---|---|---|
WO02/071431 | 9/12/2002 | WO | A |
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Number | Date | Country | |
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20040075526 A1 | Apr 2004 | US |