This application claims priority to, and benefits of Chinese Patent Application No. 201020281744.2 filed with State Intellectual Property Office, P. R. C. on Jul. 28, 2010, the entire content of which is incorporated herein by reference.
The present disclosure relates to vehicles, more particularly to a thermoelectric module for a temperature controlled vehicle seat and a temperature controlled vehicle seat comprising the same.
With the rapid development of automobiles, there are more and more requirements for indoor comfortableness of the automobiles. In conventional automobiles, air-conditioners are always applied to adjust indoor temperatures of the automobiles and make passengers feel more comfortable. In some middle and high grade automobiles, thermoelectric modules may be used to heat or cool the automobile seat to a predetermined temperature.
The present disclosure is directed to solve at least one of the problems existing in the art. Accordingly, a thermoelectric module may need to be provided, via which an enlarged temperature variable range may be achieved easily. Further, a temperature controlled vehicle seat comprising the same may also need to be provided, which may enlarge temperature control range, thus enhancing comfortableness of a passenger sitting on the seat.
According to an aspect of the present disclosure, a thermoelectric module comprising at least two heat exchanging units connected in series may be provided. Each heat exchanging unit may comprise a main body having an inlet for intaking heating or cooling medium; a thermoelectric element provided in the main body which divides the main body into a working chamber formed with a working medium outlet and a waste heat chamber formed with a waste medium outlet. The working medium outlet of one of two neighboring heat exchanging units is connected with the inlet of a remaining of the two neighboring heat exchanging units.
According to another aspect of the present disclosure, a temperature controlled vehicle seat may be provided. The vehicle seat may comprise: a seat body; a medium passage formed inside the seat body; a thermoelectric module as described hereinabove with the inlet of the heat exchanging unit being connected with the medium passage; and a medium source for supplying cooling or heating medium to the inlet of the thermoelectric module.
According to embodiments of the present disclosure, the thermoelectric module comprises at least two heat exchanging units, and latter heat exchanging unit of two adjacent heat exchanging units may provide another stage temperature change besides that provided by the former heat exchanging unit. In this way, the temperature in the working chambers may be increased or decreased step by step to achieve further heating/cooling, thus achieve an enlarged temperature variable range. When this thermoelectric module is applied to a vehicle seat, comfortableness of a passenger sitting on the seat is enhanced due to the enlarged temperature variable range.
These and other aspects and advantages of the disclosure will become apparent and more readily appreciated from the following descriptions taken in conjunction with the drawings in which:
Reference will be made in detail to embodiments of the present disclosure. The embodiments described herein are explanatory, illustrative, and used to generally understand the present disclosure. The embodiments shall not be construed to limit the present disclosure. The same or similar elements and the elements having same or similar functions are denoted by like reference numerals throughout the descriptions.
In the following, a thermoelectric module and a temperature controlled vehicle seat comprising the same will be described in detail with reference to accompanying figures, in which
The thermoelectric module 100 may comprise at least two heat exchanging units connected in series. As shown in
The first, second and third thermoelectric element 11, 21 and 31 are horizontally connected to a side of the main body 10, 20 and 30 opposite to the inlet 14, 24 and 34 respectively.
As shown in
As shown in
In the following, the thermoelectric element will be described with reference to
As shown in
As shown in
As shown in
As shown in
In the following, the configuration of the upper and lower radiating members will be described in detail as follows.
According to embodiments of the present disclosure, the thermoelectric module 100 may provide more efficient heat transferring capability, provided that heights of the radiating members of the thermoelectric element satisfy a certain ratio. After numerous experimentations, the inventor has found that the following dimensions of the heat exchanging units 1, 2 and 3 may provide the most efficient heat transferring capability.
As shown in
As shown in
Normally, the last heat exchanging unit in the at least two heat exchanging units connected in series may have the upper radiating member with a height equal to that of the lower radiating member. For example, as shown in
Each of the heat exchanging unit except the last heat exchanging unit has the lower radiating member with a height which is half that of the upper radiating member. As shown in
When there are more than three heat exchanging units in the thermoelectric module 100, the upper radiating member 312 in the last heat exchanging unit 3 has a height half of that of the upper radiating member 212 in the last but one heat exchanging unit 2, i.e., the heat exchanging unit 2 in this embodiment. For example, as shown in
Except the last heat exchanging unit 3, the latter of the two neighboring heat exchanging units has the upper radiating member with a height which is about two thirds of that of the upper radiating member in the former one of the two neighboring heat exchanging units. For example, as shown in
According to an embodiment of the present disclosure, the thermoelectric module may further comprise a control unit (not shown) connected with the semiconductor member for controlling current magnitude and direction to cool or heat the medium in the main body. To be specific, the control unit may be used to adjust the magnitude and direction of a current in the semiconductor member. The control unit may control heating or cooling conditions within the working chamber of the heat exchanging unit through controlling the heating or cooling of an upper surface of the semiconductor member. In this way, heating or cooling function of the thermoelectric module 100 may be achieved.
It should be understood that the cooling medium 100 described herein may be any known medium in the art that can provide a cooling capability.
In an embodiment, the thermoelectric module 100 may comprise at least two heat exchanging units. When the medium, such as the cooling medium flows through the thermoelectric module 100, i.e. from the front one of two adjacent heat exchanging units and exits from the working medium outlet and the waste medium outlet respectively, a temperature change may occur to the cooling medium. Inlet of the latter heat exchanging unit of the two neighboring heat exchanging units may be formed to be connected with the working medium outlet of the former heat exchanging unit of the two neighboring heat exchanging units. After the cooling medium exits from the working medium outlet of the two neighboring heat exchanging units, an additional temperature change may occur, thus making the cooling medium have a higher or lower temperature. In this way, further cooling or heating of the cooling medium can be achieved.
According to embodiments of the present disclosure, the thermoelectric module 100 may be used in any known temperature adjusting or temperature controlling fields, such as heat dissipating fields of electronic components, for example temperature controlled vehicle seats.
In the following, a temperature controlled vehicle seat 200 may be described in detail with reference to
As shown in
In an embodiment, the medium source 50 may be a fan or a water pump with the cooling medium being air or water etc. As shown in
When the thermoelectric module 100 as described in
In the following, a pump (not shown) as a cooling medium source is adopted, and water with a temperature of 25° C. is used as the cooling medium, and each thermoelectric element comprises only one semiconductor member and semiconductor members in all thermoelectric elements may have the same power.
In the following, the working process will be described with reference to
The water from the pump flows through its own outlet, to the inlet 14 of the first heat exchanging unit 1. Then the water is divided into two branches with one branch flowing into the working chamber 12 and the waste heat chamber 13. The water arriving at the working chamber 12 passes through passages formed between the first upper radiating fins 1122, and flows out of the heat exchanging unit 1 via the working medium outlet 124 with a temperature of 20° C. The water arriving at the waste heat chamber 13 passes through passages formed between the lower radiating members 113, and flows out of the heat exchanging unit 1 via the waste medium outlet 134 to the outside of the seat body 201 with a temperature of 30° C.
The water from the working medium outlet 124 with a temperature of 20° C. flows through the inlet 24 of the second heat exchanging unit 2, and is divided into two branches. Then, the water flows to the working chamber 22 and the waste heat chamber 23 respectively. The water arriving at the working chamber 22 passes through passages formed between the second upper radiating fins 2122, and flows out of the second heat exchanging unit 2 via the working medium outlet 224 with a temperature of 15° C. The water arriving at the second waste heat chamber 23 passes through passages formed between the lower radiating fins 2132, and flows out of the second heat exchanging unit 2 via the waste medium outlet 234 to the outside of the seat body 201 with a temperature of 25° C.
The water from the second working medium outlet 224 with a temperature of 15° C. goes through the inlet 34 of the third heat exchanging unit 3, and is divided into two branches. Then the water flows to the working chamber 32 and the waste heat chamber 33 respectively. The water arriving at the working chamber 32 passes through passages formed between the third upper radiating fins 3122, and flows out of the third heat exchanging unit 3 via the working medium outlet 324 with a temperature of 10° C. The water with a temperature of 10° C. flows into the medium passage 202 formed in the seat body 201 to adjust the surface temperature of the seat body 201, thus enhancing comfortableness of the passenger(s) sitting on the seat. The water arriving at the third waste heat chamber 33 passes through passages formed between the third lower radiating fins 3132, and flows out of the third heat exchanging unit 3 via the waste medium outlet 334 to the outside of the seat body 201 with a temperature of 20° C.
The water flowing in the medium passage 202 of the seat body 201 may further be connected to or communicated with the inlet 14 of the first heat exchanging unit 1, so that the cooling medium may be recycled accordingly. As shown in
Although explanatory embodiments have been shown and described, it would be appreciated by those skilled in the art that changes, alternatives, and modifications all falling into the scope of the claims and their equivalents may be made in the embodiments without departing from spirit and principles of the present disclosure.
Number | Date | Country | Kind |
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201020281744.2 | Jul 2010 | CN | national |
Filing Document | Filing Date | Country | Kind | 371c Date |
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PCT/CN2011/077337 | 7/19/2011 | WO | 00 | 1/25/2013 |