Exterior side mirrors for vehicles are subject to the climatic conditions of the surrounding environment. In cold conditions, the mirror may collect frost or snow. In warm and humid conditions, the mirror may collect moisture as fog. Systems for defrosting or defogging often include a resistance-heating wires. Such systems can take time to heat up, thereby also lengthening the time for defrosting or defogging.
A side mirror according to an example of the present disclosure includes a housing, a mirror moveably attached with the housing, and a Peltier element mounted in the housing adjacent the mirror.
In further examples, there can also be a controller that is electrically connected with the Peltier element. The controller is configured to apply an electric current to the Peltier element in an electric current direction that depends on temperature and humidity data.
The various features and advantages of the present disclosure will become apparent to those skilled in the art from the following detailed description. The drawings that accompany the detailed description can be briefly described as follows.
The Peltier element 28 is a device that operates based on the Peltier effect. Applied electric current induces a temperature difference between the sides 28a and 28b. Current applied in a first electric current direction causes heating of the first side 28a and cooling of the second side 28b. Current in a second, opposite direction causes cooling of the first side 28a and heating of the second side 28b. The construction of Peltier elements is generally known and is thus not described further herein.
In this example, the Peltier element 128 is held/mounted in an interior housing piece 130. For example, the Peltier element 128 can be press fit into the interior housing pieces and/or secured with adhesive or mechanical retainer or fastener. The interior housing piece 130 and the housing 124 may be, but are not limited to, molded plastic pieces. The interior housing piece 130 may be secured to the housing 124, such as by a mechanical fastener or retainer or mechanical snap-fit. The interior housing piece 130 also secures an actuator 132, which is operable to move the mirror 126 relative to the housing 124.
The side mirror 122 additionally includes several features that facilitate thermal control. The side mirror includes a heat distributer 134 and a heat sink 136. The heat distributer 134 facilitates uniform and rapid thermal transfer between the mirror 126 and the Peltier element 128. The heat distributer 134 is located between the Peltier element 128 and the mirror 126 and is in contact with the mirror 126, as also shown in
The metal layer 134a covers, and is in contact with, a large portion of the second side 128b of the mirror 126. For instance, the metal layer 134a is in contact with an area of the second side 128b that is larger than the area of the first side 128a of the Peltier element 128 that faces toward the mirror 126. The metal layer 134a thus serves to enlarge the thermal footprint of the Peltier element 128. In one further example, the metal layer 134a is in contact with more than 50% of the interior side 126b of the mirror 126, but more preferably is in contact with more than 90% of interior side 126b.
The heat sink 136 serves to help remove heat from the Peltier element 128. For example, the heat sink 136 is attached to the Peltier element 128, such as by mechanical attachment or adhesive. Although not limited, the heat sink 136 in the illustrated example is a plate and fin heat sink. The fins provide surface area for exposure to airflow through the side mirror 122 to remove heat.
Referring also to
Referring also to
The defrost and defog operations of the side mirror 122 can be automated. For example, the controller 138 is configured to apply an electric current to the Peltier element in an electric current direction that depends on the temperature and humidity data from the sensors 140/142. That is, if conditions indicative of frost or snow are present, the controller 138 selects to apply current in a first electric current direction to cause heating of the first side 128a of the Peltier element 128. The heat distributer 134 rapidly conducts the heat to spread heat across the surface of the mirror 126 to melt the frost/snow. If conditions indicative of fog are present, the controller 138 selects to apply current in either the first or second electric current direction to cause heating or cooling of the first side 128a of the Peltier element 128. The heat distributer 134 rapidly conducts the heat or cold across the surface of the mirror 126 to melt the fog.
The conditions that are indicative of frost or snow or fog may be in a data lookup table in a memory in the controller 138. The controller 138 may periodically check instant values of temperature and humidity data from the sensors 140/142 against the lookup table to thereby determine whether to 1) remain deactivated (no current), 2) activate to apply current in the first current direction, 3) activate to apply current in the second direction, or 4) deactivate to stop application of current from 2) or 3).
Rather than be automated, the operation of the Peltier element 128 may be manual. For manual operation, the sensors 140/142 may be excluded from the system. In manual operation, a user may activate or deactivate the Peltier cell 128 when the user perceives a need to defrost or defog the side mirror 122. The controller 138 may still be used, but with less capability. For instance, the controller 138 may be programmed to deactivate the Peltier element 128 after a predetermined time period of activation or once a predetermined temperature threshold is met. This also serves to protect the Peltier element from damage due to extended operation or overheating.
Although a combination of features is shown in the illustrated examples, not all of them need to be combined to realize the benefits of various embodiments of this disclosure. In other words, a system designed according to an embodiment of this disclosure will not necessarily include all of the features shown in any one of the Figures or all of the portions schematically shown in the Figures. Moreover, selected features of one example embodiment may be combined with selected features of other example embodiments.
The preceding description is exemplary rather than limiting in nature. Variations and modifications to the disclosed examples may become apparent to those skilled in the art that do not necessarily depart from this disclosure. The scope of legal protection given to this disclosure can only be determined by studying the following claims.
Number | Name | Date | Kind |
---|---|---|---|
2693589 | Hopkins | Nov 1954 | A |
3686473 | Shirn | Aug 1972 | A |
3732702 | Desch | May 1973 | A |
4071736 | Kamerling | Jan 1978 | A |
4631391 | Tiepke | Dec 1986 | A |
5079406 | Nagy | Jan 1992 | A |
5155625 | Komatsu | Oct 1992 | A |
5440425 | Kadooka et al. | Aug 1995 | A |
5594585 | Komatsu | Jan 1997 | A |
6290361 | Berzin | Sep 2001 | B1 |
7342707 | Roberts et al. | Mar 2008 | B2 |
8670035 | Robert | Mar 2014 | B2 |
20050000559 | Horio | Jan 2005 | A1 |
20080121034 | Lynam | May 2008 | A1 |
20080257050 | Watanabe | Oct 2008 | A1 |
20100163220 | Nakajima | Jul 2010 | A1 |
20100199686 | Taras et al. | Aug 2010 | A1 |
Number | Date | Country |
---|---|---|
201114841 | Sep 2008 | CN |
205872001 | Jan 2017 | CN |
106476699 | Mar 2017 | CN |
206589791 | Oct 2017 | CN |
Number | Date | Country | |
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20190161013 A1 | May 2019 | US |