The present invention relates to an image surveillance device, and more specifically, to an image surveillance device for conducting thermal energy generated by a heater to a lens module via a heat conduction sheet.
In general, an image surveillance device is mainly applied to outdoor video monitoring. That is, the image surveillance device is usually operated in an environment having a wide temperature variation range (about −40° C.˜50° C.). Accordingly, there are usually a heater and a heat-dissipating fin structure installed in the image surveillance device. A conventional design involves disposing a heater on a major component (e.g. a lens module) in the image surveillance device for heating the major component to its working temperature (e.g. higher than −10° C.). However, since the aforesaid design lacks a preferable heat conduction mechanism and the heating direction of the heater is not unidirectional, it may cause heat accumulation on the surface of the heater so as to reduce the thermal energy efficiency of the image surveillance device. Thus, the image surveillance device could not be heated to its working temperature quickly when the temperature around the image surveillance device is too low.
The present invention provides an image surveillance device. The image surveillance device includes a casing, a lens module, a casing, a heater, a heat conduction sheet, and a fan module. The lens module is disposed in the casing for capturing images. The heater is used for generating thermal energy. The heat conduction sheet is attached to the lens module and the heater for conducting the thermal energy generated by the heater to the lens module. The fan module is disposed on the heater for guiding airflow to cause heat convection in the casing.
The present invention further provides an image surveillance device. The image surveillance device includes a lens module, an illumination module, a heater, a fan device, a casing, a first transparent cover, and a second transparent cover. The lens module is used for capturing images. The illumination module is disposed at a side of the lens module for providing light to the lens module. The heater is disposed on the casing for generated thermal energy. The fan device is disposed on the heater for generating airflow to conduct the thermal energy generated by the heater. The casing has a first space and a second space formed therein. A first channel, a second channel, and a third channel are formed in the casing corresponding to an air outlet of the fan module. The lens module is contained in the first space. The illumination module is contained in the second space. The first channel is communicated with the first space for guiding the airflow generated by the fan module to flow toward the lens module. The first transparent cover is disposed on the casing and faces the lens module. The second channel is communicated with the first space for guiding the airflow to flow toward the first transparent cover. The second transparent cover is disposed on the casing and faces the illumination module. The third channel is communicated with the second space for guiding the airflow to flow toward the second transparent cover.
These and other objectives of the present invention will no doubt become obvious to those of ordinary skill in the art after reading the following detailed description of the preferred embodiment that is illustrated in the various figures and drawings.
Please refer to
More detailed description for the design of the fan module 20 is provided as follows. Please refer to
For improving the internal heat conduction efficiency of the image surveillance device 10, in this embodiment, a second channel 26 and a third channel 28 could be formed in the casing 12 corresponding to the air outlet 22 of the fan module 20 as shown in
Via the aforesaid designs, when the image surveillance device 10 is in an environment with an excessively-low temperature (e.g. lower than −10° C.), the image surveillance device 10 could activate the heater 18 and the fan module 20. Accordingly, the thermal energy generated by the heater 18 could be conducted to the lens module 14 via the high heat conductivity of the heat conduction sheet 16 and could be taken away by the airflow generated by the fan module 20. At this time, the airflow with the thermal energy could flow into the first space S1 via guidance of the first channel 24 and then flow toward the lens module 14, so as to establish a preferable heat convection mechanism. In such a manner, via the heat conduction design that the heat conduction sheet 16 is attached between the heater 18 and the lens module 14 and the airflow guiding design that the fan module 20 guides the airflow to flow toward the lens module 14 through the first channel 24, the thermal energy generated by the heater 18 could be conducted to the lens module 14 quickly, so that the lens module 14 could be heated to its working temperature (e.g. higher than −10° C.) quickly and work properly. Thus, the present invention could efficiently solve the prior art problem that the thermal energy is accumulated on the surface of the heater, so as to greatly improve the thermal energy efficiency of the image surveillance device 10, and could surely solve the problem that the major components of the image surveillance device 10 cannot work properly due to the excessively-low temperature.
Furthermore, via the airflow guiding design that the fan module 20 guides the airflow to flow toward the first transparent cover 15 through the second channel 26 and flow toward the second transparent cover 31 through the third channel 28, the thermal energy generated by the heater 18 could also be conducted to the first transparent cover 15 and the second transparent cover 31 quickly, so as to achieve the demisting purpose.
To be noted, the aforesaid heat conduction design that the heat conduction sheet 16 is attached between the heater 18 and the lens module 14 and forming of the first channel 24, the second channel 26, and the third channel 28 could be selectively omitted according to the practical application of the image surveillance device 10, so as to further simplify the design of the image surveillance device 10. For example, in another embodiment, the image surveillance device provided by the present invention could only adopt one of the heat conduction design that the heat conduction sheet is attached between the heater and the lens module and the airflow guiding design that the fan module guides the airflow to flow toward the lens module and the transparent covers through the channels respectively, or could just omit the second channel and the third channel for simplifying the channel design of the image surveillance device. As for other derived embodiments, the related description could be reasoned by analogy and omitted herein.
Furthermore, disposal of the fan module and the heater is not limited to the aforesaid embodiment. For example, please refer to
Compared with the prior art, the present invention adopts the heat conduction design that the heat conduction sheet is attached between the heater and the lens module and the airflow guiding design that the fan module guides the airflow to flow toward the lens module and the transparent covers through the channels, so that the thermal energy generated by the heater could be conducted to the lens module and the transparent covers quickly. In such a manner, the present invention could efficiently solve the prior art problem that the thermal energy is accumulated on the surface of the heater, so as to improve the thermal energy efficiency of the image surveillance device, solve the problem that the major components of the image surveillance device cannot work properly due to the excessively-low temperature, and achieve the demisting purpose.
Those skilled in the art will readily observe that numerous modifications and alterations of the device and method may be made while retaining the teachings of the invention. Accordingly, the above disclosure should be construed as limited only by the metes and bounds of the appended claims.
| Number | Date | Country | Kind |
|---|---|---|---|
| 104136557 | Nov 2015 | TW | national |