Binocular infrared thermal imager
By introducing a binocular design, switching between infrared thermal imaging and visible light modules, and a laser ranging module into the infrared thermal imager, the problems of limited functionality and poor visual perception of existing infrared thermal imagers have been solved, enabling efficient observation and accurate ranging in various environments.
Patent Information
- Application Number
- CN202422887900.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-11-25
- Publication Date
- 2025-11-07
- Estimated Expiration
- 2034-11-25
AI Technical Summary
Existing infrared thermal imagers are limited in function, mostly using monoculars, resulting in poor visual perception and making them unsuitable for use in various environmental conditions.
A binocular infrared thermal imager was designed, equipped with an infrared thermal imaging module and a visible light module, supporting dual-channel switching between infrared thermal imaging and visible light, realizing binocular observation by combining the first and second eyepieces, and equipped with a laser ranging module to provide distance parameter information.
It enables multi-functional use in both day and night environments, enhances the visual experience, provides a binocular observation experience and long-distance laser ranging function, and prevents light leakage from the display screen.
Smart Images

Figure CN223528122U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to thermal imager technical field especially relates to a binocular infrared thermal imager. BACKGROUND
[0002] Infrared thermal imager is relied on the infrared radiation of target itself to form thermal image, can observe target and acquire image information under the condition that complete darkness or ambient light is very weak, also called passive infrared night vision device. However, the existing infrared thermal imager, single function, it is inconvenient to use under a variety of environmental conditions, and most are monocular, and its observation visual experience is not good. UTILITY MODEL CONTENT
[0003] The utility model aims at providing a binocular infrared thermal imager, and the function is rich and varied, through setting up infrared thermal imaging module, visible light module, can realize infrared thermal imaging and visible light's double channel switching observation, can use under day / night etc.
[0004] In order to realize the above-mentioned purpose, the following technical scheme is adopted:
[0005] A binocular infrared thermal imager, including shell, control mainboard and battery built-in in the shell, button module embedded in the top of the shell, eyepiece module embedded in the rear end of the shell, and infrared thermal imaging module, visible light module, laser ranging module embedded in the front end of the shell, the control mainboard is connected with battery, button module, eyepiece module, infrared thermal imaging module, visible light module, laser ranging module electricity respectively, the eyepiece module includes the first eyepiece, second eyepiece that is distributed left and right, and each display screen in the inboard of first eyepiece, second eyepiece, the shell is equipped with an eyepiece support, and the eyepiece support is opened with an installation slot in the first eyepiece, second eyepiece respectively, the first eyepiece, second eyepiece are connected with the inboard wall of corresponding installation slot respectively, the slot bottom of installation slot is opened with display window, and the display screen is embedded in the display window installation.
[0006] Preferably, the first eyepiece, second eyepiece are respectively equipped with diopter adjusting part for adjusting diopter, and the first eyepiece and second eyepiece are equipped with pupil distance adjusting part.
[0007] Preferably, the shell is embedded with USB interface, HDMI interface respectively connected with control mainboard electricity on one side.
[0008] Preferably, the shell comprises a casing arranged at the middle part, a front shell snap-connected to the front end of the casing, and a rear shell snap-connected to the rear end of the casing; the eyepiece module is embedded on the rear shell; the infrared thermal imaging module, the visible light module and the laser ranging module are embedded on the front shell, and the infrared thermal imaging module is located between the visible light module and the laser ranging module.
[0009] Preferably, the infrared thermal imaging module comprises an infrared thermal imaging core built-in the front shell, and an infrared lens arranged at the front end of the front shell; the visible light module comprises a visible light core built-in the front shell, and a visible light lens arranged at the front end of the front shell.
[0010] Preferably, the bottom of the shell is detachably connected with a battery compartment, and the battery is built-in the battery compartment.
[0011] Preferably, the bottom of the shell is provided with a mounting hole for connecting and fixing with an external support.
[0012] Preferably, the top of the shell is further embedded with a laser ranging button electrically connected with the control mainboard.
[0013] Preferably, one side of the shell is further provided with a fixing ring for mounting a wrist strap.
[0014] With the above scheme, the beneficial effects of the utility model are as follows:
[0015] The binocular infrared thermal imager provided by the utility model has rich and various functions, 1) the infrared thermal imaging module and the visible light module are arranged, so that the dual-channel switching observation of infrared thermal imaging and visible light can be realized, and the binocular infrared thermal imager can be used in day / night environment; 2) the first eyepiece and the second eyepiece are arranged to realize binocular observation and enhance the observation visual sense; 3) the laser ranging module is arranged, so that the long-distance laser ranging of the target can be realized, and distance parameter information is provided for the thermal imaging image; 4) the display screen is embedded in the deep part of the shell, so that the light of the display screen is prevented from being exposed in the dark night, and the light leakage prevention purposes of the first eyepiece and the second eyepiece are achieved. BRIEF DESCRIPTION OF DRAWINGS
[0016] Fig. 1 It is a first perspective view of the utility model;
[0017] Fig. 2 It is a second perspective view of the utility model;
[0018] Fig. 3 It is a third perspective view of the utility model;
[0019] Fig. 4 It is an exploded view of the utility model;
[0020] Fig. 5 It is a sectional structure schematic view of the eyepiece module of the utility model.
[0021] Fig. 6 The utility model discloses a principle block diagram;
[0022] Among them, the drawing mark explains:
[0023] 1 - shell, 2 - control mainboard,
[0024] 3 - battery, 4 - key module,
[0025] 5 - eyepiece module, 6 - infrared thermal imaging module,
[0026] 7 - visible light module, 8 - laser ranging module,
[0027] 9 - USB interface, 10 - HDMI interface,
[0028] 101 - battery compartment, 102 - mounting mouth,
[0029] 103 - laser ranging button, 104 - fixed ring,
[0030] 11 - casing, 12 - front shell,
[0031] 13 - rear shell, 51 - first eyepiece,
[0032] 52 - second eyepiece, 53 - display screen,
[0033] 54 - eyepiece support, 55 - mounting groove,
[0034] 56 - diopter adjusting piece, 57 - pupil distance adjusting piece,
[0035] 61 - infrared thermal imaging core, 62 - infrared lens,
[0036] 71 - visible light core, 72 - visible light lens. DETAILED DESCRIPTION
[0037] The utility model will be further explained in detail in combination with the drawings and examples. It can be understood that the specific examples described here are only used to explain the utility model, and not limit the utility model. In addition, it needs to be explained that in order to facilitate the description, only the part related to the utility model is shown in the drawing, not all structures.
[0038] In the utility model, unless another definite provision and limitation, first feature is in second feature "on" or "under" can include that first and second features are in direct contact, also can include that first and second features are not in direct contact but contact through other feature between them.Moreover, first feature is in second feature "on", "above" and "upper surface" include that first feature is in second feature directly above and obliquely above, or just indicate that first feature horizontal height is higher than second feature.First feature is in second feature "under", "below" and "under surface" include that first feature is in second feature directly below and obliquely below, or just indicate that first feature horizontal height is less than second feature.
[0039] In the description of the embodiment, the terms "upper", "lower", "left", "right" and other orientation or position relationship are based on the orientation or position relationship shown in the drawings, only for the convenience of description and simplification of operation, and do not indicate or imply that the device or element referred to must have a particular orientation, be constructed and operated in a particular orientation, therefore cannot be understood as a limitation on the utility model.In addition, the terms "first", "second" are only used to distinguish in description, and have no special meaning.
[0040] Referring to Figs. 1 to 6 The utility model provides a binocular infrared thermal imager, including shell 1, control mainboard 2 and battery 3 of built -in in shell 1, the key module 4 of embedding in the top of shell 1, the eyepiece module 4 of embedding in the rear end portion of shell 1 and the infrared thermal imaging module 6 of embedding in the front end portion of shell 1, visible light module 7, laser ranging module 8, specifically, the key module 4 includes two rows of keys, and the number of each row of keys is three, is used for controlling color plate, amplification, photographing, power, menu, fused image respectively.
[0041] Control mainboard 2 is connected with battery 3, key module 4, eyepiece module 5, infrared thermal imaging module 6, visible light module 7, laser ranging module 8 respectively, through setting laser ranging module 8, can realize target long distance laser ranging, provides distance parameter information.Eyepiece module 5 includes the first eyepiece 51, second eyepiece 52 of left and right distribution and each one display screen 53 in the inboard of first eyepiece 51, second eyepiece 52, through setting first eyepiece 51, second eyepiece 52, enhances binocular observation visual sense, specifically, display screen 53 is OLED display screen, and first eyepiece 51, second eyepiece 52 are optical magnifying eyepiece.Because the image on OLED display screen is electronic after reducing, the human eye cannot clearly observe, through increasing first eyepiece 51, second eyepiece 52 in the rear end of OLED display screen, the human eye is observed conveniently.
[0042] The shell 1 is internally provided with an eyepiece support 54, and the eyepiece support 54 is provided with an installation groove 55 corresponding to the first eyepiece 51 and the second eyepiece 52; the first eyepiece 51 and the second eyepiece 52 are connected with the inner side wall of the corresponding installation groove 55; a display window is formed in the middle of the groove bottom of the installation groove 55, and the display screen 53 is embedded in the display window.
[0043] The first eyepiece 51 and the second eyepiece 52 are respectively provided with a diopter adjusting piece 56 for adjusting the diopter, and the diopter adjusting piece 56 is arranged to adjust the diopter of the first eyepiece 51 and the second eyepiece 52, so as to adapt to the vision difference of different users, especially for users with myopia or hyperopia, so that the user can obtain a clear image when observing the sample without wearing glasses.
[0044] The first eyepiece 51 and the second eyepiece 52 are respectively provided with a diopter adjusting piece 56 for adjusting the diopter, and the diopter adjusting piece 56 is arranged to adjust the diopter of the first eyepiece 51 and the second eyepiece 52, so as to adapt to the vision difference of different users, especially for users with myopia or hyperopia, so that the user can obtain a clear image when observing the sample without wearing glasses.
[0045] The side of the shell 1 is embedded with a USB interface 9 and an HDMI interface 10 which are electrically connected with the control mainboard 2. The side of the shell 1 is also provided with a fixing ring 104 for installing a wrist strap. Specifically, the fixing ring 104 is arranged on the side opposite to the USB interface 9 and the HDMI interface 10.
[0046] The shell 1 includes a middle casing 11, a front shell 12 which is clamped and connected to the front end of the casing 11, and a rear shell 13 which is clamped and connected to the rear end of the casing 11; the eyepiece module 5 is embedded on the rear shell 13; the infrared thermal imaging module 6, the visible light module 7 and the laser ranging module 8 are embedded on the front shell 11, and the infrared thermal imaging module 6 is located between the visible light module 7 and the laser ranging module 8.
[0047] The infrared thermal imaging module 6 includes an infrared thermal imaging core 61 built in the front shell 11 and an infrared lens 62 arranged at the front end of the front shell 12; the visible light module 7 includes a visible light core 71 built in the front shell 12 and a visible light lens 72 arranged at the front end of the front shell 12, and the visible light core 71 is built in a low-light night vision chip, which can observe the target in the daytime and at night in low illumination. The bottom of the shell 1 is detachably connected with a battery compartment 101, and the battery 3 is built in the battery compartment 101. Specifically, the battery 3 is a 18650 battery.
[0048] The binocular infrared thermal imager can realize binocular observation of a target and can be used by hand. The mounting hole 102 is connected and fixed with the external support, and the infrared thermal imager is erected for use. In addition, the laser ranging button 103 which is electrically connected with the control mainboard 2 is embedded on the top of the shell 1, so that the external trigger ranging function is realized.
[0049] The above is only a preferred embodiment of the utility model, and is not used for limiting the utility model, and any modification, equivalent replacement and improvement within the spirit and principle of the utility model should be included in the protection scope of the utility model. Apparently, the above embodiment of the utility model is only for clearly explaining the utility model, and is not limited to the implementation mode of the utility model. For ordinary skilled in the art, various obvious changes, re-adjustment and replacement can be made without departing from the protection scope of the utility model. Here, all the implementation modes cannot be exhausted. Any modification, equivalent replacement and improvement within the spirit and principle of the utility model should be included in the protection scope of the utility model claim.
Claims
1. A binocular infrared thermal imager, characterized in that, The application relates to a multifunctional infrared thermal imaging and visible light laser ranging binocular, which comprises a shell, a control mainboard and a battery built in the shell, a key module embedded in the top of the shell, an eyepiece module embedded in the rear end of the shell, and an infrared thermal imaging module, a visible light module and a laser ranging module embedded in the front end of the shell; the control mainboard is electrically connected with the battery, the key module, the eyepiece module, the infrared thermal imaging module, the visible light module and the laser ranging module; the eyepiece module comprises first and second eyepieces distributed on the left and right sides and a display screen arranged on the inner side of each of the first and second eyepieces; an eyepiece support is arranged in the shell, and an installation groove is arranged in the eyepiece support and corresponds to each of the first and second eyepieces; the first and second eyepieces are connected with the inner side wall of the corresponding installation groove; a display window is arranged in the middle of the groove bottom of the installation groove, and the display screen is embedded in the display window.
2. The binocular infrared thermal imager of claim 1, wherein, A dioptric power adjusting part for adjusting dioptric power is arranged on each of the first and second eyepieces; and a pupil distance adjusting part is arranged between the first and second eyepieces.
3. The binocular infrared thermal imager of claim 1, wherein, A USB interface and an HDMI interface electrically connected with the control mainboard are embedded in one side of the shell.
4. The binocular infrared thermal imager of claim 1, wherein, The shell comprises a shell body arranged in the middle, a front shell clamped and connected to the front end of the shell body, and a rear shell clamped and connected to the rear end of the shell body; the eyepiece module is embedded in the rear shell; the infrared thermal imaging module, the visible light module and the laser ranging module are embedded in the front shell, and the infrared thermal imaging module is located between the visible light module and the laser ranging module.
5. The binocular infrared thermal imager of claim 4, wherein, The infrared thermal imaging module comprises an infrared thermal imaging core built in the front shell and an infrared lens arranged at the front end of the front shell; and the visible light module comprises a visible light core built in the front shell and a visible light lens arranged at the front end of the front shell.
6. The binocular infrared thermal imager of claim 1, wherein, A battery compartment is detachably connected to the bottom of the shell, and the battery is built in the battery compartment.
7. The binocular infrared thermal imager of claim 1, wherein, An installation opening for connecting and fixing an external support is arranged in the bottom of the shell.
8. The binocular infrared thermal imager of claim 1, wherein, A laser ranging key electrically connected with the control mainboard is further embedded in the top of the shell.
9. The binocular infrared thermal imager of claim 3, wherein, A fixing ring is further arranged on one side of the shell and used for mounting a wrist strap.