1. Field of the Invention
The invention relates to an aiming apparatus using digital magnification.
2. Description of the Related Art
The present aiming apparatus in operation uses a measured distance of prey and the magnification of the aiming apparatus, through a ballistic compensation formula, to determine a ballistic compensation point. The ballistic compensation point is displayed by the screen of the aiming apparatus for a user to aim at prey before firing. For the present aiming apparatus, accuracy of the ballistic compensation point as well as hitting accuracy significantly depends on magnification accuracy.
An aiming apparatus using digital magnification has a magnification ring to adjust the digital magnification. The output voltage can be changed by rotation of the magnification ring. Different output voltages represent different digital magnifications. It is therefore understood that the accuracy of digital magnification significantly depends on the accuracy of the output voltage.
A known aiming apparatus using digital magnification with 4 times ratio (4-16×) is taken as an example for description.
The invention provides an aiming apparatus using digital magnification to solve the above problems. The aiming apparatus using digital magnification is provided with an increased output voltage at high digital magnification so as to improve the accuracy of high digital magnification, the accuracy of the ballistic compensation point, and the hitting accuracy.
The aiming apparatus using digital magnification in accordance with an exemplary embodiment of the invention includes a main cylinder body, an object lens, an eyepiece, an erector device and a magnification ring. The main cylinder body includes a front end connecting to the object lens and a rear end connecting to the eyepiece. The erector device is disposed within the main cylinder body for adjusting a digital magnification and includes an inner tube, an outer tube, a ring resistor board, a pogo pin and a parallel resistor. The inner tube jackets the outer tube, an end of the outer tube connects to the ring resistor board. The pogo pin is disposed in the outer tube and contacts the ring resistor board, and the ring resistor board connects to the parallel resistor in parallel. The magnification ring is rotatably disposed in the main cylinder body to rotate the outer tube with respect to the inner tube so as to change the contact position of the pogo ring on the ring resistor board.
In another exemplary embodiment, a resistance of the ring resistor board is less than or equal to 143K ohms
In yet another exemplary embodiment, a resistance of the parallel resistor is equal to 150 k ohms
In another exemplary embodiment, a maximum accumulated angle of the magnification ring is a multiple of 143 degrees.
In yet another exemplary embodiment, a maximum accumulated angle of the magnification ring is equal to 143 degrees.
In another exemplary embodiment, a rotation angle of the magnification ring decreases nonlinearly as the digital magnification increases linearly.
In yet another exemplary embodiment, an accumulated angle of the magnification ring increases nonlinearly as the digital magnification increases linearly.
In another exemplary embodiment, the outer tube further includes an outer surface and the pogo pin is disposed on the outer surface.
In yet another exemplary embodiment, the erector device further includes a pin mount disposed on the outer surface, and the pogo pin connects to the pin mount.
In another exemplary embodiment, the aiming apparatus using digital magnification further includes a display unit disposed within the main cylinder body for displaying the digital magnification.
In yet another exemplary embodiment, the display unit is a transmissive liquid crystal display (LCD).
In another exemplary embodiment, the display unit is an organic light-emitting diode (OLED).
In yet another exemplary embodiment, the display unit is an active-matrix organic light-emitting diode (AMOLED).
In another exemplary embodiment, the aiming apparatus using digital magnification further includes a focusing ring rotatably disposed in the eyepiece to adjust a focus.
A detailed description is given in the following embodiments with reference to the accompanying drawings.
The invention can be more fully understood by reading the subsequent detailed description and example with references made to the accompanying drawings, wherein:
The following description is made for the purpose of illustrating the general principles of the invention and should not be taken in a limiting sense. The scope of the invention is best determined by reference to the appended claims.
Referring to
The erector device is illustrated by
Referring to
Table 2 shows the relationship between digital magnification, rotation angle of the magnification ring, accumulated angle of the magnification ring, output voltage and output count number when the voltage division system of the ring resistor board is configured to include a parallel resistor. It can be seen from Table 2 that the rotation angle of the magnification ring is equal to 6 degrees, the accumulated angle of the magnification ring is equal to 143 degrees, the output voltage is equal to 0.2551 V, and the output count number is equal to 317 as the digital magnification is between 15 and 16 times. The rotation angle of the magnification ring is equal to 8 degrees, the accumulated angle of the magnification ring is equal to 137 degrees, the output voltage is equal to 0.2991 V, and the output count number is equal to 371 as the digital magnification is between 14 and 15 times. The rotation angle of the magnification ring is equal to 23 degrees, the accumulated angle of the magnification ring is equal to 23 degrees, the output voltage is equal to 0.4703 V, and the output count number is equal to 584 as the digital magnification is between 4 and 5 times. The rotation angle of the magnification ring is equal to 19 degrees, the accumulated angle of the magnification ring is equal to 42 degrees, the output voltage is equal to 0.3389 V, and the output count number is equal to 421 as the digital magnification is between 5 to 6 times. In one word, the digital magnification increases linearly from 4-5 times to 15-16 times, but the rotation angle of the magnification ring decreases nonlinearly and the accumulated angle of the magnification ring increases nonlinearly. It can be seen from Table 1 and Table 2 that the output voltage increases from 0.1385 V to 0.2551 V and the output account number increases from 172 to 317 as the digital magnification is between 15 and 16 times and the voltage division system of a ring resistor board is configured to include a parallel resistor. The output voltage increases from 0.1846 V to 0.2991 V and the output account number increases from 229 to 371 as the digital magnification is between 14 and 15 times and the voltage division system of a ring resistor board is configured to include a parallel resistor. It is obvious that the output voltage and the output count number of the high digital magnification increases significantly so as to increases the accuracy of the digital magnification of the high digital magnification, reduce ballistic compensation point position deviation and improve the firing accuracy when the voltage division system of a ring resistor board is configured to include a parallel resistor.
Table 2 shows that the maximum accumulated angle of the magnification ring is equal to 143 degrees. However, it has the same effect and falls into the scope of the invention if the maximum accumulated angle of the magnification ring is designed to a multiple of 143 degrees.
In the above embodiment of the invention, the display unit may be a transmissive liquid crystal display (LCD) or an organic light-emitting diode (OLED) or an active-matrix organic light-emitting diode (AMOLED).
Number | Date | Country | Kind |
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103129642 | Aug 2014 | TW | national |