The present invention relates to a mounting base, and more particularly to a two-axis mounting base for supporting and rotating an instrument about two perpendicular axes, such as a radar, a radio telescope, a camera, a heliostat mirror, a solar panel and etc.
An alt-azimuth or altazimuth mounting base is a simple two-axis mounting base for supporting and rotating an instrument about two perpendicular axes, i.e., one vertical axis and one horizontal axis. Rotation about the vertical axis adjusts the azimuth (compass bearing) of the pointing direction of the instrument. Rotation about the horizontal axis changes the altitude (angle of elevation) of the pointing direction.
Conventional alt-azimuth mounting base can be described as follows:
There are two active perpendicular axes (implemented with two revolute joints) in the conventional alt-azimuth mounting base. Each joint is driven by a servo motor and gear box. This type of two-axis mounting base has the advantages of a simple structure and an easy implementation of a control module. However, this type of mounting base would be very bulky for supporting a heavy instrument.
As an improved structure for a bulky instrument, another type of alt-azimuth mounting base has a circular rail and several rollers to support the weight in the azimuth motion. However, the azimuth motion is still driven by a motor and a reducer on the vertical axis.
To sum up, it is desirable to propose a novel light structure of an alt-azimuth mounting base particularly for the heavy instrument.
The objective of the invention is to provide a mounting base for supporting and rotating an instrument about two perpendicular axes, which can solve the problems of a bulky structure, large driving power and error accumulations of the driving joints.
According to one embodiment, a mounting base for supporting and rotating an instrument about two perpendicular axes is disclosed, comprising: a vertical column; a rotatable platform attached to the column by a revolute joint; a rail around the column; at least one rod, an end of the at least one rod connecting with the revolute joint; at least one sliding mechanism, connecting with the other end of the at least one rod, the sliding mechanism sliding on the rail.
According to one embodiment, the column is located at the center of the rail. The mounting base includes two rods and two sliding mechanisms, one end of each rod is both connected with the revolute joint; the other end of each rod is connected to the two sliding mechanisms respectively; and the two sliding mechanisms slides on the rail. The at least one rod is connected with the revolute joint by a universal joint. The at least one sliding mechanism is connected with the other end of the at least one rod by a three-rotational-degrees-of-freedom joint. The at least one sliding mechanism includes a gear pair, a servo motor and a reducer attached to the servo motor, and one gear of the gear pair engages with the rail. A rack is provided on the inner lateral face of the rail; and the one gear of the gear pair engages with the rack. The gear pair is located between the column and the rack, and the gear pair is driven by the servo motor and the reducer. The column is connected with ground or an external base. The axis of the column is perpendicular to the axis of the revolute joint. The shape of the rail is circular or elliptical.
According to another embodiment, a mounting base for supporting and rotating an instrument about two perpendicular axes is disclosed, comprising: a vertical column; a rotatable platform attached to the column by a revolute joint; a rail around the column; at least one extendable linear actuator, an end of the at least one actuator connecting with the revolute joint; at least one sliding mechanism, connecting with the other end of the at least one extendable linear actuator, the sliding mechanism sliding on the rail.
According to another embodiment, the mounting base includes two extendable linear actuators and two sliding mechanisms, one end of each actuator is both connected with the revolute joint; the other end of each actuator is connected to the two sliding mechanisms respectively; and the two sliding mechanisms slides on the rail. The actuators are connected with the revolute joint by universal joints. The sliding mechanisms are connected with the actuators by three-rotational-degrees-of-freedom joints. Each sliding mechanism includes a gear pair, a servo motor and a reducer attached to the servo motor, and one gear of the gear pair engages with the rail. The rack is provided on the inner lateral face of the rail; and the one gear of the gear pair engages with the rack. The gear pair is located between the column and the rack, and the gear pair is driven by the servo motor and the reducer. The shape of the rail is circular or elliptical.
According to another embodiment, a mounting base for supporting and rotating an instrument about two perpendicular axes is disclosed, comprising: a vertical column; a rotatable platform attached to the column by a revolute joint; a circular rail around the column, two rods, an end of each rod both connecting with the revolute joint; two sliding mechanisms, connecting with the other end of each rod respectively, the sliding mechanism sliding on the rail; wherein the column is located at the center of the rail; the each rod is connected with the revolute joint by a universal joint; the two sliding mechanisms are connected with the other end of each rod by three-rotational-degrees-of-freedom joints; each three-rotational-degrees-of-freedom joint has three revolute joints intersecting at one point; each sliding mechanism includes a gear pair, a servo motor and a reducer attached to the servo motor; a rack is provided on the inner lateral face of the rail; and one gear of the gear pair engages with the rack; the gear pair is driven by the servo motor and the reducer; the axis of the column is perpendicular to the axis of the revolute joint.
According to another embodiment, a method for adjusting central angles of the mounting base is disclosed. The thresholds for the pitch angle of the rotatable platform are 0 and 90 degrees, the central angles of sliding mechanisms are θ0 and θ1, and the radius of the circular trail R is calculated as:
wherein d refers to an elevation difference between the connecting point of the rotatable platform and the rod and the horizontal revolute joint;
refers to an elevation angle between the connecting point and the horizontal revolute joint, Rp is an equivalent rotation radius, 2dt refers to a horizontal distance between the two connecting points of the rods and the rotatable platform; H0 refers to an equivalent height of the vertical column.
The length L of a rod is calculated as:
L=√{square root over (l02+(R sin θ0−d1)2)}
wherein l0=√{square root over ((H0+d)2+(Rp cos α−R cos θ0)2)}
The azimuth angle of the instrument is assumed as γ(−180≤γ≤180) and the pitch angle of the instrument is assumed ϕ(0≤ϕ≤90); the central angles of sliding mechanisms are assumed as θ1 and θ2, respectively.
the central angles of the mounting base can be derived as:
θ1=γ+Δθ
θ2=γ−Δθ
According to another embodiment, a radio telescope having a mounting base for supporting and rotating an instrument about two perpendicular axes is disclosed.
According to another embodiment, a radar having a mounting base for supporting and rotating an instrument about two perpendicular axes is disclosed.
According to another embodiment, a camera having a mounting base for supporting and rotating an instrument about two perpendicular axes is disclosed.
According to another embodiment, a heliostat mirror having a mounting base for supporting and rotating an instrument about two perpendicular axes is disclosed.
According to another embodiment, a solar panel having a mounting base for supporting and rotating an instrument about two perpendicular axes is disclosed.
The parallel mounting base for supporting and rotating an instrument about two perpendicular axes, can be operated with 0-90 degrees pitch motion and −180-180 degrees azimuth motion. The external instrument may be a radar, a radio telescope, a camera, a heliostat mirror and a solar panel. The mounting base has a simple structure and can be operated easily, avoiding the problems of a bulky structure and a large driving power for a heavy instrument supported by the traditional mounting base. The mounting base of the invention is a parallel mechanism, which has two sliding mechanism driving the rotatable platform at the same time, and thus has potential advantages of light weight, high pointing accuracy and low driving power. Moreover, the two sets of driving components (a servo motor, a reducer and a gear pair) are located at the bottom of the mounting base, and thus the weight of the rotating part is reduced. Further, the parallel driving can be operated with a 0-90 degrees pitch angle and an arbitrary azimuth angle, and also can reduce the driving power, equally distribute the joints errors and improve the pointing accuracy.
The foregoing objects, features and advantages of the present invention will become more apparent from the following detailed description of the present invention when taken in conjunction with the accompanying drawings. Embodiments of the present invention will now be further described in detail with reference to the accompanying drawings.
According to one embodiment, referring to
Referring to
Referring to
The vertical axis of column 8 may be located at the center of circular rail 1. In particular, the center of horizontal circular rail 1 may be located at the projection point of column 8.
In this embodiment, the upper ends of two rods 6 may be connected with first revolute joint 5 by universal joints 4. Two rods 6 may be connected with first revolute joint 5 in other ways.
In this embodiment, sliding mechanisms 2 are connected with the lower ends of two rods 6 by three-rotational-degrees-of-freedom (DoF) joints 3. More specifically, referring to
Referring to
Further, referring to
Column 8 may be connected with ground or an external base by second revolute joint 9. The axis of the column 8 may be perpendicular to the axis of first revolute joint 5.
In this embodiment, the shape of rail 1 may be circular. The shape of rail 1 may be elliptical or other shape surrounding column 8.
Referring to
Referring to
The length L of rod 6 is eventually determined as follows:
L=√{square root over (l02+(R sin θ0−d1)2)}
Where l0=√{square root over ((H0+d)2+(Rp cos α−R cos θ0)2)}
The azimuth angle of the instrument is assumed as γ(−180≤γ≤180) and the pitch angle of the instrument is assumed as ϕ(0≤ϕ≤90). Further, the central angles of sliding mechanism of D and A are assumed as θ1 and θ2, respectively. Then,
further, the inverse orientation can be derived as follows.
θ1=γΔθ
θ2=γ−Δθ
Which is used to control the two axis mounting base for a desired orientation.
Referring to
The pitch angle ϕ and azimuth angle γ according to θ1 and θ2 are calculated as follows.
Referring to
This two-axis mounting base is a parallel mechanism, i.e., it has two sliding mechanisms which actuate the rotatable platform at the same time, and thus has the potential advantage of a light weight and can be actuated with low power. In particular, the actuators (servo motors) are located at the bottom, and thus the weight is reduced. Further, the rods of the parallel mechanism are relatively thin and light. The sliding motion of the rods 6 (servo motor) leads to the alt-azimuth of the rotatable platform 7, and 0-90 degrees angle of elevation and arbitrary azimuth can be formed. This two-axis mounting base is light in weight and can be controlled with arbitrary azimuth.
Number | Date | Country | Kind |
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2016 1 0585489 | Jul 2016 | CN | national |
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Number | Date | Country | |
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20180023751 A1 | Jan 2018 | US |