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US-12618666-B2 - Antenna alignment apparatus

US12618666B2US 12618666 B2US12618666 B2US 12618666B2US-12618666-B2

Abstract

An antenna alignment apparatus includes a first antenna alignment unit. The first antenna alignment unit may include: a flange coupled to a transmit antenna jig providing two-axis rotational motion; a first bearing coupled to the flange; a cylinder inserted into the first bearing to rotate; an optical fiber collimator inserted into and aligned with the cylinder and having a variable focal length; an optical fiber mounted on the optical fiber collimator; and a plurality of screws contacting an external side surface of the optical fiber collimator through an external side surface of the cylinder and aligning a central axis of the optical fiber collimator and a central axis of the cylinder.

Inventors

  • Young-pyo Hong
  • Chihyun CHO
  • Seung-Kwan Kim
  • Jae-Keun YOO
  • No-Weon KANG
  • In-Ho Bae

Assignees

  • KOREA RESEARCH INSTITUTE OF STANDARDS AND SCIENCE

Dates

Publication Date
20260505
Application Date
20240125
Priority Date
20231124

Claims (16)

  1. 1 . An antenna alignment apparatus comprising a first antenna alignment unit, wherein the first antenna alignment unit comprises: a flange coupled to a transmit antenna jig providing two-axis rotational motion; a first bearing coupled to the flange; a cylinder inserted into the first bearing to rotate; an optical fiber collimator inserted into and aligned with the cylinder and having a variable focal length; an optical fiber mounted on the optical fiber collimator; and a plurality of screws contacting an external side surface of the optical fiber collimator through an external side surface of the cylinder and aligning a central axis of the optical fiber collimator and a central axis of the cylinder.
  2. 2 . The antenna alignment apparatus as set forth in claim 1 , wherein the optical fiber collimator comprises: a first cylinder; a second cylinder connected to the first cylinder and having an aligned central axis; a first lens disposed inside the first cylinder; a second lens disposed inside the second cylinder; and an optical fiber adapter disposed at one end of the first cylinder, and the optical fiber has one end mounted on the optical fiber adapter.
  3. 3 . The antenna alignment apparatus as set forth in claim 2 , wherein the end of the optical fiber is disposed at a focus of the first lens.
  4. 4 . The antenna alignment apparatus as set forth in claim 2 , wherein a distance between the first cylinder and the second cylinder is variable.
  5. 5 . The antenna alignment apparatus as set forth in claim 2 , further comprising: a third cylinder disposed between the first cylinder and the second cylinder, wherein one of the first cylinder and the second cylinder has a variable distance from the third cylinder.
  6. 6 . The antenna alignment apparatus as set forth in claim 1 , further comprising: a second antenna alignment unit disposed to be spaced apart from the optical fiber collimator, wherein the second antenna alignment unit comprises; a reflector disposed to be perpendicular to a central axis of the optical fiber collimator; and a reflector support portion supporting the reflector.
  7. 7 . The antenna alignment apparatus as set forth in claim 1 , further comprising: a transmit antenna mast; a transmit antenna jig coupled to the transmit antenna mast; and a bearing by which the transmit antenna jig provides rotational motion to the transmit antenna mast.
  8. 8 . The antenna alignment apparatus as set forth in claim 6 , further comprising: a receive antenna mast; and a receive antenna jig coupled to the receive antenna mast, wherein the second antenna alignment unit is disposed at the receive antenna jig.
  9. 9 . An antenna alignment method of an antenna alignment apparatus comprising a first antenna alignment unit and a second antenna alignment unit, wherein the first antenna alignment unit comprises: a flange coupled to a transmit antenna jig; a first bearing coupled to the flange; a cylinder inserted into the first bearing to rotate; an optical fiber collimator inserted into and aligned with the cylinder and having a variable focal length; and a plurality of screws contacting an external side surface of the optical fiber collimator through an external side surface of the cylinder and aligning a central axis of the optical fiber collimator and a central axis of the cylinder with each other, the second antenna alignment unit comprises: a reflector disposed to be perpendicular to a central axis of the optical fiber collimator; and a reflector support portion supporting the reflector, and the antenna alignment method comprises: coupling the flange of the first antenna alignment unit to a transmit antenna jig; and initially aligning the flange and the transmit antenna jig with each other by adjusting the screws to match a trajectory of laser beam of the optical fiber collimator with a central axis of the cylinder while rotating the cylinder.
  10. 10 . The antenna alignment method as set forth in claim 9 , further comprising: coupling the first antenna alignment unit and the transmit antenna jig, initially aligned with each other, to the transmit antenna mast; checking trajectory of laser beam of the optical fiber collimator while rotating the transmit antenna jig coupled to the transmit antenna mast through a bearing; controlling an elevation angle and an azimuth angle of the transmit antenna jig such that the trajectory of the laser beam of the optical fiber collimator is disposed in a center of the reflector; varying a focal length of the optical fiber collimator such that the laser beam of the optical fiber collimator is focused in the center of the reflector; and controlling an elevation angle and an azimuth angle of a receive antenna jig on which the reflector is mounted to provide reflected light, reflected from the reflector, to the optical fiber collimator.
  11. 11 . The antenna alignment method as set forth in claim 10 , further comprising: removing the first antenna alignment unit from the transmit antenna jig and attaching the transmit antenna reference plane transfer jig, to which the transmit antenna is attached, to the transmit antenna jig; removing the second antenna alignment unit from the receive antenna jig and attaching the receive antenna reference plane transfer jig, to which the receive antenna is attached, to the receive antenna jig; and providing an electrical signal to the transmit antenna to radiate electromagnetic waves, and receiving the electromagnetic waves from the receive antenna and converting the received electromagnetic waves into electrical signals.
  12. 12 . An antenna alignment apparatus comprising: a transmit antenna mast; a transmit antenna jig coupled to the transmit antenna mast and providing two-axis rotational motion; a bearing mounted on the transmit antenna mast and providing rotational motion of the transmit antenna jig with respect to the transmit antenna mast; a receive antenna mast; and a receive antenna jig coupled to the receive antenna mast and providing two-axis rotational motion.
  13. 13 . The antenna alignment apparatus as set forth in claim 12 , wherein the transmit antenna jig changes a first elevation angle and a first azimuth angle, and the receive antenna jig changes a second elevation angle and a second azimuth angle.
  14. 14 . The antenna alignment apparatus as set forth in claim 12 , further comprising: a first antenna alignment unit mounted on the transmit antenna jig, wherein the first antenna alignment unit comprises: a flange coupled to a transmit antenna jig providing two-axis rotational motion; a first bearing coupled to the flange; a cylinder inserted into the first bearing to rotate; an optical fiber collimator inserted into and aligned with the cylinder and having a variable focal length; an optical fiber mounted on the optical fiber collimator; and a plurality of screws contacting an external side surface of the optical fiber collimator through an external side surface of the cylinder and aligning a central axis of the optical fiber collimator and a central axis of the cylinder.
  15. 15 . The antenna alignment apparatus as set forth in claim 14 , further comprising: a second antenna alignment unit mounted on the receive antenna jig, wherein the second antenna alignment unit comprises: a reflector disposed to be perpendicular to a central axis of the optical fiber collimator; and a reflector support portion supporting the reflector.
  16. 16 . The antenna alignment apparatus as set forth in claim 12 , further comprising: a transmit antenna reference plane transfer jig coupled to the transmit antenna jig; a transmit antenna coupled to the transmit antenna reference plane transfer jig; a receive antenna reference plane transfer jig coupled to the receive antenna jig; and a receive antenna coupled to the receive antenna reference plane transfer jig.

Description

CROSS-REFERENCE TO RELATED APPLICATIONS This U.S. non-provisional patent application claims priority under 35 U.S.C. § 119 to Korean Patent Application 10-2023-0165131, filed on Nov. 24, 2023, in the Korean Intellectual Property Office, the entire contents of which are hereby incorporated by reference. TECHNICAL FIELD The present disclosure relates to an antenna alignment apparatus, and more particularly, to an antenna alignment apparatus for aligning an antenna using an optical device. BACKGROUND An antenna is a device disposed at the end of a wireless communication system, and antenna characteristics such as gain, polarization, and radiation pattern are key factors affecting the overall performance of a wireless communication system. Therefore, the development of techniques for precisely evaluating antenna characteristics is actively underway. Far-field and near-field measurement methods are used to evaluate antenna characteristics. Such measurement methods use an antenna under test (AUT) as either a transmit antenna for radiating electromagnetic waves generated from a signal source and a receive antenna for receiving the radiated electromagnetic waves. In the case of far-field measurement method, a separation distance between two antennas should be large enough to satisfy far-field conditions of antennas. In the case of near-field measurement method, a separation distance is less than the separation distance of the far-field measurement method but more than several wavelengths should be secured. To obtain accurate antenna characteristics, reference planes of transmit and receive antennas should be aligned to be parallel to each other and to place centers of the two reference planes on the same axis. In some cases, an antenna aperture is used as a reference plane for antenna alignment. However, it may be difficult to align apertures of the two antennas having a separation distance, and an electrically or optically complex and expensive antenna alignment system is required to align the apertures of the two antennas. In addition, an antenna is often covered with a radome used as a cover to protect the antenna, so that an aperture of the antenna is inaccessible. In this case, characteristics of the antenna should be evaluated by selecting a different mechanical reference plane other than the aperture. An antenna alignment method using an electrical method is disclosed in Korean Patent Publication No. 10-2005-0058044. The antenna alignment method is a method using vertical polarization and horizontal polarization of a radio-frequency (RF) signal received by a receive antenna. The antenna alignment method requires equipment such as an amplitude/phase detector and an amplitude/phase comparator, and alignment accuracy is reduced when a signal-to-noise ratio (SNR) of the RF signal measured at the receive antenna is low. An antenna alignment method using an optical method is also disclosed in Korean Patent Publication No. 10-2010-0060700. In the antenna alignment method disclosed in Korean Patent Publication No. 10-2010-0060700, apertures of a transmit antenna and a receive antenna are used as alignment reference planes, and a distance and an angle between the transmit antenna and the receive antenna are calculated using laser and the transmit or receive antenna is aligned based on the calculated location information. The above method is difficult to precisely measure three types of information of a distance, an elevation angle, and an azimuth angle, which are similar to those of a three-dimensional laser measuring device. This makes precise alignment difficult. In addition, an antenna alignment apparatus measures a distance using laser reflected from edges of apertures of a transmit antenna and a receive antenna. Therefore, it may be difficult to measure the distance using the reflected laser, and an error may occur in the measured distance due to a change in shape of the edges of the apertures. The present inventor provided an antenna alignment apparatus aligning an antennas using a light source unit in Korean Registered Patent (No. 10-1322416 B1). However, Korean Registered Patent (KR 10-1322416 B1) has difficulty in aligning an optical axis of a light source of a first antenna alignment unit and a center axis of a housing. SUMMARY An aspect of the present disclosure is to provide easy alignment of an antenna by adding a bearing structure and a laser focal length adjustment structure. Another aspect of the present disclosure is to provide initial alignment by mounting a first antenna alignment apparatus on a dummy mast and rotating an optical fiber collimator with a bearing structure to match central axes of the first antenna alignment apparatus and the optical fiber collimator. Another aspect of the present disclosure is to provide alignment of an elevation angle and an azimuth angle of a transmitting antenna jig, by mounting a first antenna alignment apparatus on the transmitting antenna jig, mounted on the r