Antenna device with direct differential input useable on an automated vehicle
11183751 ยท 2021-11-23
Assignee
Inventors
- George J. Purden (Westlake Village, CA, US)
- Shawn Shi (Thousand Oaks, CA, US)
- David W. Zimmerman (Noblesville, IN, US)
Cpc classification
H01Q1/3283
ELECTRICITY
H01Q1/3233
ELECTRICITY
International classification
H01P5/10
ELECTRICITY
Abstract
An illustrative example transmission device, which is useful for an automated vehicle, includes a substrate having a metal layer near one surface of the substrate and a waveguide area. The metal layer includes a slot that at least partially overlaps the waveguide area. A source of radiation includes a first radiation output situated on a first side of the slot and a second radiation output situated on a second, opposite side of the slot.
Claims
1. A transmission device, comprising: a substrate having a metal layer near one surface of the substrate and a waveguide area in the substrate, the metal layer including a slot that at least partially overlaps the waveguide area; and a component mounted on the substrate with one side facing the metal layer, the component including a source of radiation, the source of radiation including a first source output on the one side of the component and a second source output on the one side of the component, the first source output being situated on a first side of the slot, the second source output being situated on a second, opposite side of the slot, each of the first and second source outputs outputting radiation from the source that establishes an electromagnetic field between the first and second source outputs such that the radiation from the source is coupled into the waveguide area through the slot.
2. The transmission device of claim 1, wherein the radiation comprises differential radio frequency radiation, the first source output is a positive output of the differential radio frequency radiation, and the second source output is a negative output of the differential radio frequency radiation.
3. The transmission device of claim 1, wherein the one side of the component overlaps at least a portion of the slot and the first and second source outputs are on opposites sides of the portion of the slot.
4. The transmission device of claim 3, wherein the component comprises a ball grid array at least partially on the one side of the component; the first source output comprises a first ball of the ball grid array; and the second source output comprises a second ball of the ball grid array.
5. The transmission device of claim 1, wherein the slot is situated offset from a center of the waveguide area.
6. The transmission device of claim 1, wherein the radiation comprises radio frequency radiation; and the radio frequency radiation radiates outward from the waveguide area of the substrate.
7. The transmission device of claim 1, wherein the slot has a first portion oriented in a first direction and a second portion oriented in a second direction that is transverse to the first direction.
8. The transmission device of claim 7, wherein the first direction is perpendicular to the second direction.
9. The transmission device of claim 1, wherein the slot has a length that corresponds to one-half a wavelength of the radiation.
10. The transmission device of claim 1, wherein the slot has a dimension that establishes a resonant frequency of the radiation in the waveguide area.
11. The transmission device of claim 1, wherein the metal layer defines an outer surface of one side of the substrate; the metal layer has a thickness; and the slot has a depth that is equal to the thickness.
12. The transmission device of claim 1, comprising a solder mask between the metal layer and the one side of the component, the solder mask including a first source solder pad on the first side of the slot and a second source solder pad on the second side of the slot.
13. A method of making the transmission device of claim 1, the method comprising: establishing the slot in a metal layer on a first surface of the substrate at least partially overlapping the waveguide area of the substrate; situating the first output of the source of radiation on the first side of the slot; and situating the second output of the source of radiation on the second side of the slot.
14. The method of claim 13, comprising situating the slot in a position that is offset from a center of the waveguide area.
15. The method of claim 13, comprising providing the slot with a first portion oriented in a first direction and a second portion oriented in a second, different direction.
16. The method of claim 15, wherein the first direction is perpendicular to the second direction.
17. The method of claim 13, comprising providing the slot with a length that establishes a resonant frequency of radiation emitted by the waveguide area.
18. The method of claim 13, comprising providing the slot with a length that corresponds to one-half a wavelength of the radiation.
19. The transmission device of claim 1, wherein the radiation is directly coupled into the waveguide area from the first and second source outputs through the slot.
20. The transmission device of claim 1, wherein the radiation is directly coupled into the waveguide area independent of any intermediate line connectors between the first and second source outputs and the slot.
21. The transmission device of claim 1, wherein the first source output and the second source output are outside of the substrate.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION
(6) Embodiments of this invention provide signaling or detecting devices that are useful, for example, on vehicles that include a differential radiation source and a substrate integrated waveguide (SIW) transmitter with improved power and bandwidth characteristics. Such devices include a slot between radiation source outputs. The slot facilitates directly coupling radiation from the source into the waveguide.
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(9) The substrate body 34 includes a plurality of electrically conductive vias 36 arranged to establish a waveguide area 38 in the substrate 30. In this example the waveguide area 38 is a SIW.
(10) The example transmission device 22 includes a slot 40 in the metal layer 32. The slot 40 at least partially overlaps the waveguide area 38. In this example the entire slot 40 is situated in an overlapping relationship with the waveguide area.
(11) A source of radiation or signaling energy 42 includes a first source output 44 situated on one side of the slot 40 and a second source output 46 situated on an opposite side of the slot. Having the slot 40 between the source outputs 44 and 46 allows for establishing an electromagnetic field between the outputs across the slot 40. The slot 40 facilitates directly coupling energy or radiation from the source outputs 44 and 46 directly into the waveguide area 38. Such a direct coupling eliminates any transitions between the source and intermediate connectors such as microstrips that might otherwise be required to couple the radiation from the source to the waveguide area 38. The direct coupling provided by the example embodiment reduces or eliminates power loss and lessens or removes limits on bandwidth that otherwise would exist with intermediate connectors.
(12) In this example, the source 42 comprises a ball grid array source that provides differential radio frequency radiation or energy. The first output 44 and the second output 46 are the positive and negative outputs of the differential radiation. The slot 40 and the outputs 44 and 46 on opposite sides of the slot 40 makes it possible to directly couple such radiation directly into the waveguide area 38. One feature of embodiments of this invention is that they are effective and efficient at handling the positive and negative signal balancing for a differential radio frequency signal, which has otherwise been difficult or challenging.
(13) As best appreciated from
(14) As schematically shown by the arrow 60 in
(15) The slot 40 has a length that is selected to establish a resonant frequency of the radiation in the waveguide area 38. The length of the slot 40 in this example corresponds to one-half a wavelength of the radiation.
(16) The slot 40 is offset from a center of the waveguide area 38 to maximize the energy or radiation transferred or radiated into the waveguide area 38. The position of the slot 40 may be selected in various embodiments to tune the transmission device to meet the needs of a particular implementation. Those skilled in the art who have the benefit of this description will realize the precise offset position of the slot 40 to meet their needs.
(17) Selecting the slot length and position compensates for die output impedance or circuit discontinuities, for example.
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(19) The features represented in the drawings and described above are discussed in connection with a particular embodiment but they are not necessarily limited to that embodiment. Combinations of one or more features from one embodiment with one or more from another embodiment are possible to realize other embodiments.
(20) The preceding description is exemplary rather than limiting in nature. Variations and modifications to disclosed examples may become apparent to those skilled in the art that do not necessarily depart from the essence of this invention. The scope of legal protection given to this invention can only be determined by studying the following claims.