IP Library Granted Patent US 12,511,616
Granted Patent B2
US 12,511,616 · App. 18/019,615 · Granted Dec 30, 2025

Antenna assembly

Inventors: Graham Murdoch (St Peters, AU); Ganesh Nagendra (St Peters, AU)
Assignee: SATO HOLDINGS KABUSHIKI KAISHA
G06Q10/087G06K7/10316H01Q1/2216H01Q7/00
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Quick Facts
Patent No.
US 12,511,616
App. No.
18/019,615
Granted
Dec 30, 2025
Kind
B2
Abstract

An RFID read antenna assembly ( 100 ) for use on a metal substrate ( 20 ) is used to read an RFID tag ( 22 ) carried by an article ( 12 ) positioned relative to the metal substrate. The antenna assembly comprises a high permeability layer ( 104 ) mountable to the metal substrate, an elongate carrier ( 114 ) mounted to the high permeability layer and defining a longitudinal axis ( 106 ), and at least one antenna coil ( 102 ) carried by the elongate carrier. The at least one antenna coil has a plurality of uniformly spaced transversely arranged portions ( 116 ) defining a sequence of antenna loops ( 105 ) of substantially constant width. The width of each antenna loop is substantially the same as the spacing between adjacent transversely arranged portions.

Claims (46)

1 . An RFID read antenna assembly for use on a metal substrate to read an RFID tag carried by an article positioned relative to the metal substrate, the antenna assembly comprising:

a high permeability layer mountable to the metal substrate;

an elongate carrier mounted to the high permeability layer and defining a longitudinal axis; and

at least one antenna coil carried by the elongate carrier, the at least one antenna coil having a plurality of uniformly spaced transversely arranged portions defining a sequence of antenna loops of substantially constant width, the width of each antenna loop being substantially the same as the spacing between adjacent transversely arranged portions;

wherein the metal substrate is foraminous to facilitate fluid flow through the substrate and past an article arranged on the substrate and in which the high permeability layer and the elongate carrier are configured to minimize disruption of the fluid flow past the article.

2 . The antenna assembly of claim 1 in which each transversely arranged portion forms a transverse part of one of the antenna loops of the at least one antenna coil and in which the at least one antenna coil has at least one pair of transversely arranged portions which cross over each other to define a figure of eight-type configuration to form at least one pair of contiguous antenna loops.

3 . The antenna assembly of claim 2 , in which the at least one antenna coil includes a plurality of pairs of spaced, transversely arranged portions and in which the spacing between the pairs of the transversely arranged portions of the at least one antenna coil is constant to form a sequence of antenna loops of substantially constant width.

4 . The antenna assembly of claim 3 in which the sequence of contiguous antenna loops defines a series of figure of eight-type configurations.

5 . The antenna assembly of claim 1 , in which a part of the at least one antenna coil has a serpentine configuration.

6 . The antenna assembly of claim 1 , in which a tag antenna of the RFID tag to be read is elongate and is configured to be placed transversely across the carrier and in which a width of the tag antenna approximates the width of each antenna loop of the at least one antenna coil.

7 . The antenna assembly of claim 1 , comprising at least two antenna coils arranged in a longitudinally staggered relationship on the carrier, the antenna coils having the same configuration as each other.

8 . The antenna assembly of claim 7 , in which the at least two antenna coils are configured to be driven sequentially.

9 . The antenna assembly of claim 7 , in which the at least two antenna coils are configured to be driven out of phase with each other.

10 . The antenna assembly of claim 9 , which comprises two antenna coils, and in which the two antenna coils are configured to be driven 90° out of phase with each other.

11 . The antenna assembly of claim 1 , in which the high permeability layer comprises a locator configured to cooperate with a complementary feature of the metal substrate for locating the high permeability layer relative to the metal substrate.

12 . The antenna assembly of claim 1 , in which the high permeability layer is a ferrite layer.

13 . The antenna assembly of claim 1 , which comprises a connector which is configured to be electrically connected to an RFID tag interrogator via a connection arrangement.

14 . The antenna assembly of claim 1 in which the high permeability layer is a first layer and in which the antenna assembly includes a second high permeability layer mountable, in functionally aligned relationship with the first high permeability layer, to a second metal substrate arranged in spaced, superjacent or subjacent relationship relative to the metal substrate carrying the first high permeability layer.

15 . An inventory tracking method for use with a foraminous metal substrate, the foraminous metal substrate carrying at least one antenna assembly, as claimed in claim 1 , the method comprising:

positioning an article relative to the antenna coil of the at least one antenna assembly, the article carrying an associated RFID tag and being positioned such that the associated RFID tag and the antenna coil of the at least one antenna assembly are functionally aligned for the associated RFID tag to be interrogated by an RFID tag interrogator via the at least one antenna assembly; and

interrogating the associated RFID tag by driving the at least one antenna assembly via the interrogator.

16 . The method of claim 15 , which comprises driving the at least two antenna coils of the at least one antenna assembly, sequentially via the interrogator to interrogate the associated RFID tag.

17 . The method of claim 15 , which comprises driving the at least two antenna coils of the at least one antenna assembly, out of phase with each other via the interrogator to interrogate the associated RFID tag.

18 . The method of claim 15 , in which the foraminous metal substrate comprises a plurality of discrete elongate compartments with each compartment having a longitudinal axis, an antenna assembly, as claimed in claim 1 , being arranged in each one of the compartments with the longitudinal axis of each antenna assembly being substantially co-axial with the longitudinal axis of its associated compartment, and in which the method comprises arranging the article in its associated compartment such that an antenna coil of the associated RFID tag is arranged transversely to the longitudinal axis of the antenna assembly.

19 . A method of modifying a foraminous metal substrate for tracking inventory, the method comprising:

electrically connecting at least one antenna assembly, as claimed in claim 1 , to an RFID tag interrogator; and

mounting the at least one antenna assembly to the foraminous metal substrate.

20 . An inventory tracking system for use with a foraminous metal substrate, the system comprising:

an RFID tag interrogator; and

at least one antenna assembly, as claimed in claim 1 , mounted to the foraminous metal substrate to communicate with the interrogator.

21 . The system of claim 20 , further comprising at least one RFID tag, the, or each, RFID tag being mountable to an article, the article, in use, being positioned relative to the foraminous metal substrate such that the RFID tag and the antenna coil of the at least one antenna assembly are functionally aligned for the associated RFID tag to be interrogated by the interrogator via the antenna assembly.

22 . The system of claim 20 which includes a connection arrangement via which the at least one antenna assembly communicates with the interrogator.

23 . The system of claim 22 in which the metal substrate is removably receivable in a holder and in which the connection arrangement includes at least one connector for establishing, and breaking, electrical contact between the at least one antenna assembly and the interrogator when the metal substrate is inserted into, and removed from, the holder, respectively.

24 . The system of claim 23 in which the metal substrate and the holder include complementary retention elements for retaining and locating the metal substrate in position relative to the holder when the metal substrate is inserted into the receiver to facilitate retention of the metal substrate relative to the holder on insertion of the metal substrate into the holder.

25 . The antenna assembly of claim 1 , wherein the RFID read antenna assembly is elongate and has a width smaller than a width of the article thereby allowing fluid flow through the foraminous metal substrate to the article.

26 . An inventory tracking system adapted for use in an incubator that comprises at least one foraminous metal substrate divided into a plurality of laterally arranged compartments for receiving respective articles in lateral arrangement, each compartment having a longitudinal axis, the inventory tracking system comprising:

a plurality of RFID read antenna assemblies adapted to align with and fit inside the plurality of compartments;

a first conductor carrier mountable to the at least one foraminous metal substrate, the conductor carrier connecting the plurality of RFID read antenna assemblies in operatively horizontally spaced relationship inside the laterally arranged

compartments so that each antenna assembly is arranged in a respective compartment with a longitudinal axis of each antenna assembly being substantially co-axial with the longitudinal axis of its associated compartment; and

an RFID tag interrogator in communication with the plurality of RFID read antenna assemblies via the first conductor carrier to read RFID tags carried by each article,

wherein each RFID read antenna assembly comprises:

a high permeability layer mountable to the metal substrate;

an elongate carrier mounted to the high permeability layer and defining a longitudinal axis; and

at least one antenna coil carried by the elongate carrier, and

wherein each RFID read antenna assembly is elongate and has a width smaller than a width of an article received in a respective compartment thereby allowing fluid flow through the foraminous metal substrate to the article.

27 . The inventory tracking system of claim 26 , wherein the incubator is a bodily fluid agitator and wherein the articles are bodily fluid bags.

Assignments (2)
CHANGE OF NAME Recorded Mar 5, 2026
From: SATO HOLDINGS KABUSHIKI KAISHA
To: SATO CORPORATION
Reel/Frame 075020/0001 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Sep 26, 2025
From: MURDOCH, GRAHAM; NAGENDRA, GANESH
To: SATO HOLDINGS KABUSHIKI KAISHA
Reel/Frame 072384/0541 →
Priority Claims (1)
AU 2020902729 · Aug 4, 2020 · national
Continuity (1)
Related Publication 20230289719A1 · Sep 14, 2023
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