IP Library › Granted Patent US 12,737,576
Granted Patent B2
US 12,737,576 · App. 18/749,365 · Granted Sep 15, 2026

Near co-axial polarized illuminator apparatuses and uses thereof

Inventors: Chen Feng (Snohomish, WA); Patrick Anthony Giordano (Glassboro, NJ); Tao Xian (Mount Laurel, NJ); Eric Alfons Youngblood (Matthews, NC); Paul R. Poloniewicz (Waxhaw, NC)
Assignee: Hand Held Products, Inc.
G06K7/10742G06K7/10732G06K7/10831
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Quick Facts
Patent No.
US 12,737,576
App. No.
18/749,365
Granted
Sep 15, 2026
Kind
B2
Abstract

Embodiments of the present disclosure include near co-axial polarized illuminator apparatuses and uses thereof. The near co-axial polarized illuminator is internally positionable in near co-axial alignment with one or more imager(s) utilized to capture a representation of a field of view illuminated by the near co-axial polarized illuminator. Embodiments include small form factor reader(s) that utilize a near co-axial polarized illuminator to improve illumination of a field of view captured via multiple imagers for detecting and/or decoding machine-readable symbologies, such as barcodes. Some embodiments include a DPM channel image sensor, a standard range channel image sensor, a near co-axial polarizer light source positioned adjacent to the DPM channel image sensor and adjacent to the standard range channel image sensor, a near co-axial polarizer aligned with the near co-axial polarizer light source, and an analyzer aligned with the DPM channel image sensor and/or the standard range channel image sensor.

Claims (49)

1 . An apparatus comprising:

a Direct Part Marking (DPM) channel image sensor configured to capture a Direct Part Marking (DPM) channel field of view;

a standard range channel image sensor configured to capture a standard range channel field of view that is broader than the DPM channel field of view, wherein the standard range channel field of view is aligned with the DPM channel field of view;

a near co-axial polarized light source positioned adjacent to the DPM channel image sensor and adjacent to the standard range channel image sensor, wherein the near co-axial polarized light source is configured to project polarized illumination in a near co-axial alignment with each of the DPM channel field of view and the standard range channel field of view; and

a near co-axial aimer light source configured to project an aimer illumination in near co-axial alignment with each of the DPM channel field of view, the standard range channel field of view, and the polarized illumination, wherein the apparatus is configured to capture a representation of a machine-readable symbology illuminated by the polarized illumination and included within the DPM channel field of view and the standard range channel field of view.

2 . The apparatus according to claim 1 , further comprising:

a near co-axial polarizer lens aligned with the near co-axial polarized light source.

3 . The apparatus according to claim 1 , further comprising:

a protective window aligned in front of the DPM channel image sensor, the standard range channel image sensor, and the near co-axial polarized light source.

4 . The apparatus according to claim 1 , further comprising a protective window, wherein a polarizer and an analyzer are secured to the protective window.

5 . The apparatus according to claim 1 , wherein an analyzer is aligned with the DPM channel image sensor.

6 . The apparatus according to claim 1 , the apparatus further comprising an illumination board comprising a jut out, a first hole, and a second hole, wherein the jut out is adjacent to a center point between the first hole that receives the DPM channel image sensor and the second hole that receives the standard range channel image sensor, wherein the near co-axial polarized light source is electronically coupled on the jut out.

7 . The apparatus according to claim 1 , the apparatus further comprising at least one additional illuminator.

8 . The apparatus according to claim 1 , the apparatus further comprising a ring illuminator.

9 . The apparatus according to claim 1 , the apparatus further comprising a diffusion illuminator.

10 . The apparatus according to claim 1 , wherein the near co-axial aimer light source is positioned adjacent to the DPM channel image sensor and adjacent to the standard range channel image sensor, wherein the near co-axial aimer light source is positioned across a center point between the DPM channel image sensor and the standard range channel image sensor.

11 . The apparatus according to claim 1 , further comprising a chassis that houses the DPM channel image sensor, the standard range channel image sensor, the near co-axial polarized light source, the near co-axial polarizer, and an analyzer.

12 . The apparatus according to claim 1 , further comprising a processor that controls activation of the DPM channel image sensor, the standard range channel image sensor, and/or the near co-axial polarized light source.

13 . The apparatus according to claim 1 , further comprising a processor communicatively coupled with the DPM channel image sensor and/or the standard range channel image sensor, wherein the processor receives a captured image from the standard range channel image sensor and/or the standard range channel image sensor, and wherein the processor processes the captured image via at least one image processing algorithm.

14 . The apparatus according to claim 1 , wherein the DPM channel image sensor and the standard range channel image sensor are vertically aligned, and wherein the near co-axial polarized light source is positioned to a side adjacent to a center point between the DPM channel image sensor and the standard range channel image sensor.

15 . The apparatus according to claim 1 , further comprising:

a first board; and

a second board,

wherein the DPM channel image sensor and the standard range channel image sensor are electronically coupled to the first board, and wherein the near co-axial polarized light source is electronically coupled to the second board.

16 . The apparatus according to claim 15 , further comprising:

a third board; and

at least one ring illuminator light source electronically coupled to the third board.

17 . The apparatus according to claim 1 , further comprising:

a Direct Part Marking (DPM) channel lens aligned with the DPM channel image sensor; and

a standard range channel lens aligned with the standard range channel image sensor.

18 . The apparatus according to claim 1 , further comprising:

an aimer light source; and

a plurality of aimer folding optics, wherein the plurality of aimer folding optics are aligned to receive an aimer light generated by the aimer light source and redirect the aimer light in near co-axial alignment with the DPM channel image sensor and the standard range channel image sensor.

19 . The apparatus according to claim 1 , further comprising:

a ring illuminator assembly comprising a ring lens, a ring illuminator board, and at least one ring illuminator light source electronically coupled to the ring illuminator board, wherein the ring lens is aligned in front of the at least one ring illuminator light source;

a diffusion illuminator assembly comprising a diffusion illuminator and a diffusion back light reflector;

a protector assembly comprising a protector window, a near co-axial polarizer, and an analyzer;

at least one back light illumination board, wherein the near co-axial polarizer light is electronically coupled to the at least one back light illumination board;

a near co-axial polarizer lens aligned with the near co-axial polarized light source;

a lens assembly comprising an aimer lens, a Direct Part Marking (DPM) channel imager lens, and a standard range channel imager lens;

an aimer illuminator aligned with the aimer lens;

at least one aimer folding optics; and

at least one imager board comprising the DPM channel image sensor and the standard range channel image sensor.

20 . A computer-implemented method comprising:

capturing, by a Direct Part Marking (DPM) channel image sensor of an apparatus, a Direct Part Marking (DPM) channel field of view;

capturing, by standard range channel image sensor of the apparatus, a standard range channel field of view that is broader than the DPM channel field of view, wherein the standard range channel field of view is aligned with the DPM channel field of view;

projecting, by a near co-axial polarized light source of the apparatus, a polarized illumination in a near co-axial alignment with each of the DPM channel field of view and the standard range channel field of view, wherein the near co-axial polarized light source is positioned adjacent to the DPM channel image sensor and adjacent to the standard range channel image sensor;

projecting, by a near co-axial aimer light source of the apparatus, an aimer illumination in the near co-axial alignment with each of the DPM channel field of view, the standard range channel field of view, and the polarized illumination; and

capturing, by the apparatus, a representation of a machine-readable symbology illuminated by the polarized illumination and is included within the DPM channel field of view and the standard range channel field of view.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 20, 2024
From: FENG, CHEN; GIORDANO, PATRICK ANTHONY; XIAN, TAO; YOUNGBLOOD, ERIC ALFONS; POLONIEWICZ, PAUL R.
To: HAND HELD PRODUCTS, INC.
Reel/Frame 067789/0363 →
Continuity (2)
Continuation 17898202 · Aug 29, 2022
Related Publication 20260050757A1 · Feb 19, 2026
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