IP Library Granted Patent US 12,280,585
Granted Patent B2
US 12,280,585 · App. 17/910,441 · Granted Apr 22, 2025

Systems and methods for registering and printing a flexible web

Inventors: Theodore F. Cyman (Grand Island, NY); Anthony Vincent Moscato (N. Tonawanda, NY); Frank J. Rocco (N. Tonawanda, NY)
Assignee: Cryovac, LLC
B41F13/025B41F33/0081B41J3/543B41J11/46B41J2203/01
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Quick Facts
Patent No.
US 12,280,585
App. No.
17/910,441
Granted
Apr 22, 2025
Kind
B2
Abstract

A printing system comprises a transport apparatus adapted to transport a flexible web along a process direction and first and second individually controllable ink jet imager units offset from one another along the process direction. Each of the first imager unit and the second imager unit includes a first portion operable to print on a first portion of the web and a second portion operable to print on the second portion of the web wherein each of the first portion and second portion of the first and second imager units is stationary along the process direction and the lateral direction.

Claims (35)

1. A printing system, comprising:

a transport apparatus adapted to transport a flexible web of heat-shrinkable polymeric material along a process direction, the heat-shrinkable polymeric material having a total free shrink of at least 10% at 185° F., as measured by ASTM D2732;

first and second individually controllable ink jet imager units offset from one another along the process direction wherein each of the first imager unit and the second imager unit includes a first portion operable to print on a first portion of the web of heat-shrinkable polymeric material and a second portion operable to print on the second portion of the web of heat-shrinkable polymeric material wherein each of the first portion and second portion of the first and second imager units is stationary along the process direction and the lateral direction;

a position encoder adapted to develop a signal representing web position;

at least one image sensor adapted to detect printing on the web of heat-shrinkable polymeric material; and

a control system responsive to the position encoder and the image sensor and adapted to register first content printed by the first portion of the first imager unit with content printed by the first portion of the second imager unit, register content printed by the second portion of the first imager unit with content printed by the second portion of the second imager unit, independently control the first portion and the second portion of the first imager unit, and independently control the first portion and the second portion of the second imager unit.

2. The printing system of claim 1 , wherein the at least one image sensor comprises a camera.

3. The printing system of claim 2 , wherein the camera is adapted to sense a registration mark.

4. The printing system of claim 3 , wherein the registration mark is printed by the first imager unit.

5. The printing system of claim 1 , wherein the at least one image sensor comprises first and second cameras adapted to sense printed content on the web of heat-shrinkable polymeric material.

6. The printing system of claim 1 , wherein the control system includes means for shifting data in response to the image sensor detecting printing on the web of heat-shrinkable polymeric material.

7. A duplex printing system, comprising:

a transport apparatus adapted to transport a flexible web of heat-shrinkable polymeric material along a process direction at a first lateral position during a first printing pass on a first side of the web of heat-shrinkable polymeric material, invert the flexible web of heat-shrinkable polymeric material, and transport the flexible web of heat-shrinkable polymeric material along the process direction at a second lateral position offset from the first lateral position during a second printing pass on a second side of the web of heat-shrinkable polymeric material, the heat-shrinkable polymeric material having a total free shrink of at least 10% at 185° F., as measured by ASTM D2732;

first and second individually controllable ink jet imager units offset from one another along the process direction wherein each of the first imager unit and the second imager unit includes a first portion operable to print on the first side of the web of heat-shrinkable polymeric material during the first printing pass and a second portion operable to print on the second side of the web of heat-shrinkable polymeric material during the second pass wherein each of the first portion and second portion of the first and second imager units is stationary along the process direction and the lateral direction;

a position encoder adapted to develop a signal representing web position;

at least one image sensor adapted to detect printing on the web of heat-shrinkable polymeric material; and

a control system responsive to the position encoder and the image sensor and adapted to register first content printed by the first portion of the first imager unit with content printed by the first portion of the second imager unit, register content printed by the second portion of the first imager unit with content printed by the second portion of the second imager unit, independently control the first portion and the second portion of the first imager unit, and independently control the first portion and the second portion of the second imager unit.

8. The duplex printing system of claim 7 , wherein the at least one image sensor comprises a camera.

9. The duplex printing system of claim 8 , wherein the camera is adapted to sense a registration mark.

10. The duplex printing system of claim 9 , wherein the registration mark is printed by the first imager unit.

11. The duplex printing system of claim 7 , wherein the at least one image sensor comprises first and second cameras adapted to sense printed content on the web of heat-shrinkable polymeric material.

12. The duplex printing system of claim 7 , wherein the control system includes means for shifting data in response to the image sensor detecting printing on the web of heat-shrinkable polymeric material.

13. A method of printing a web of polymeric heat-shrinkable material, the method comprising the steps of:

transporting a flexible web of heat-shrinkable polymeric material along a process direction, the heat-shrinkable polymeric material having a total free shrink of at least 10% at 185° F., as measured by ASTM D2732;

providing first and second individually controllable ink jet imager units offset from one another along the process direction wherein each of the first imager unit and the second imager unit includes a first portion operable to print on a first portion of the web of heat-shrinkable polymeric material and a second portion operable to print on the second portion of the web of heat-shrinkable polymeric material wherein each of the first portion and second portion of the first and second imager units is stationary along the process direction and the lateral direction;

developing a signal representing web position;

detecting printing on the web of heat-shrinkable polymeric material; and

in response to the developing step and the detecting step

registering first content printed by the first portion of the first imager unit with content printed by the first portion of the second imager unit,

registering content printed by the second portion of the first imager unit with content printed by the second portion of the second imager unit,

independently controlling the first portion and the second portion of the first imager unit, and

independently controlling the first portion and the second portion of the second imager unit.

14. The method of claim 13 , further including the step of operating at least one image sensor to detect printing on the web of heat-shrinkable polymeric material.

15. The method of claim 13 , wherein the step of detecting printing on the web of heat-shrinkable polymeric material comprises the step of operating a camera to sense a registration mark.

16. The method of claim 15 , wherein the registration mark is printed by the first imager unit.

Assignments (5)
SECURITY INTEREST Recorded Apr 13, 2026
From: SEALED AIR CORPORATION; CRYOVAC, LLC; SHANKLIN CORPORATION; SEALED AIR IP HOLDINGS, LLC; SEALED AIR CORPORATION (US)
To: WILMINGTON TRUST, NATIONAL ASSOCIATION
Reel/Frame 075384/0016 →
RELEASE OF SECURITY INTEREST Recorded Apr 10, 2026
From: BANK OF AMERICA, N.A., AS AGENT
To: CRYOVAC, LLC
Reel/Frame 075376/0973 →
SECURITY INTEREST Recorded Apr 9, 2026
From: SEALED AIR CORPORATION; CRYOVAC, LLC; SHANKLIN CORPORATION; SEALED AIR IP HOLDINGS, LLC; SEALED AIR CORPORATION (US)
To: JPMORGAN CHASE BANK, N.A.
Reel/Frame 075378/0512 →
SECURITY INTEREST Recorded Oct 31, 2025
From: CRYOVAC, LLC
To: BANK OF AMERICA, N.A., AS AGENT
Reel/Frame 073428/0495 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Oct 27, 2025
From: CYMAN, THEODORE F.; MOSCATO, ANTHONY VINCENT; ROCCO, FRANK J.
To: CRYOVAC, LLC
Reel/Frame 072683/0676 →
Continuity (2)
Provisional Application 62988474 · Mar 12, 2020
Related Publication 20230117460A1 · Apr 20, 2023
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