Steam injection heater with integrated cleaning mechanism
11525571 · 2022-12-13
Assignee
Inventors
- James C. Zaiser (Elm Grove, WI, US)
- Sean A. O'Rear (Wauwatosa, WI, US)
- Fredrick L. Kottke (Lisbon, WI, US)
Cpc classification
F28F27/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28D2021/0042
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F2230/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28C3/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28G9/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F22B37/52
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28C3/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
A direct contact steam injection heater that includes a stem plug that is rotatable over 360°. The stem plug is connected to an actuator that is operable to rotate the stem plug over 360° of rotation during both the heating function of the steam injection heater and during a clean-in-place process. The stem plug includes a regulating head having a pair of sealing inserts formed on each of a pair of sealing faces. The sealing inserts are biased outward into contact with an inner surface that includes the steam injection nozzles. As the regulating head rotates between a closed position and an open position, the nozzles are exposed to allow steam to flow into the product being heated. The regulating head further includes a pair of foils. During the clean-in-place operation, the foils create a turbulent flow of cleaning liquid within the steam chamber.
Claims
1. A direct contact steam injection heater, comprising: a heater body having a steam inlet, a product inlet, and a heated product outlet; a mounting cage received within the heater body, the mounting cage including a steam chamber located in communication with the steam inlet; a pair of steam discharge sections each having a plurality of nozzles to allow the flow of steam out of the steam chamber; a stem plug rotatably positioned within the mounting cage, the stem plug including a regulating head and a stem; a pair of sealing faces formed on the regulating head, wherein each of the sealing faces is sized to cover one of the steam discharge sections when the regulating head is in a closed position; an actuator connected to the stem plug and operable to rotate the stem plug over a full 360° rotation; and a control unit operable to control the actuator to selectively rotate the regulating head from a closed position to an open position to control the amount of steam flowing out of the steam chamber.
2. The direct contact steam injection heater of claim 1 wherein the sealing face includes a removable sealing insert.
3. The direct contact steam injection heater of claim 2 wherein the sealing insert is formed from a thermoplastic material.
4. The direct contact steam injection heater of claim 3 wherein the sealing insert is formed from PEEK.
5. The direct contact steam injection heater of claim 2 further comprising a bias member positioned between the sealing insert and the regulating head to bias the sealing insert radially outward from the regulating head.
6. The direct contact steam injection heater of claim 1 wherein the regulating head includes a pair of recessed chambers each formed from a back wall and a bottom wall, wherein each of the recessed chambers are located between the pair of sealing faces.
7. The direct contact steam injection heater of claim 6 wherein the back walls of the pair of recessed chambers are separated by a center beam and the pair of sealing faces are connected to the center beam.
8. The direct contact steam injection heater of claim 6 further comprising a pair of foils each extending from the bottom wall of one of the recessed chambers.
9. The direct contact steam injection heater of claim 8 wherein each of the pair of foils are configured to create turbulent flow of a cleaning liquid when the stem plug rotates over the full 360° of rotation.
10. The direct contact steam injection heater 8 wherein each of the pair of foils extends radially outward from the bottom wall.
11. A direct contact steam injection heater, comprising: a heater body having a steam inlet, a product inlet, and a heated product outlet; a mounting cage received within the heater body, the mounting cage including modulating portion that defines a steam chamber located in communication with the steam inlet; a pair of steam discharge sections formed in the modulating portions and each having a plurality of nozzles to allow the flow of steam out of the steam chamber; a stem plug rotatably positioned within the mounting cage, the stem plug including a regulating head and a stem; a pair of sealing faces formed on the regulating head, wherein each of the sealing faces includes a sealing insert sized to cover one of the steam discharge sections when the regulating head is in a closed position; a pair of recessed chambers included on the regulating head, each recessed chamber being formed from a back wall and a bottom wall, wherein each of the recessed chambers are located between the pair of sealing faces; a pair of foils each extending from the bottom wall of one of the recessed chambers an actuator connected to the stem plug and operable to rotate the stem plug over a full 360° rotation; and a control unit operable to control the actuator to selectively rotate the regulating head from a closed position to an open position to control the amount of steam flowing out of the steam chamber.
12. The direct contact steam injection heater of claim 11 wherein the sealing insert is formed from a thermoplastic material.
13. The direct contact steam injection heater of claim 12 wherein the sealing insert is formed from PEEK.
14. The direct contact steam injection heater of claim 11 further comprising a bias member positioned between the sealing insert and the regulating head to bias the sealing insert radially outward from the regulating head.
15. The direct contact steam injection heater of claim 14 wherein the back walls of the pair of recessed chambers are separated by a center beam and the pair of sealing faces are connected to the center beam.
16. The direct contact steam injection heater of claim 11 wherein each of the pair of foils are configured to create turbulent flow of a cleaning liquid when the stem plug rotates over the full 360° of rotation.
17. The direct contact steam injection heater 16 wherein each of the pair of foils extends radially outward from the bottom wall.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The drawings illustrate the best mode presently contemplated of carrying out the disclosure. In the drawings:
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DETAILED DESCRIPTION
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(12) As can be seen in
(13) In the embodiment shown in the drawing figures, the sealing insert 50 is formed from a bearing grade thermoplastic material that meets the 3-A requirements. PEEK is such a thermoplastic material. In the embodiment illustrated, energizing O-rings are used to urge the sealing insert 50 outward to create the required seal with the steam control portion 42. In the embodiment illustrated, the specially designed PEEK sealing inserts 50 can be easily assembled and actuated. The sealing inserts 50 create a seal with the inner surface 56 of the steam control portion 42 such that when the sealing insert 50 is aligned with the discharge section 44, the sealing insert 50 largely prevents the discharge of steam into the product flow.
(14) Referring now to
(15) As can be understood by the drawing figures, the material that forms the sealing insert 50 creates the fluid tight seal between the modulating portion 51 of the regulating head 30 and the inner surface 56. Each of the sealing inserts 50 can be removed from the regulating head 30 and replaced when worn.
(16) Referring now to the top view of
(17) As illustrated in
(18) As best shown in
(19) During cleaning, the flow of steam 12 is interrupted and a cleaning fluid is introduced in place of the steam flow. When the cleaning fluid flows into the steam chamber 46 from the steam inlet 14, the actuator 90 of the present disclosure operates to rotate the regulating head 30 though a full 360° rotation at a sufficient speed. As discussed above, the actuator 90 is designed to allow 360° rotation of the stem plug 26 as compared to prior steam injection heaters in which the stem plug rotates only 90°.
(20) During the 360° repeating rotation of the stem plug 26 during CIP, the profiled foils 70, in conjunction with the C-shaped chambers 62, create a high velocity turbulent flow of the cleaning fluid within the steam chamber 46, even with piping flow rates less than 1.5 m/s. The profiled foils 70 thus act as a “pump” and circulate the cleaning fluid within the steam chamber 46 to enhance the CIP process.
(21) The actuator 90 is connected to the stem plug 26 such that the stem plug is freely spinning in both directions, capable of low and high speeds, has position control in all positions, and be sufficiently robust to operate in continuous modulating duty paired with a steam injector. Though other types are contemplated, the preferred actuator 90 is a servo driven model with planetary gear reducers to provide for either high torque or high speed (depending on the duty).
(22) Although the actuator 90 is shown in the drawing figures as being used with a direct contact steam injection heater that includes the stem plug and regulating head, the 360° actuator could be used in other applications that include an element that controls the flow of a liquid or fluid. For example, a quarter turn actuator that is used in other types of systems that include flow control elements could be replaced by the 360° actuator of the present disclosure.
(23) In such an alternate embodiment, the actuator would be used in a manner similar to a quarter turn actuator to control the movement of the flow control element between open and closed positions during normal operation. If the system needs to be cleaned, the 360° actuator could then be used to rotate the flow control device over a complete 360° rotation. During this 360° rotation, features on the flow control device would distribute a cleaning fluid around the body to help clean the body.
(24) In one specific example of an alternate embodiment, the flow control device could be a butterfly valve that includes a valve disc movable in a valve body. During normal operation, the actuator rotates the valve disc 90° between open and closed positions. In a cleaning processes, the actuator would rotate the valve disc 360° at an acceptable speed while a cleaning fluid or solution is passed through the valve. In this manner, replacement of the quarter turn actuator with the 360° actuator allows the valve to operate in a normal manner and also be used in a cleaning or flushing mode.