1. Field of the Disclosure
The present disclosure relates generally to the field of contact seal systems that maintain separation between one or more compartments in a rotary air duct. More particularly, the present disclosure relates in one embodiment to a system for providing sealing of a pre-heater air duct of a rotary regenerative air heater system to provide an improved radial seal design.
2. Description of Related Technology
Referring to prior art
Conventional radial seals are generally categorized into one of two types: non-contact seal and contact seal. Referring to
Continuing with
For installation, seal set bar may be used for alignment of seal element 1 to sector-plate. Seal set bar, e.g., a straight edge, sets or adjusts a predetermined level of interference fitting between seal element 1 with that of a sector-plate contact surface In these conventional systems, interference fitting is provided typically within a range between 0.125 inches to 0.312 inches. Furthermore, interference fitting may be very time consuming as compared to other seal installation tasks. Interference fitting requires precise interference calculations to achieve desired sealing between sectors of a rotary regenerative air preheater. Furthermore, interference fitting calculations require an in-depth familiarity with physical dimensionality of an air duct system, e.g., height, width, and other clearance variables, to obtain accurate diaphragm, sector plate, and other rotational dimensionality turn-down values.
In summary, the conventional rotary seals provide limited flexibility on choice of seal elements for rotary regenerative heat exchangers for a given exposure of harsh effluent erosive and corrosive constituents. Conventional seal systems require complicated installations, e.g., extensive familiarity or customization of sealing dimensionality, and require, in many instances, extensive replacement schedule of one or more sealing elements. As such, conventional seals have limited capability for selecting, customizing, or comparing material choices for flexible elements based on application or power plant requirements or needs.
Thus, what are needed are apparatus and methods for providing a rotary sealing apparatus and process that provide advantages over conventional systems including any or all the following: reduced installation time, reduced frequency of replacement, increased travel distance of sealing element, increased selectivity options, seal customization based on one or more operational requirements to withstand one or more harsh particulate erosive elements, and reduced downtime during any or all the following: maintenance, and/or partial or full non-functionality of one or more boilers. In addition, other advantages would include improved air duct or chamber sealing or emissions flow in accordance with specifications or requirements, and ability to vary or adapt in accordance with one or more variables.
In one aspect, an apparatus is disclosed to seal a sector-plate at a diaphragm for an air duct. The apparatus includes a flexible seal including a radial seal body, the radial seal body producing a defined major axis of displacement, e.g., “Y” axis of displacement, when operatively coupled with the diaphragm; and mounting hardware including a rail to maintain a defined major axis of displacement of the radial seal body parallel relative to the diaphragm.
In another aspect, a method is disclosed to provide a rotary seal of air compartments during air input and exhaust within an air duct. The method includes disposing a radial seal body on a rail, mounting the radial seal body aligned along one end with a diaphragm, and displacing the seal body with a sector plate to generate an arc-shaped path of the radial seal body contact surface along a plane parallel to the diaphragm.
In another aspect, a system is disclosed to provide a rotary seal for air compartments of an air duct. The system includes a radial seal body disposed on an rail to form an angled mount on the rail operatively coupled to a diaphragm reference plane such that the radial seal body yields a defined arc-shaped path along extents, e.g., leading or trailing edge, of the radial seal body on which the major axis of displacement of the arc-shaped path lies along a plane parallel to the diaphragm as the rotor assembly rotates.
These and other embodiments, aspects, advantages, and features of the present disclosure will be set forth in part in the description which follows, and in part will become apparent to those skilled in the art by reference to the following description of the disclosure and referenced drawings or by practice of the disclosure. The aspects, advantages, and features of the disclosure are realized and attained by means of the instrumentalities, procedures, and combinations particularly pointed out in the appended claims.
Reference is now made to the drawings wherein like numerals refer to like parts throughout.
As used herein, the term “segment” refers to, but is not limited to, a sector or a compartment containing heat-exchanging elements defined by two diaphragm sides, a rotor shell, and a rotor-post, e.g., see
As used herein, the term “diaphragm(s)” refers to, but is not limited to, radial plate(s) that emanates from rotor-post outward to rotor shell. Plate(s) also provide surface which baskets, radial seals, e.g., flexible seal 102, and grating are mounted to. A leading plane of diaphragm as it rotates is also defined as diaphragm reference plane 1 117 (REF. PLANE 1), e.g., 90 degree mount reference plane 1, as it relates to flexible seal; e.g., see
As used herein, the term “sector-plate” refers to, but is not limited to, a large flat surface that flexible seal contacts and forms sealed barrier between various ducts, e.g., air intake and exhaust; see
As used herein, “flexible seal(s)” refers to, but is not limited to, flexible seal 102 that operates in a beam flexing mode;
As used herein, “single point at contact surface” refers to, but is not limited to, contact edge extents, e.g., leading edge or trailing edge, of flexible seal 102 which is used to describe the path that an edge makes when displaced by the sector-plate;
As used herein, “path of displacement” refers to, but is not limited to, when flexible seal is displaced by a sector-plate and the single point at contact surface forms an arc-shaped path referred to as “path of displacement” along major axis 108 and minor axis 110;
As used herein, “major and minor axis of displacement” refers to, but is not limited to, displacement of flexible seal by sector plate, where displacement is measured on “X” and “Y” axes. “Y” axis is on diaphragm reference plane 1 of the diaphragm and parallel to it. “X” axis is perpendicular to “Y” axis. “Y” axis correlates to distance that flexible seal contact surface interferes with sector-plate contact surface affecting a change in the elevation of seal resulting in displacement parallel to reference plane 1. “X” axis correlates with distance that contact surface moves in plane perpendicular to surface of diaphragm reference plane 1. Major axis refers to larger of the two displacements. The axis containing the larger of the two displacements is either parallel or perpendicular to the diaphragm reference plane 1. When displaced by sector-plate, prior art radial seal (contact seal configurations) operate with a major axis of displacement 109 perpendicular to the diaphragm reference plane 1 117, and a minor axis of displacement 111 that is parallel to the diaphragm reference plane 1 117. The key feature of flexible seal 102 in the present disclosure is that major axis 108 of displacement is parallel to diaphragm reference plane 1 117;
As used herein, “plane of disposition” refers to, but is not limited to, a plane of disposition belonging to flexible seal related to the major axis 108, or likewise major axis 109 of displacement and is either perpendicular to, or parallel with, the surface of the diaphragm reference plane 1. This is an identifier as to seal type, prior art seal element has major axis 109 perpendicular to diaphragm reference plane 1 117, and flexible seal 102 has major axis parallel to diaphragm reference plane 1 117;
As used herein, “contact surface” or “radial seal body contact surface” refers to, but is not limited to, extents (tips) of a leading or trailing edge of flexible seal 102 and or wear strip 141, 142 that contacts the sector-plate;
As used herein, “sector plate contact surface” refers to, but is not limited to, surface of sector plate face that makes contact with a tip or edge of flexible element 102 to form a seal;
As used herein, “beam position 131” refers to, but is not limited to, in drawings, e.g.,
As used herein, “universal format” refers to, but is not limited to, the present disclosure radial seal system which readily adapts to Ljungstrom air preheaters, Howden air preheaters, and/or other like international manufacturers of air preheaters as well as axial seal applications on the selfsame air preheaters.
As used herein, “installation” refers to, but is not limited to, the present disclosure reduction in installation time as a function of the configuration of the seal system; and
As used herein, “turndown” refers to, but is not limited to, the deformation that rotor undergoes when it reaches operating temperature due to thermal expansion. This attribute is one of many driving process for producing a flexible seal.
In one salient aspect, the present disclosure includes apparatus and method of containing or isolating, inter alia, such as gases, solids, and liquids (e.g., fluids) that are by-products of one or more reaction processes, including commercial power and energy generation and distribution. An apparatus is disclosed that seals sector-plate at diaphragm for an air duct. A flexible seal includes a radial seal body. The radial seal body which contains a major axis of displacement, e.g., a major axis on the “Y” axis of displacement, operatively coupled for movement parallel with the diaphragm and mounted in a defined position along the diaphragm. Mounting hardware includes a rail to maintain a defined beam position of the radial seal body relative to the diaphragm.
Broadly, the present disclosure provides a system and method for separating or containing emissions by disposing flexible seal having a contact surface to at least partially, functionally control a rate of emission or flow of gases. The system produced according to the present disclosure may find beneficial use for reducing or controlling emissions or condition air flow for one or more processes including, but not limited to, energy production, paper plant power generation, aluminum plant power systems, refinery systems, or the like.
The flexible seal may be used in industrial or commercial settings for maintaining proper flow over heat exchanging elements within the rotor where a level of flow or emissions is non-constant. For instance, where a level of emissions changes as a function of time, temperature, pressure, or the like, there is a need for controlling air flow or particle distribution.
Although the following discussion may use air ducts as an exemplary demonstration, it is to be understood that this discussion is not limiting and that the present disclosure may be used in other suitable applications.
Referring now to
Moreover, it will be recognized that the present disclosure may find utility beyond purely emissions and air flow concerns. For example, the contact rotary seal system and apparatus described subsequently herein may conceivably be utilized to improve other applications; e.g., increasing functionality, to improve energy efficiency and increase accuracy of measured or removed quantities. Other functions might include maintaining system parameters, during energy or power distribution or manufacturing, and so forth. Myriad of other functions will be recognized by those of ordinary skill in the art given the present disclosure.
As illustrated in
Referring to
Referring to
Referring now to
Referring again to
Furthermore, in contrast to conventional contact radial seal systems using seal element of
Additionally, because flexible seal 102 is readily mounted in a bolt on fashion, material selection, e.g., durability, flexibility, material consistently, type of chemical resistance, of flexible seal 102 can be customized to meet harsh requirements of containment/sealing requirements including previously described jet nozzle cleaning processing in a power plant setting. Thus, material selection may assist in extending useful life of input or exhaust contact radial seals in a setting of a harsh environment. Advantageous, rail 115 may be selected or parameters adjusted to meet flexible seal 102 force calculations, e.g., flexibility, elasticity, pressure, resistance, contact strength. Flexible seal 102 has dimensionality of flexible seal tailoring to achieve desired force or resistance because flexible seal 102 acts both as a beam and fulcrum with rail adapter securing one end. As such, dimensionality of its seal body can be used to derive or compute torque and force.
Referring to
Now turning to
In the present disclosure, the path of displacement described by a single point at contact surface of flexible seal 102, that when displaced by sector-plate, results in major axis 108 of displacement in a plane parallel to diaphragm reference plane 1 117. As such, this configuration results in the selfsame seal possesses a plane of disposition that is parallel to the surface of diaphragm reference plane 1 117. A flexible seal 102 is mounted between a shield/stop 119, leaf spring 125), and a support stop 121 and then clamped to rail 115 in a beam position 131, relative to diaphragm referencing plane 1 with flexible seal 102 and leaf-spring 125 preloaded against the shield/stop 119, see
In accordance with the various embodiments above, a method is disclosed to provide a rotary seal of air compartments during air input and exhaust within an air duct. The method includes disposing a radial seal body 105 on a rail 115, mounting the radial seal body 105 aligned along one end with a diaphragm, and displacing an arc-shaped path of a radial seal contact surface, e.g., single point at contact surface, along a plane parallel to the diaphragm. The method may also include providing a support stop 121 to restrict movement along an arc-shaped path of displacement of the radial seal body contact surface. The method may also include comprising providing a shield stop 119 to restrict movement of the arc-shaped path in an opposing direction of the arc-shaped path during seal flexing and releasing. The method may also include disposing rotor shell including segmented compartments that are each capable of being sealed in a rotary fashion. In yet another variant, the method may include providing a single point of reference, e.g., single point at radial seal contact surface or contact surface, of the radial seal body 105. The method may further include forming one or more sealed compartments along or at extents of the radial seal body 105, wherein the rail 115 acts as a fulcrum and the radial seal body 105 acts as a beam to provide a force needed to maintain a constant sealing spring force along an entire range of travel of the extents of the radial seal body 105.
Furthermore, as illustrated in the above text and figures, a system is disclosed to provide a rotary seal, e.g., a series of flexible seal elements attached at diaphragm, for air compartments of an air duct. The system includes a radial seal body 105 disposed on a rail 115 disposed to form an angled beam mount reference plane, and a diaphragm operatively disposed to create an arc-shaped path with the contact surface, e.g., radial seal body contact surface or single point at contact surface, of the radial seal body 105 to which the major axis of the arc-shaped path lies along a plane parallel to the diaphragm. In one variant, the system includes a support stop 121 operatively secured to restrict movement along the arc-shaped path limiting displacement of the seal 102. In yet another variant, a shield stop 119 is operatively coupled to restrict movement along the arc-shaped path in an opposing direction of a rotor during seal flexing and seal release. In still another variant, a rotor shell disposed including segmented compartments that are each capable of being sealed in a rotary fashion using a single point of reference at a contact location edges or extents of the radial seal body 105. In addition, system may include one or more sealed compartments formed along extents of the radial seal body 105, wherein the rail 115 acts fixably providing a fulcrum and the rail seal body 105 acts as a beam to provide the force needed to maintain a constant sealing spring force along an entire range of travel of the extents of the radial seal body 105.
In summary, the seal platform of present disclosure offers advantages over conventional seal configurations that it is modular by design allowing for custom applications without changing production tooling. In one example, a major axis of displacement is parallel to diaphragm surface. The present disclosure provides full seal contact over up to one inch of travel as opposed the prior art of 0.30 inches of travel. Furthermore, the improved seal is mounted to an adapter rail that can be modified with holes that allow for sealing elements to be clipped in place for a quick install and release. Advantageously, mounting flexible seals to rail 115 allows the seals to be installed without using a seal setting bar, which greatly reduces installation time. Seals can be custom designed as rail accommodates numerous designs within cost effective framework. Furthermore, other travel limiting stops can be implemented to extend seal performance.