Device, system, and method for cleaning the interior of the tubes in air-cooled heat exchangers
11110566 · 2021-09-07
Inventors
Cpc classification
B24C3/325
PERFORMING OPERATIONS; TRANSPORTING
B24C7/0046
PERFORMING OPERATIONS; TRANSPORTING
F28G1/12
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28G1/163
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28G9/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B24C3/327
PERFORMING OPERATIONS; TRANSPORTING
International classification
B24C3/32
PERFORMING OPERATIONS; TRANSPORTING
F28G9/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28G15/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28G1/16
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B24C7/00
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A device and system are disclosed to clean the interior of tubes in air-cooled heat exchangers. The device is attached at each end of a tube by electromagnetism; either directly to a ferromagnetic tube header, or to a ferromagnetic plate secured to a non-ferromagnetic plug-type header or to a plate-type header of any metal. High pressure air with entrained dry finely-divided abrasive is conducted through a nozzle supported by the device. At the other end of the tube, another device supports a nozzle that captures the air, spent abrasive, and removed material. Spent abrasive and removed material are separated by filtration from the air before the air is exhausted to the environment. Tubes are cleaned to a bright metal condition, suitable for inspection or application of a corrosion-resistant coating, or to a lesser level of cleanliness appropriate for return to service.
Claims
1. A device for cleaning the interior of a heat exchange tube in an air-cooled heat exchanger, comprising: (a) a magnetic drill guide with permanently affixed electromagnet and rack and pinion; (b) a power supply with battery back-up; (c) a frame attached to said rack and pinion to firmly but removably hold a grit-resistant nozzle; (d) a sprocket and pawl attached to the rack and pinion; (e) a grit-resistant nozzle; (f) a connection point for a safety strap; whereby said device holds the grit-resistant nozzle firmly but removably inside the tube no more than the length of the grit-resistant nozzle.
2. A system for cleaning the interior of a heat exchange tube in an air-cooled heat exchanger, where said tube is fabricated of a ferromagnetic material, inlet of the tube is connected to an inlet ferromagnetic plug-type header, outlet of the tube is connected to an outlet ferromagnetic plug-type header, and the plugs are removed, comprising: (a) a first device, comprising; (1) a magnetic drill guide with permanently affixed electromagnet and rack and pinion; (2) a first power supply with battery back-up; (3) a frame attached to said rack and pinion to firmly but removably hold a grit-resistant nozzle; (4) a sprocket and pawl attached to the rack and pinion; (5) a first grit-resistant nozzle; (6) a connection point for a safety strap; (b) a second device, comprising; (1) a magnetic drill guide with permanently affixed electromagnet and rack and pinion; (2) a second power supply with battery back-up; (3) a frame attached to said rack and pinion to firmly but removably hold a grit-resistant nozzle; (4) a sprocket and pawl attached to the rack and pinion; (5) a second grit-resistant nozzle; (6) a connection point for a safety strap; (c) a portable air compressor; (d) a grit chamber; (e) grit; (f) a first hose; (g) a second hose; (h) a third hose; (i) a portable drum; (j) a lid for said portable drum; (k) a fourth hose; and (l) a portable dust collector; whereby the first device holds the first grit-resistant nozzle firmly but removably inside the inlet of the tube at the inlet ferromagnetic plug-type header no more than the length of the first grit-resistant nozzle and the second device holds the second grit-resistant nozzle firmly but removably inside the outlet of the tube at the outlet ferromagnetic plug-type header no more than the length of the second grit-resistant nozzle.
3. A system for cleaning the interior of a heat exchange tube in an air-cooled heat exchanger where said tube is fabricated of a non-ferromagnetic material, inlet of the tube is connected to an inlet non-ferromagnetic plug-type header, outlet of the tube is connected to an outlet non-ferromagnetic plug-type header, and the plugs are removed, comprising: (a) a first device, comprising; (1) a magnetic drill guide with permanently affixed electromagnet and rack and pinion; (2) a first power supply with battery back-up; (3) a frame attached to said rack and pinion to firmly but removably hold a grit-resistant nozzle; (4) a sprocket and pawl attached to the rack and pinion; (5) a first grit-resistant nozzle; (6) a connection point for a safety strap; (b) a second device, comprising; (1) a magnetic drill guide with permanently affixed electromagnet and rack and pinion; (2) a second power supply with battery back-up; (3) a frame attached to said rack and pinion to firmly but removably hold a grit-resistant nozzle; (4) a sprocket and pawl attached to the rack and pinion; (5) a second grit-resistant nozzle; (6) a connection point for a safety strap; (c) a first ferromagnetic plate; (d) a second ferromagnetic plate; (e) a portable air compressor; (f) a grit chamber; (g) grit; (h) a first hose; (i) a second hose; (j) a third hose; (k) a portable drum; (l) a lid for said portable drum; (m) a fourth hose; and (n) a portable dust collector; whereby said first ferromagnetic plate is firmly but removably attached to said inlet non-ferromagnetic plug-type header, said first device, electromagnetically attached to the first ferromagnetic plate, holds said first grit-resistant nozzle firmly but removably inside the inlet of the tube at the inlet non-ferromagnetic plug-type header no more than the length of the first grit-resistant nozzle, said second ferromagnetic plate is firmly but removably attached to said outlet non-ferromagnetic plug-type header, said second device, electromagnetically attached to the second ferromagnetic plate, holds said second grit-resistant nozzle firmly but removably inside the outlet of the tube at the outlet non-ferromagnetic plug-type header no more than the length of the second grit-resistant nozzle.
4. A system for cleaning the interior of a heat exchange tube in an air-cooled heat exchanger where said tube is fabricated of a ferromagnetic material, inlet of the tube is connected to an inlet ferromagnetic plate-type header, outlet of the tube is connected to an outlet ferromagnetic plate-type header, all bolts securing the plates and plates are removed, comprising: (a) a first device, comprising; (1) a magnetic drill guide with permanently affixed electromagnet and rack and pinion; (2) a first power supply with battery back-up; (3) a frame attached to said rack and pinion to firmly but removably hold a grit-resistant nozzle; (4) a sprocket and pawl attached to the rack and pinion; (5) a first grit-resistant nozzle; (6) a connection point for a safety strap; (b) a second device, comprising; (1) a magnetic drill guide with permanently affixed electromagnet and rack and pinion; (2) a second power supply with battery back-up; (3) a frame attached to said rack and pinion to firmly but removably hold a grit-resistant nozzle; (4) a sprocket and pawl attached to the rack and pinion; (5) a second grit-resistant nozzle; (6) a connection point for a safety strap; (c) a first ferromagnetic plate; (d) a second ferromagnetic plate; (e) a portable air compressor; (f) a grit chamber; (g) grit; (h) a first hose; (i) a second hose; (j) a third hose; (k) a portable drum; (l) a lid for said portable drum; (m) a fourth hose; and (n) a portable dust collector; whereby said first ferromagnetic plate is firmly but removably attached to said inlet ferromagnetic plate-type header, said first device, electromagnetically attached to the first ferromagnetic plate, holds said first grit-resistant nozzle firmly but removably inside the inlet of the tube at the inlet ferromagnetic plate-type header no more than the length of the first grit-resistant nozzle, said second ferromagnetic plate is firmly but removably attached to said outlet ferromagnetic plate-type header, said second device, electromagnetically attached to the second ferromagnetic plate, holds said second grit-resistant nozzle firmly but removably inside the outlet of the tube at the outlet ferromagnetic plate-type header no more than the length of the second grit-resistant nozzle.
5. A system for cleaning the interior of a heat exchange tube in an air-cooled heat exchanger where said tube is fabricated of a non-ferromagnetic material, inlet of the tube is connected to an inlet non-ferromagnetic plate-type header, outlet of the tube is connected to an outlet non-ferromagnetic plate-type header, all bolts securing the plates and plates are removed, comprising: (a) a first device, comprising; (1) a magnetic drill guide with permanently affixed electromagnet and rack and pinion; (2) a first power supply with battery back-up; (3) a frame attached to said rack and pinion to firmly but removably hold a grit-resistant nozzle; (4) a sprocket and pawl attached to the rack and pinion; (5) a first grit-resistant nozzle; (6) a connection point for a safety strap; (b) a second device, comprising; (1) a magnetic drill guide with permanently affixed electromagnet and rack and pinion; (2) a second power supply with battery back-up; (3) a frame attached to said rack and pinion to firmly but removably hold a grit-resistant nozzle; (4) a sprocket and pawl attached to the rack and pinion; (5) a second grit-resistant nozzle; (6) a connection point for a safety strap; (c) a first ferromagnetic plate; (d) a second ferromagnetic plate; (e) a portable air compressor; (f) a grit chamber; (g) grit; (h) a first hose; (i) a second hose; (j) a third hose; (k) a portable drum; (l) a lid for said portable drum; (m) a fourth hose; and (n) a portable dust collector; whereby said first ferromagnetic plate is firmly but removably attached to said inlet non-ferromagnetic plate-type header, said first device, electromagnetically attached to the first ferromagnetic plate, holds said first grit-resistant nozzle firmly but removably inside the inlet of the tube at the inlet non-ferromagnetic plate-type header no more than the length of the first grit-resistant nozzle, said second ferromagnetic plate is firmly but removably attached to said outlet non-ferromagnetic plate-type header, said second device, electromagnetically attached to the second ferromagnetic plate, holds said second grit-resistant nozzle firmly but removably inside the outlet of the tube at the outlet non-ferromagnetic plate-type header no more than the length of the second grit-resistant nozzle.
6. The device in claim 1, wherein: (a) the electromagnet is energized by single phase nominal 120 VAC producing a nominal attachment force of 750 to 800 pounds; (b) the power supply with battery backup is a single phase nominal 120 VAC power supply with nominal 650 VA capacity; (c) the frame is a nozzle holder with ring tightly clamped around said nozzle holder and the nozzle holder supported by a saddle; (d) the grit-resistant nozzle is an abrasive blast nozzle with high velocity profile and orifice diameter ranging from 3/16 inch to ½ inch; (e) the connection point for a safety strap is a hole nominally three-eighths inch in diameter.
7. The system in claim 2, wherein: (a) the first device is firmly but removably attached to the face of the inlet ferromagnetic plug-type header by the electromagnet energized by single phase nominal 120 VAC and having nominal attachment force of 750 to 800 pounds; (b) the second device is firmly but removably attached to the face of the outlet ferromagnetic plug-type header by the electromagnet energized by single phase nominal 120 VAC and having nominal attachment force of 750 to 800 pounds; (c) the first power supply with battery back-up is energized by single phase nominal 120 VAC electrical power and has nominal capacity of 650 VA; (d) the second power supply with battery back-up is energized by single phase nominal 120 VAC electrical power and has nominal capacity of 650 VA; (e) the first device firmly but removably holds the first grit-resistant nozzle by a ring tightly clamped around a first nozzle holder and said first nozzle holder is supported by a saddle; (f) the second device firmly but removably holds the second grit-resistant nozzle by a ring tightly clamped around a second nozzle holder and said second nozzle holder is supported by a saddle; (g) the first grit-resistant nozzle is an abrasive blast nozzle with high velocity profile and orifice diameter ranging from 3/16 inch to ½ inch; (h) the second grit-resistant nozzle is an abrasive blast nozzle with high velocity profile and orifice diameter ranging from 3/16 inch to ½ inch; (i) the frame is a nozzle holder with ring tightly clamped around said nozzle holder and the nozzle holder supported by a saddle; (j) the portable air compressor delivers high pressure air at a volumetric flow rate of 350 to 400 ACFM at a pressure of 100 to 150 PSIG; (k) the grit chamber has a capacity of 6 to 6.5 Cu. Ft. and an operating pressure of at least 150 PSIG and is outfitted with an abrasive metering valve; (l) the grit is garnet with a size range of 30 to 60 mesh and Mohs' hardness of 7.5 to 8; (m) the first hose is industrial quality air hose with at least 250 PSIG maximum allowable working pressure and an inside diameter of at least 1 inch and of sufficient length to connect the portable air compressor and the grit chamber; (n) the second hose is blast hose with at least 175 PSIG allowable working pressure, 1¼ inch inside diameter by 1⅞ inch outside diameter, or 2-braid blast hose 1¼ inch inside diameter by 2 3/32 inch outside diameter, or 4-ply blast hose 1¼ inch inside diameter by 2 3/32 inch outside diameter, or 4-ply blast hose 1½ inch inside diameter by 2⅜ inch outside diameter, and sufficient length to connect the grit chamber and the first grit-resistant nozzle; (o) the third hose is blast hose with at least 175 PSIG allowable working pressure, 1¼ inch inside diameter by 1⅞ inch outside diameter, or 2-braid blast hose 1¼ inch inside diameter by 2 3/32 inch outside diameter, or 4-ply blast hose 1¼ inch inside diameter by 2 3/32 inch outside diameter, or 4-ply blast hose 1½ inch inside diameter by 2⅜ inch outside diameter, and sufficient length to connect the second grit-resistant nozzle to the portable drum; (p) the abrasive metering valve admits grit to said high pressure air to achieve a grit to air ratio of 1 to 10 LBS per 100 ASCF at 125 PSIG; (q) the portable drum is an open-top 55-gallon drum of carbon steel; (r) the lid for said portable drum has a first nozzle of diameter and configuration to attach the third hose and a second nozzle of diameter and configuration to attach the fourth hose; (s) the portable dust collector has nominal capacity of 1,000 CFM at atmospheric pressure, with integral forced-draft fan, and outfitted with filter media with a MERV of at least 14; and (t) the fourth hose is flexible hose of nominal 6 inches in diameter, capable of withstanding slightly supra-atmospheric pressure, and of sufficient length to connect the portable drum to the portable dust collector.
8. The system in claim 3, wherein: (a) the first ferromagnetic plate; (1) is fabricated of a ferromagnetic material; (2) is a rectangle with long side one-half to two-third the length of the longest face of the inlet non-ferromagnetic plug-type header and with short side one-half to two-third the length of the shortest face of the inlet non-ferromagnetic plug-type header; (3) has a thicknesses of one-fourth inch to three-eighth inch; (4) has two slots about one-half inch wide and three inches long with length-wise center-line parallel to the longest edge and centered between the two longest edges and positioned with the closest edge of each about six inches from its closest side; (5) the slots each contain a t-handle on one side communicating with a compressible plug on the other side allowing said compressible plug to be expanded or contracted by rotation of the t-handle clockwise or counter-clockwise; (6) is firmly but removably attached to the face of the inlet non-ferromagnetic plug-type header by expanding a first compressible plug into a tube and a second compressible plug into another tube; (b) the second ferromagnetic plate; (1) is fabricated of a ferromagnetic material; (2) is a rectangle with long side one-half to two-third the length of the longest face of the outlet non-ferromagnetic plug-type header and with short side one-half to two-third the length of the shortest face of the outlet non-ferromagnetic plug-type header; (3) has a thicknesses of one-fourth inch to three-eighth inch; (4) has two slots about one-half inch wide and three inches long with length-wise center-line parallel to the longest edge and centered between the two longest edges and positioned with the closest edge of each about six inches from its closest side; (5) the slots each contain a t-handle on one side communicating with a compressible plug on the other side allowing said compressible plug to be expanded or contracted by rotation of the t-handle clockwise or counter-clockwise; (6) is firmly but removably attached to the face of the outlet non-ferromagnetic plug-type header by expanding a first compressible plug into a tube and a second compressible plug into another tube; (c) the first device is firmly but removably attached to the face of the first ferromagnetic plate by the electromagnet energized by single phase nominal 120 VAC and having nominal attachment force of 750 to 800 pounds; (d) the second device is firmly but removably attached to the face of the second ferromagnetic plate by the electromagnet energized by single phase nominal 120 VAC and having nominal attachment force of 750 to 800 pounds; (e) the first power supply with battery back-up is energized by single phase nominal 120 VAC electrical power and has nominal capacity of 650 VA; (f) the second power supply with battery back-up is energized by single phase nominal 120 VAC electrical power and has nominal capacity of 650 VA; (g) the first device firmly but removably holds the first grit-resistant nozzle by a ring tightly clamped around a first nozzle holder and said first nozzle holder is supported by a saddle; (h) the second device firmly but removably holds the second grit-resistant nozzle by a ring tightly clamped around a second nozzle holder and said second nozzle holder is supported by a saddle; (i) the first grit-resistant nozzle is an abrasive blast nozzle with high velocity profile and orifice diameter ranging from 3/16 inch to ½ inch; (j) the second grit-resistant nozzle is an abrasive blast nozzle with high velocity profile and orifice diameter ranging from 3/16 inch to ½ inch. (k) the frame is a nozzle holder with ring tightly clamped around said nozzle holder and the nozzle holder supported by a saddle. (l) the portable air compressor delivers high pressure air at a volumetric flow rate of 350 to 400 ACFM at a pressure of 100 to 150 PSIG; (m) the grit chamber has a capacity of 6 to 6.5 Cu. Ft. and an operating pressure of at least 150 PSIG and is outfitted with an abrasive metering valve; (n) the grit is garnet with a size range of 30 to 60 mesh and Mohs' hardness of 7.5 to 8; (o) the first hose is industrial quality air hose with at least 250 PSIG maximum allowable working pressure and an inside diameter of at least 1 inch and of sufficient length to connect the portable air compressor and the grit chamber; (p) the second hose is blast hose with at least 175 PSIG allowable working pressure, 1¼ inch inside diameter by 1⅞ inch outside diameter, or 2-braid blast hose 1¼ inch inside diameter by 2 3/32 inch outside diameter, or 4-ply blast hose 1¼ inch inside diameter by 2 3/32 inch outside diameter, or 4-ply blast hose 1½ inch inside diameter by 2⅜ inch outside diameter, and sufficient length to connect the grit chamber and the first grit-resistant nozzle; (q) the third hose is blast hose with at least 175 PSIG allowable working pressure, 1¼ inch inside diameter by 1⅞ inch outside diameter, or 2-braid blast hose 1¼ inch inside diameter by 2 3/32 inch outside diameter, or 4-ply blast hose 1¼ inch inside diameter by 2 3/32 inch outside diameter, or 4-ply blast hose 1½ inch inside diameter by 2⅜ inch outside diameter, and sufficient length to connect the second grit-resistant nozzle to the portable drum; (r) the abrasive metering valve admits grit to said high pressure air to achieve a grit to air ratio of 1 to 10 LBS per 100 ASCF at 125 PSIG; (s) the portable drum is an open-top 55-gallon drum of carbon steel; (t) the lid for said portable drum has a first nozzle of diameter and configuration to attach the third hose and a second nozzle of diameter and configuration to attach the fourth hose; (u) the portable dust collector has nominal capacity of 1,000 CFM at atmospheric pressure, with integral forced-draft fan, and outfitted with filter media with a MERV of at least 14; and (v) the fourth hose is flexible hose of nominal 6 inches in diameter, capable of withstanding slightly supra-atmospheric pressure, and of sufficient length to connect the portable drum to the portable dust collector.
9. The system in claim 4, wherein: (a) the first ferromagnetic plate; (1) is fabricated of a ferromagnetic material; (2) is a rectangle with long side one-half to two-third the length of the longest face of the inlet ferromagnetic plate-type header and with short side one-half to two-third the length of the shortest face of the inlet ferromagnetic plate-type header; (3) has a thicknesses of one-fourth inch to three-eighth inch; (4) has two slots about one-half inch wide and three inches long with length-wise center-line parallel to the longest edge and centered between the two longest edges and positioned with the closest edge of each about six inches from its closest side; (5) the slots each contain a t-handle on one side communicating with a compressible plug on the other side allowing said compressible plug to be expanded or contracted by rotation of the t-handle clockwise or counter-clockwise; (6) is firmly but removably attached to the face of the inlet ferromagnetic plate-type header by expanding a first compressible plug into a tube and a second compressible plug into another tube; (b) the second ferromagnetic plate; (1) is fabricated of a ferromagnetic material; (2) is a rectangle with long side one-half to two-third the length of the longest face of the outlet ferromagnetic plate-type header and with short side one-half to two-third the length of the shortest face of the outlet ferromagnetic plate-type header; (3) has a thicknesses of one-fourth inch to three-eighth inch; (4) has two slots about one-half inch wide and three inches long with length-wise center-line parallel to the longest edge and centered between the two longest edges and positioned with the closest edge of each about six inches from its closest side; (5) the slots each contain a t-handle on one side communicating with a compressible plug on the other side allowing said compressible plug to be expanded or contracted by rotation of the t-handle clockwise or counter-clockwise; (6) is firmly but removably attached to the face of the outlet ferromagnetic plate-type header by expanding a first compressible plug into a tube and a second compressible plug into another tube; (c) the first device is firmly but removably attached to the face of the first ferromagnetic plate by the electromagnet energized by single phase nominal 120 VAC and having nominal attachment force of 750 to 800 pounds; (d) the second device is firmly but removably attached to the face of the second ferromagnetic plate by the electromagnet energized by single phase nominal 120 VAC and having nominal attachment force of 750 to 800 pounds; (e) the first power supply with battery back-up is energized by single phase nominal 120 VAC electrical power and has nominal capacity of 650 VA; (f) the second power supply with battery back-up is energized by single phase nominal 120 VAC electrical power and has nominal capacity of 650 VA; (g) the first device firmly but removably holds the first grit-resistant nozzle by a ring tightly clamped around a first nozzle holder and said first nozzle holder is supported by a saddle; (h) the second device firmly but removably holds the second grit-resistant nozzle by a ring tightly clamped around a second nozzle holder and said second nozzle holder is supported by a saddle; (i) the first grit-resistant nozzle is an abrasive blast nozzle with high velocity profile and orifice diameter ranging from 3/16 inch to ½ inch; (j) the second grit-resistant nozzle is an abrasive blast nozzle with high velocity profile and orifice diameter ranging from 3/16 inch to ½ inch. (k) the frame is a nozzle holder with ring tightly clamped around said nozzle holder and the nozzle holder supported by a saddle. (l) the portable air compressor delivers high pressure air at a volumetric flow rate of 350 to 400 ACFM at a pressure of 100 to 150 PSIG; (m) the grit chamber has a capacity of 6 to 6.5 Cu. Ft. and an operating pressure of at least 150 PSIG and is outfitted with an abrasive metering valve; (n) the grit is garnet with a size range of 30 to 60 mesh and Mohs' hardness of 7.5 to 8; (o) the first hose is industrial quality air hose with at least 250 PSIG maximum allowable working pressure and an inside diameter of at least 1 inch and of sufficient length to connect the portable air compressor and the grit chamber; (p) the second hose is blast hose with at least 175 PSIG allowable working pressure, 1¼ inch inside diameter by 1⅞ inch outside diameter, or 2-braid blast hose 1¼ inch inside diameter by 2 3/32 inch outside diameter, or 4-ply blast hose 1¼ inch inside diameter by 2 3/32 inch outside diameter, or 4-ply blast hose 1½ inch inside diameter by 2⅜ inch outside diameter, and sufficient length to connect the grit chamber and the first grit-resistant nozzle; (q) the third hose is blast hose with at least 175 PSIG allowable working pressure, 1¼ inch inside diameter by 1⅞ inch outside diameter, or 2-braid blast hose 1¼ inch inside diameter by 2 3/32 inch outside diameter, or 4-ply blast hose 1¼ inch inside diameter by 2 3/32 inch outside diameter, or 4-ply blast hose 1½ inch inside diameter by 2⅜ inch outside diameter, and sufficient length to connect the second grit-resistant nozzle to the portable drum; (r) the abrasive metering valve admits grit to said high pressure air to achieve a grit to air ratio of 1 to 10 LBS per 100 ASCF at 125 PSIG; (s) the portable drum is an open-top 55-gallon drum of carbon steel; (t) the lid for said portable drum has a first nozzle of diameter and configuration to attach the third hose and a second nozzle of diameter and configuration to attach the fourth hose; (u) the portable dust collector has nominal capacity of 1,000 CFM at atmospheric pressure, with integral forced-draft fan, and outfitted with filter media with a MERV of at least 14; and (v) the fourth hose is flexible hose of nominal 6 inches in diameter, capable of withstanding slightly supra-atmospheric pressure, and of sufficient length to connect the portable drum to the portable dust collector.
10. The system in claim 5, wherein: (a) the first ferromagnetic plate; (1) is fabricated of a ferromagnetic material; (2) is a rectangle with long side one-half to two-third the length of the longest face of the inlet non-ferromagnetic plate-type header and with short side one-half to two-third the length of the shortest face of the inlet non-ferromagnetic plate-type header; (3) has a thicknesses of one-fourth inch to three-eighth inch; (4) has two slots about one-half inch wide and three inches long with length-wise center-line parallel to the longest edge and centered between the two longest edges and positioned with the closest edge of each about six inches from its closest side; (5) the slots each contain a t-handle on one side communicating with a compressible plug on the other side allowing said compressible plug to be expanded or contracted by rotation of the t-handle clockwise or counter-clockwise; (6) is firmly but removably attached to the face of the inlet ferromagnetic plate-type header by expanding a first compressible plug into a tube and a second compressible plug into another tube; (b) the second ferromagnetic plate; (1) is fabricated of a ferromagnetic material; (2) is a rectangle with long side one-half to two-third the length of the longest face of the outlet ferromagnetic plate-type header and with short side one-half to two-third the length of the shortest face of the outlet ferromagnetic plate-type header; (3) has a thicknesses of one-fourth inch to three-eighth inch; (4) has two slots about one-half inch wide and three inches long with length-wise center-line parallel to the longest edge and centered between the two longest edges and positioned with the closest edge of each about six inches from its closest side; (5) the slots each contain a t-handle on one side communicating with a compressible plug on the other side allowing said compressible plug to be expanded or contracted by rotation of the t-handle clockwise or counter-clockwise; (6) is firmly but removably attached to the face of the outlet ferromagnetic plate-type header by expanding a first compressible plug into a tube and a second compressible plug into another tube; (c) the first device is firmly but removably attached to the face of the first ferromagnetic plate by the electromagnet energized by single phase nominal 120 VAC and having nominal attachment force of 750 to 800 pounds; (d) the second device is firmly but removably attached to the face of the second ferromagnetic plate by the electromagnet energized by single phase nominal 120 VAC and having nominal attachment force of 750 to 800 pounds; (e) the first power supply with battery back-up is energized by single phase nominal 120 VAC electrical power and has nominal capacity of 650 VA; (f) the second power supply with battery back-up is energized by single phase nominal 120 VAC electrical power and has nominal capacity of 650 VA; (g) the first device firmly but removably holds the first grit-resistant nozzle by a ring tightly clamped around a first nozzle holder and said first nozzle holder is supported by a saddle; (h) the second device firmly but removably holds the second grit-resistant nozzle by a ring tightly clamped around a second nozzle holder and said second nozzle holder is supported by a saddle; (i) the first grit-resistant nozzle is an abrasive blast nozzle with high velocity profile and orifice diameter ranging from 3/16 inch to ½ inch; (j) the second grit-resistant nozzle is an abrasive blast nozzle with high velocity profile and orifice diameter ranging from 3/16 inch to ½ inch. (k) the frame is a nozzle holder with ring tightly clamped around said nozzle holder and the nozzle holder supported by a saddle. (l) the portable air compressor delivers high pressure air at a volumetric flow rate of 350 to 400 ACFM at a pressure of 100 to 150 PSIG; (m) the grit chamber has a capacity of 6 to 6.5 Cu. Ft. and an operating pressure of at least 150 PSIG and is outfitted with an abrasive metering valve; (n) the grit is garnet with a size range of 30 to 60 mesh and Mohs' hardness of 7.5 to 8; (o) the first hose is industrial quality air hose with at least 250 PSIG maximum allowable working pressure and an inside diameter of at least 1 inch and of sufficient length to connect the portable air compressor and the grit chamber; (p) the second hose is blast hose with at least 175 PSIG allowable working pressure, 1¼ inch inside diameter by 1⅞ inch outside diameter, or 2-braid blast hose 1¼ inch inside diameter by 2 3/32 inch outside diameter, or 4-ply blast hose 1¼ inch inside diameter by 2 3/32 inch outside diameter, or 4-ply blast hose 1½ inch inside diameter by 2⅜ inch outside diameter, and sufficient length to connect the grit chamber and the first grit-resistant nozzle; (q) the third hose is blast hose with at least 175 PSIG allowable working pressure, 1¼ inch inside diameter by 1⅞ inch outside diameter, or 2-braid blast hose 1¼ inch inside diameter by 2 3/32 inch outside diameter, or 4-ply blast hose 1¼ inch inside diameter by 2 3/32 inch outside diameter, or 4-ply blast hose 1½ inch inside diameter by 2⅜ inch outside diameter, and sufficient length to connect the second grit-resistant nozzle to the portable drum; (r) the abrasive metering valve admits grit to said high pressure air to achieve a grit to air ratio of 1 to 10 LBS per 100 ASCF at 125 PSIG; (s) the portable drum is an open-top 55-gallon drum of carbon steel; (t) the lid for said portable drum has a first nozzle of diameter and configuration to attach the third hose and a second nozzle of diameter and configuration to attach the fourth hose; (u) the portable dust collector has nominal capacity of 1,000 CFM at atmospheric pressure, with integral forced-draft fan, and outfitted with filter media with a MERV of at least 14; and (v) the fourth hose is flexible hose of nominal 6 inches in diameter, capable of withstanding slightly supra-atmospheric pressure, and of sufficient length to connect the portable drum to the portable dust collector.
Description
BRIEF DESCRIPTION OF THE SEVERAL VIEWS OF THE DRAWINGS AND LIST OF REFERENCE NUMBERS
BRIEF DESCRIPTION OF THE SEVERAL VIEWS OF THE DRAWINGS
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LIST OF REFERENCE NUMBERS
(22) TABLE-US-00001 Number Description 100 Electromagnetic nozzle support in place for tube cleaning 102 Electromagnet 104 Ferromagnetic plug-type header face 106 Grit-resistant nozzle 108 Nozzle holder 110 Ring 112 Sleeve 114 Hose connection 116 Grit-resistant hose 118 Sprocket 120 Magnet power cord 122 Battery back-up power supply 124 Power cord 126 Rack and pinion 128 Ratchet handle 130 Hole for safety strap 132 One of a plurality of holes in a plug-type header 134 Magnetic drill guide 200 Saddle 202 Handle 300 Switch 400 Stationary spring support 402 Spring 404 Arm 406 Movable spring support 408 Pawl 410 Pawl pivot 500 Pinch bolt 600 Major components of an air-cooled heat exchanger 602 One of a number of finned tubes 604 Inlet header 606 Inlet technician 608 Fan 610 Portable air compressor 612 Air hose 614 Grit chamber 616 Dust collector 618 Open-top 55-gallon drum 620 Outlet technician 622 Outlet header 624 Fines pot 626 Flex-hose 628 Modified drum lid 700 Plug 800 Ferromagnetic plate-type header 802 Bolt 804 Plate 900 O-ring 1000 Ferromagnetic plate 1002 Left t-handle 1004 Right t-handle 1006 Left elastomeric plug 1008 Right elastomeric plug 1010 Left slot 1012 Right slot 1100 Non-ferromagnetic plug-type header 1102 Magnetically supported nozzle attached to a non-ferromagnetic plug-type header 1104 One of a number of non-ferromagnetic finned tubes 1106 One of a plurality of holes in a non-ferromagnetic plug-type header
DETAILED DESCRIPTION OF THE INVENTION
(23) 1. Detailed Description of the Preferred Embodiment of the Electromagnetic Nozzle Support
(24) An electromagnetic nozzle support is disclosed in detail that alleviates the need for inlet technician 606 and outlet technician 620 to manually hold their grit-resistant nozzles 106 and nozzle holders 108 against the tube ends during cleaning.
(25) 100 in
(26) As depicted more clearly in
(27)
(28) Returning to
(29)
(30)
(31)
(32)
(33) 2. Detailed Description of the Preferred Embodiment of the System Incorporating the Electromagnetic Nozzle Support
(34) 600 in
(35) When tubes 602 are to be cleaned and Items 604 and 622 are plug-type headers of ferromagnetic material, they are prepared by removing plugs 700 shown in
(36)
(37) Additional items not shown in
(38)
(39)
(40) 100 in
(41)
(42)
(43) 100 in
(44) It is understood that ferromagnetic plate 1000 will attach to a ferromagnetic or non-ferromagnetic plate-type header in the same fashion as depicted in
(45) 3. Detailed Description of the Preferred Embodiment of the Method of Using the Electromagnetic Nozzle Support to Clean Tubes Supported by a Ferromagnetic Plug-Type Header
(46) It is understood that the air-cooled heat exchanger represented by 600 in
(47) Referring to
(48) Referring to
(49) Continuing to refer to
(50) A battery back-up power supply 122 is located adjacent to each of headers 604 and 622. Power cord 124 is connected to a nominal 120 VAC single-phase power source to energize each of 122. Switch 300 shown in
(51) Inlet technician 606 pushes nozzle holder with 106, 112, and 900 in their proper pre-selected places through a hole 132 until it communicates with the end of the tube 602 corresponding with 132. Outlet technician 620 performs the same task as inlet technician 606 but at outlet header 622. Sleeve 112 holds nozzle 106 and nozzle holder 108 in place. Ring 110 previously left loose is permitted to slide along 108. Inlet technician 606 positions 134 against the face of header 604 while simultaneously elevating it so that the edge of saddle 200 facing header 604 communicates with the edge of ring 110 facing away from 604. The same is performed by outlet technician 620 at 622.
(52) Once Item 134 is properly positioned on the face of 604 and face of 622, inlet technician 606 and outlet technician 620 each select 300 on their respective 134 to the On position. Electromagnet 102 is energized magnetically coupling each 134 to the face of 604 and 622. By rotating handle 128, inlet technician 606 causes rack and pinion to move ring 110 towards saddle 200 until it communicates tightly against 200. Pawl 408 communicates with 118 via spring 402 to hold ring 110 snug against saddle 200. Inlet technician 606 then tightens pinch bolt 500 to cause ring 110 to communicate tightly around nozzle holder 108. The same is performed by outlet technician 620 at 622.
(53) Inlet technician 606 connects grit-resistant hose 116 to nozzle holder 108 using hose connection 114. The same is performed by outlet technician 620 at 622. Inlet technician 606 and outlet technician 620 at each end of tube 602 communicate via walkie-talkie to confirm each are ready to begin tube cleaning. After confirmation, portable air compressor 610 is energized. Inlet technician depresses a dead-man control valve or dead-man switch known to persons of skill in the art. Once depressed, high pressure air flows through 612 to 614, picking up grit, then through 116, through 106, through tube 602, exits through the 106 at 622, then flows through 116 to 618, then through 618 to 616. Spent grit and debris removed from the interior of tube 602 is grossly collected in drum 618. Fines entrained in the waste air and passing through 618 are captured in 616 and collected in 624. The time required to clean a tube 602 may range from 10 seconds to 10 minutes.
(54) After the pre-selected time for cleaning tube 602 is met, inlet technician 606 releases the dead-man valve or switch; thereby shutting off high pressure air and grit flowing from 614. Inlet technician 606 and outlet technician 620 communicate again by walkie-talkie. Inlet technician depresses arm 404 pulling pawl 408 away from sprocket 118. Handle 128 is rotated to cause rack and pinion to retract away from 604. The same is performed by outlet technician 620 at 622. The Item 134 at each of 604 and 622 is taken by hand and then de-energized by selecting 300 to the Off position. The Item 134 is allowed to safely fall away from the face of 604 and 622. Inlet technician 606 pulls nozzle holder with 106, 112, and 900 from hole 132 and reinserts it in the next 132 until it communicates with the end of the tube 602 corresponding with another 132. The same is performed by outlet technician 620 at 622. Inlet technician 606 again takes 134 by hand, repositions it against nozzle holder 108 and then re-energized by selecting 300 to the On position. The same is performed by outlet technician 620 at 622. Inlet technician 606 and outlet technician 620 communicate by walkie-talkie to confirm each is ready for tube cleaning. After confirmation, inlet technician 606 depresses dead-man control valve or switch to initiate tube cleaning. The process is repeated until all tubes 602 are cleaned.
(55) 4. Detailed Description of the Preferred Embodiment of the Method of Using the Electromagnetic Nozzle Support to Clean Tubes Supported by a Non-Ferromagnetic Plug-Type Header or a Ferromagnetic or Non-Ferromagnetic Plate-Type Header
(56) When inlet technician 606 and outlet technician 622 are confronted with a non-ferromagnetic plug-type header or a ferromagnetic or non-ferromagnetic plate-type header he or she must first attach ferromagnetic plate 1000 shown in
(57) Inlet technician 606 and outlet technician 620 each prepare their ferromagnetic or non-ferromagnetic plate-type headers as shown in
(58) Referring to
(59) Referring to
(60)
(61) It is understood that ferromagnetic plate 1000 will attach to a ferromagnetic or non-ferromagnetic plate-type header in the same fashion as depicted in
(62) 5. Variations of the Preferred Embodiment can Still Remain Within the Scope of this Invention
(63) Persons of skill in the art of selecting, connecting, and modifying a portable electromagnetic drill guide would understand that the device, system, and method of using the device described in the preferred embodiment can vary and still remain within the invention herein described. Variations obvious to those persons skilled in the art are included in the invention.
(64) This written description uses examples to disclose the invention, including the preferred embodiment, and also to enable a person of ordinary skill in the relevant art to practice the invention, including making and using any devices or systems and performing any incorporated methods. The patentable scope of the invention is defined by the claims, and may include other examples that occur to those person of ordinary skill in the art. Such other examples are intended to be within the scope of the claims if they have structural elements that do not differ from the literal language of the claims, or if they include equivalent structural elements with insubstantial differences from the literal language of the claims.
(65) Further, multiple variations and modifications are possible in the embodiments of the invention described here. Although a certain illustrative embodiment of the invention has been shown and described here, a wide range of modifications, changes, and substitutions is contemplated in the foregoing disclosure. In some instances, some features of the present invention may be employed without a corresponding use of the other features. Accordingly, it is appropriate that the foregoing description be construed broadly and understood as being given by way of illustration and example only, the spirit and scope of the invention being limited only by the appended claims.