Claims
- 1. Dredging apparatus for forming a crater in a bed of material beneath a body of water comprising:
- a crater sink mechanism adapted to sink into said bed as said crater is being formed comprising:
- a housing defining a chamber having a clear water inlet port, a mixture outlet port and material intake opening for disposition beneath and in communication with said body of water adjacent said bed;
- a rotatable auger means in said housing near said material intake opening being operable to shift toward and away from said intake opening and to dig into said bed to dislodge material therefrom and to transport the dislodged material fluidized by ambient water through said material intake opening into said chamber;
- a pump means connected to at least one of said clear water inlet port and said mixture outlet port, said pump means being operable to effect flow of clear water through said clear water inlet port into said chamber for mixing with material in said chamber to form a mixture and to effect flow of said mixture from said chamber through said mixture outlet port, the hydraulic pressure in said chamber relative to the ambient hydrostatic pressure of said body of water being such as to prevent substantial pressure-induced induction or blow-out of material through said material inlet opening;
- a flow constricting means near said clear water inlet port; and
- said mixture outlet port being larger in size than said clear water inlet port so as to establish a predetermined hydraulic pressure in said chamber which is substantially close relative to said ambient hydrostatic pressure when said crater sink mechanism is in operation.
- 2. The dredging apparatus according to claim 1 wherein said flow restricting means comprises a cone-shaped clear water inlet port having an inlet side of a first diameter and an outlet side of a second diameter smaller than said first diameter and said mixture outlet port has a third diameter larger than said first diameter of said inlet port.
- 3. A crater sink mechanism for use in a dredging system to form a crater in a bed of material beneath a body of water and operable to sink into said crater as the latter forms, said mechanism comprising:
- a tubular housing including a material intake opening at one end adapted to enter said bed and a mixing chamber at its opposite end, said mixing chamber having an upper side above said tubular housing, said housing being adapted for disposition when in use so that said material intake opening is submerged and confronts said bed;
- an auger in said housing having a bottom intake end adjacent said material intake opening for engagement with said bed and a top discharge end adjacent to said mixing chamber;
- a means mounting said auger for rotation relative to said tubular housing and for extension toward and retraction away from said tubular housing material intake opening;
- a motor means selectively actuatable to cause said extension or retraction of said auger;
- a rotation means on said housing to rotate said auger whereby said auger digs into and ingests material from said bed through said material inlet opening and transports the ingested material to said mixing chamber;
- a clear water inlet port in said housing communicating with said mixing chamber for admitting clear water into said mixing chamber for mixing with ingested material in said mixing chamber to provide a mixture of clear water and ingested material;
- and a mixture outlet port in said housing communicating with said mixing chamber and through which said mixture is expelled from said mixing chamber for disposal at a remote location.
- 4. A crater sink mechanism according to claim 3 wherein said motor means includes a support assembly mounted on said upper side of said mixing chamber having a guide means operatively connected to said top end of said auger, said motor means comprising an extendable and contractable hydraulic ram connected between said support assembly and said auger.
- 5. A crater sink mechanism according to claim 4 wherein said motor means comprises a first motor and said rotation means for said auger includes a second motor mounted on said auger, said first motor connected between said support and said second motor, to cause extension and contraction of said second motor and auger.
- 6. A crater sink mechanism according to claim 4 wherein said guide means includes a pair of laterally spaced apart elongated guide members, and a guide plate connected to said top end of said auger, said guide plate mounted for reciprocal movement on said guide members with said motor means being connected to said guide plate.
- 7. A crater sink mechanism according to claim 3 further comprising bearing means located near said one end of said housing for rotatably supporting said bottom intake end of said auger, and means to supply clear water to said bearing means.
- 8. A crater sink mechanism according to claim 3 further comprising:
- a jet nozzle located near said material intake opening;
- means to supply clear water to said nozzle for injection into material being ingested by said auger to fluidize said ingested material and facilitate its transport by said auger within said housing to said mixing chamber;
- bearing means located near said one end of said housing for rotatably supporting an end of said auger;
- and means to supply clear water to said bearing means.
- 9. A crater sink mechanism of modular construction comprising:
- a cylindrical main tube open at both ends;
- a mixing assembly detachably mounted at one end of said main tube and comprising a mixing tube having opposite ends and defining a mixing chamber between said ends and having inlet and outlet ports in the walls thereof affording communication to said mixing chamber;
- a closure plate detachably mounted on one end of said mixing tube and having a hole therethrough;
- a cage assembly detachably mounted at the other end of said main tube and comprising an annular plate member, a lower plate spaced from said annular plate member, a plurality of cage bars connected between said annular plate member and said lower plate and circumferentially spaced apart from each other, and a bearing means on said lower plate;
- an auger detachably mounted within said main tube and comprising an auger shaft having opposite ends and a helical auger blade rigidly secured to said auger shaft, one end of said auger shaft being rotatably and detachably mounted on said bearing means, the other end of said auger shaft extending through said mixing assembly and through said hole in said closure plate; and
- a motor support assembly detachably mounted on said closure plate and comprising a support frame, a motor means detachably connected to said support frame and having a rotor detachably connected to said other end of said auger shaft to cause rotation thereof.
- 10. A mechanism according to claim 9 wherein motor means includes a first motor for rotating said auger shaft and a second motor means; and wherein said one end of said auger shaft is slidably mounted on said bearing means with said second motor detachably and operatively connected to said auger shaft to effect axial movement of said auger relative to said main tube.
- 11. A mechanism according to claim 9 wherein said cage assembly further comprises a jet nozzle mounted thereon, and wherein said mechanism further comprises a conduit detachably connected to said jet nozzle for supplying clear water thereto.
- 12. A mechanism according to claim 11 wherein said cage assembly further comprises a pipe mounted thereon for supplying clear water from said conduit to said bearing means.
- 13. An underwater dredging system comprising:
- a crater sink mechanism having a rotatable auger driven by a reversible motor for rotation in one direction to ingest dredged material through a material intake opening, said auger being rotatable in the reverse direction to expel ingested material through said intake opening;
- control means for operating said motor and said auger in said one direction to ingest dredged material, said control means comprising sensing means for sensing when an overload of predetermined magnitude is imposed on said auger by material being ingested and for effecting reverse rotation of said motor and said auger for a predetermined interval of time to expel ingested material, and for causing operation of said motor and said auger in said one direction to be resumed after said predetermined interval of time
- 14. A system according to claim 13 wherein said control means includes a sensing means to determine the magnitude and time interval of said overload and effects said reverse rotation only if said overload is of a predetermined magnitude and exists for a predetermined interval of time.
- 15. A system according to claim 13 wherein said control means includes a stop means to stop rotation of said motor and said auger after a predetermined number of direction reversals occur within a predetermined span of time.
- 16. A system according to claim 15 wherein said control means includes an alarm means which is actuated in response to a predetermined number of direction reversals occurring within a predetermined span of time.
- 17. A system according to claim 13 wherein said alarm means is actuated in response to said predetemined number of direction reversals occurring within said predetermined interval of time.
- 18. A dredging system comprising:
- a crater sink mechanism for disposition at a dredging site in body of water, said mechanism having a housing with a mixing chamber therein, a clear water inlet port and a mixture discharge port both communicating with said mixing chamber, a rotatable auger rotatable in one direction for ingesting dredged material through a material intake opening in said housing and transporting it to said mising chamber, and reversible auger drive motor for rotating said auger;
- a pump for effecting flow of clear water from said body of water at a location remote from said dredging site through said clear water inlet port of said housing into said mixing chamber to mix with dredged material in said mixing chamber and to effect expulsion of the mixture through said mixture discharge port for disposition at a disposal site remote from said dredging site;
- a pump motor for driving said pump;
- a power supply source for said auger drive motor and said pump motor;
- and control means for controlling energization of the motors from said power supply source and comprising means for sensing a load of predetemined magnitude imposed on said auger by material ingested thereby and for effecting temporary reversal of rotation of said auger drive motor and said auger in response to said load to effect expulsion of ingested material by said auger through said material intake opening in said housing.
- 19. A system according to claim 18 wherein said control means is operable to effect said reversal of rotation only when said load imposed thereon exceeds said predetermined magnitude for a predetermined interval of time.
- 20. A system according to claim 19 wherein said control means includes an alarm and effects operation of said alarm in the event that a predetermined number of rotation reversals occur within a predetermined span of time.
- 21. A system according to claim 20 wherein said control means effects de-energization of said auger drive motor to stop rotation of said auger drive motor in the event that a predetermined member of rotation reversals occur within a predetermined span of time.
- 22. A method of forming a crater in a bed of material beneath a body of water comprising the steps of:
- providing a housing defining a chamber having a clear water inlet port, a mixture outlet port and a material intake opening for disposition beneath said body of water adjacent said bed;
- dislodging material from said bed and transporting the dislodged material fluidized by ambient water through said material intake opening into said chamber;
- effecting flow of clear water through said clear water inlet port into said chamber for mixing with material in said chamber to form a mixture;
- effecting flow of said mixture from said chamber through said mixture outlet port;
- maintaining hydraulic pressure in a fluid in said chamber relative to the hydrostatic pressure of said body of water so as to prevent pressure-induced induction and expulsion of dislodged material through said material intake opening; and
- effecting expulsion of material from said material intake opening into said body of water in the event of ingestion into said material intake opening of foreign matter which adversely effects transport of dislodged material into said chamber.
- 23. A method according to claim 22 wherein said step of effecting expulsion is carried out for a predetermined interval of time.
- 24. A method according to claim 22 including the step of ceasing to carry out the steps of dislodging and transporting material in the event that the step of effecting expulsion is repeated for a predetermined number of times within a predetermined span of time.
- 25. A method of forming a crater in a bed of material beneath a body of water comprising the steps of:
- providing a housing defining a chamber having a clear water inlet port, a mixture outlet port and a material intake opening for disposition beneath said body of water adjacent said bed;
- providing vertically operable transport means on said housing connected between said material intake opening and said chamber;
- causing said transport means to dig into said bed to dislodge material from said bed and to transport the dislodged material fluidized by ambient water through said material intake opening into said chamber;
- effecting flow of clear water through said clear water inlet port into said chamber for mixing with material in said chamber to form a mixture;
- effecting flow of said mixture from said chamber through said mixture outlet port;
- maintaining hydraulic pressure in a fluid in said chamber relative to the hydraulic pressure of said body of water so as to prevent pressure-induced induction and expulsion of dislodged material through said material intake opening; and
- detecting ingestion into said material intake opening of foreign matter which adversely effects operation of said transport means and operating said transport means to effect expulsion of said foreign matter from said material intake opening.
- 26. A method according to claim 25 wherein the step of operating said transport means to effect expulsion of said foreign matter is carried out for a predetermined interval of time.
- 27. A method according to claim 26 including the steps ceasing to operate said transport means in the event that said transport means operates to effect expulsion for a predetermined number of times within a predetermined span of time.
- 28. A method according to claim 25 having an auger adjustably positionable axially relative to said material intake opening, wherein said transport means further comprises a reversible axially extensible and contractable motor means for axially positioning and rotating said auger, and further including the step of operating said last-recited motor to axially position said auger to control the amount of dredged material supplied to said chamber.
Parent Case Info
This is a divisional application of Ser. No. 362,214, filed June 6, 1989 and allowed July 20, 1990 which issued on Dec. 25, 1990 as U.S. Pat. No. 4,979,322.
US Referenced Citations (7)
Foreign Referenced Citations (1)
Number |
Date |
Country |
1283308 |
Jan 1987 |
SUX |
Divisions (1)
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Number |
Date |
Country |
Parent |
362214 |
Jun 1989 |
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