Mooring device and operating method thereof
12421681 ยท 2025-09-23
Assignee
Inventors
Cpc classification
B63B2021/006
PERFORMING OPERATIONS; TRANSPORTING
B63B21/00
PERFORMING OPERATIONS; TRANSPORTING
International classification
Abstract
The present invention discloses a mooring device and operating method thereof. Specifically, the mooring device mainly comprises engaging module and a pressure control module. The engaging module comprises at least one actuator, at least one piston unit and at least one vacuum cup. Moreover, when a mooring object contacts the at least one actuator and actuates the at least one piston unit, the pressure control module may control the vacuum level therebetween the at least one vacuum cup and the mooring object. Therefore, the mooring device and its operating method of the present invention use the force which is provided by the mooring object per se to determine whether to moor the mooring object or not.
Claims
1. A mooring device, comprising: an engaging module, comprising: at least one actuator; at least one piston unit, connected with the at least one actuator; at least one vacuum cup, configured in anterior portion of the engaging module; a pressure control module, connected with the engaging module; wherein the pressure control module comprises: a first valve, connected with the at least one piston unit; at least one first pressure tank, connected with the first valve; a second valve, connected with the at least one first pressure tank; an energy transformation module, connected with the second valve; a vacuum module, connected with the energy transformation module and the at least one vacuum cup; a third valve, connected with the energy transformation module and the at least one piston unit; and a fourth valve, connected with the at least one first pressure tank and the at least one piston unit.
2. The mooring device as claimed in claim 1, wherein the at least one piston unit is piston rod.
3. The mooring device as claimed in claim 1, wherein the first valve, the second valve, the third valve and the fourth valve are electromagnetic valves.
4. The mooring device as claimed in claim 3, wherein the first valve, the second valve, the third valve and the fourth valve further connect to at least one controller.
5. The mooring device as claimed in claim 4, wherein the at least one controller comprises Central Processing Unit (CPU), Micro-processor Unit (MPU), Single-chip microcomputer, Programmable logic controller (PLC) or combinations thereof.
6. The mooring device as claimed in claim 1, wherein the energy transformation module comprises: a first check valve, connected with the second valve; and a linear piston, connected with the vacuum module, and the linear piston comprises an elastic resetting unit, at least one second pressure tank or combinations thereof; wherein the linear piston is connected with the third valve.
7. The mooring device as claimed in claim 1, wherein the energy transformation module comprises: a first check valve, connected with the second valve; a rotational unit, connected with the first check valve and the vacuum module; a second check valve, connected with the rotational unit; and at least one second pressure tank, connected with the second check valve; wherein the at least one second pressure tank is connected with the third valve.
8. The mooring device as claimed in claim 1, wherein the engaging module is connected with at least one telescopic arm and at least one elastic unit, at least one double rod cylinder or combinations thereof.
9. An operating method of a mooring device, comprising: (A) providing the mooring device as claimed in claim 1; (B) the engaging module actively or relatively contacting a mooring object, and the mooring object engaging with the at least one actuator; (C) the at least one actuator pressing the at least one piston unit, and the first valve opening to make the at least one piston unit output a pneumatic/hydraulic pressure to the at least one first pressure tank; (D) the first valve closing, and after the second valve opening, the at least one first pressure tank releasing the pneumatic/hydraulic pressure and transmitting the pneumatic/hydraulic pressure to the energy transformation module; (E) making sure that the at least one vacuum cup is keeping directly contacting the mooring object; and (F) the energy transformation module using the pneumatic/hydraulic pressure for actuating the vacuum module, making the vacuum module create vacuum suction force of the at least one vacuum cup and mooring the mooring object; wherein rest of the pneumatic/hydraulic pressure is stored in the energy transformation module.
10. The operating method of a mooring device as claimed in claim 9, wherein after the step (F), further comprising: (G) the mooring object sending a detaching signal to the mooring device; (H) the vacuum module removing the vacuum suction force of the at least one vacuum cup, and letting the mooring object leave; (I) the third valve and the fourth valve opening and releasing the pneumatic/hydraulic pressure which is stored in the energy transformation module and the at least one first pressure tank to the at least one piston unit; and (J) the at least one piston unit resetting the at least one actuator to an original status before engaging with the mooring object.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION OF THE EMBODIMENT
(8) In order to understand the technical features and practical efficacy of the present invention and to implement it in accordance with the contents of the specification, hereinafter, preferred embodiments of the present invention will be described in detail with reference to the accompanying drawings.
(9) Please refer to
(10) The engaging module 100 comprises at least one actuator 101, at least one piston unit 102 and at least one vacuum cup 103. The at least one piston unit 102 is connected with the at least one actuator 101, and the at least one vacuum cup 103 is configured on the anterior portion of the engaging module 100. Please refer to
(11) As shown in
(12) Thereon, the pressure control module 200 of the embodiment illustrated in
(13) Furthermore, the first valve 201, second valve 203, third valve 206 and fourth valve 207 may further connect to at least one controller which is not shown in the drawings. The at least one controller comprises Central Processing Unit (CPU), Micro-processor Unit (MPU), Single-chip microcomputer, Programmable logic controller (PLC) or combinations thereof.
(14) Therefore, the present embodiment may be operated under the assistance of sensors. The sensors comprise but not be limited to pressure sensors thereof. The information acquired by the sensors may assist the whole mooring device 10 and for the at least one controller, thus to control the open/close of the first valve 201, second valve 203, third valve 206 and fourth valve 207. Hence, the pneumatic/hydraulic pressure will be managed well in the pressure control module 200.
(15) On the other hand, the first valve 201 is connected with the at least one piston unit 102, and the at least one first pressure tank 202 is connected with the first valve 201. In fact, when the at least one piston unit 102 of the present embodiment is pressed by the actuator 101 due to the external force F (e.g., the external force created by mooring object M), the pneumatic/hydraulic pressure of the piston unit 102 raises therein. Simultaneously, the first valve 201 will open and the second valve 203 and the fourth valve 207 will be relatively closed. Hence, the pneumatic/hydraulic pressure in the piston unit 102 will be transmitted to and accumulated in the at least one first pressure tank 202.
(16) Furthermore, due to the connection between the second valve 203 and at least one first pressure tank 202 and the connection between the energy transformation module 204 and second valve 203, when the actuator 101 of the present embodiment is pressed by such as the external force F, thus to retract to the position/status preset by the system or detected by sensors in the mooring device 10, making sure that the mooring object M has been contacted with the vacuum cup 103. The first valve 201 will be closed, and the second valve 203 will open and make the pneumatic/hydraulic pressure therein the at least one first pressure tank 202 be transmitted into the energy transformation module 204.
(17) Thereinafter, please refer to
(18) According the embodiment illustrated in
(19) The energy transformation module 204 illustrated in the embodiment of
(20) Therefore, in the embodiment illustrated in
(21) No matter the embodiments illustrated in
(22) On the other hand, no matter the embodiments illustrated in
(23) Therefore, the abovementioned pressure or energy can be returned to at least one piston unit 102 in a form of pneumatic/hydraulic pressure in the gas-hydraulic circuit of the current system via the third valve 206 and fourth valve 207 after the vacuum module 205 removes the vacuum status of the vacuum cup 103. Thereinafter, the actuator 101 will be pressed by an opposite force against the external force F, resetting to the original status before mooring. Specifically, the vacuum status of the vacuum cup 103 is removed by a pressure relief valve (not shown in drawings) configured between the vacuum cup 103 and vacuum module 205.
(24) Please refer to
(25) First of all, the actual operation drawings of the embodiment illustrated in
(26) Specifically, as shown in
(27) The abovementioned description of the
(28) As shown in
(29) In the present embodiment, the elastic unit 302 may be any unit which has buffering or resetting abilities such as a spring, the present invention is not limited thereto. When the elastic unit 302 is suppressed and provides the force for vacuum cup 103 contacting mooring object M due to the resetting force per er, after the vacuum cup 103 has accomplished the vacuum status, the double rod cylinder 303 which is connected with the vacuum cup 103 will control its own valve for limiting and locking the linear motion and position of telescopic arm 301. Finally, the mooring status as shown in
(30) No matter the embodiment illustrated in
(31) Please refer to the
(32) The step (B) is that the engaging module 100 actively (e.g., the embodiment of
(33) Thereinafter, the step (C) is that the at least one actuator 101 presses the at least one piston unit 102 as illustrated in
(34) In step (E), after checking that the at least one vacuum cup 103 tightly contacts the mooring object M as illustrated in
(35) Please refer
(36) The step (H) is that the vacuum module 205 removes the vacuum status of the at least one vacuum cup 103, and the mooring object M may leave. At the same time, step (I) is that the at least one controller controls the opening of third valve 206 and the fourth valve 207, and releases the pneumatic/hydraulic pressure stored in the at least one second pressure tank 2045 of energy transformation module 204 and the at least one first pressure tank 202 to the at least one piston unit 102. Finally, step (J) is that the at least one piston unit 102 will be reset, and the at least one actuator 101 is also reset to the status as shown in
(37) As is understood by a person skilled in the art, the foregoing preferred embodiments of the present invention are illustrated of the present invention rather than limiting of the present invention. It is intended to cover various modifications and similar arrangements included within the spirit and scope of the appended claims, the scope of which should be accorded the broadest interpretation so as to encompass all such modifications and similar structure. While the preferred embodiment of the invention has been illustrated and described, it will be appreciated that various changes can be made therein without departing from the spirit and scope of the invention.