POWER HIGH-DENSITY DC/DC CONVERSION SYSTEM WITH OVERVOLTAGE PROTECTION FOR ENERGY TRANSMISSION BY UMBILICAL CABLES CONNECTED TO ROBOTIC SYSTEMS IN LONG PIPELINES

Abstract

The system proposed in this invention allows the conversion of energy from an AC/DC source, located on a platform (surface) and transmitted through an umbilical to a robot that operates on flexible lines, converting the electrical voltage to levels suitable for supplying the robotic system, and can also be used for supplying other pieces of equipment that operate with low voltage and require power high-density and protection against voltage transients.

The system of the invention consists of a surface source (2), fed by the platform's three-phase grid (1), an umbilical cable (3), which connects the source to the robot, an overvoltage protection circuit (4), and a two-stage conversion modular system (5 and 6).

Claims

1.-11. (canceled)

12. A power high-density DC/DC conversion system with overvoltage protection, comprising: a surface source; an umbilical cable; an overvoltage protection circuit; and a two-stage conversion modular system.

13. The power high-density DC/DC conversion system with overvoltage protection according to the claim 12, wherein a first conversion module of the two-stage conversion modular system is configured to lower input voltage from between 630 V and 700 V to between 36 V and 42 V.

14. The power high-density DC/DC conversion system with overvoltage protection according to the claim 12, wherein the power high-density DC/DC conversion system with overvoltage protection uses a fixed transformation factor of approximately 16:1.

15. The power high-density DC/DC conversion system with overvoltage protection according to the claim 13, wherein a second conversion module of the two-stage conversion modular system comprises voltage booster/reducer modules that are regulated and connected to a medium bus.

16. The power high-density DC/DC conversion system with overvoltage protection according to the claim 15, that first and second conversion modules are configured to be connected in parallel to increase maximum processed power.

17. The power high-density DC/DC conversion system with overvoltage protection according to the claim 12, wherein the overvoltage protection circuit is configured to perform voltage clamping at the output of the umbilical, via one or more robotic connections, at acceptable levels for the operation of unregulated converter modules.

18. The power high-density DC/DC conversion system with overvoltage protection according to the claim 12, wherein two-stage conversion modular system comprises a varistor.

19. The power high-density DC/DC conversion system with overvoltage protection according to the claim 18, wherein the two-stage conversion modular system further comprises a linear protection circuit comprising an NPN bipolar transistor and an array of Zener diodes right after the varistor.

20. The power high-density DC/DC conversion system with overvoltage protection according to claim 19, wherein the output voltage of the protection circuit comprises a series arrangement of Zener diodes.

21. The power high-density DC/DC conversion system with overvoltage protection according to claim 20, wherein the diode arrangement has at least four 180 V diodes in series.

22. The power high-density DC/DC conversion system with overvoltage protection according to claim 20, further comprising a microcontroller configured to monitor and disconnect the 48 V bus according to operating conditions and based on a safe operation algorithm.

Description

BRIEF DESCRIPTION OF DRAWINGS

[0015] The present invention will be described in more detail below, with reference to the attached figures which, in a schematic form and not limiting the inventive scope, represent examples of its embodiment. In the drawings, there are:

[0016] FIG. 1, which illustrates the supply system proposed in this invention;

[0017] FIG. 2, which illustrates a schematic of the Overvoltage Protection System;

[0018] FIG. 3, which illustrates the umbilical and first vessels of the robot;

[0019] FIG. 4, which illustrates an internal detail of the first vessel of the robot, with the overvoltage protection system (4) and two converter modules (5);

[0020] FIG. 5, which illustrates voltage (a) and current (b) waveforms before the addition of the protection circuit;

[0021] FIG. 6, which illustrates voltage (a) and current (b) waveforms after adding the protection circuit.

DETAILED DESCRIPTION OF THE INVENTION

[0022] There follows below a detailed description of a preferred embodiment of the present invention, by way of example and in no way limiting. Nevertheless, it will be clear to a technician skilled on the subject, from reading this description, possible further embodiments of the present invention still encompassed by the essential and optional features below.

[0023] As illustrated in FIG. 1, the system proposed in this invention consists of a surface source (2) (AC/DC—0 to 800 V, 8 kW), which is powered by the three-phase grid of the platform (1) (440 V RMS), an umbilical cable (3) up to 15 km long, which connects the source with the robot, an overvoltage protection circuit (4), and a two-stage conversion modular system (5 and 6) (4×1 kW).

[0024] The first conversion stage (5) uses modules to reduce the voltage level with high energy density, lowering the input voltage (between 630 V and 700 V) to values between 36 V and 42 V, creating a medium bus that varies from according to the input voltage. These modules are not regulated: that is, their output voltage varies as a function of the input voltage, according to a fixed transformation factor of approximately 16:1, and they can be connected in parallel in order to increase the maximum processed power.

[0025] As to the second conversion stage (6), regulated voltage booster/reducer modules are used, connected to the medium bus and responsible for the final regulation for the desired voltage levels. The use of a two-stage conversion topology is advantageous, as it allows the creation of several voltage buses from the same medium bus. In addition to creating several buses of different voltages, these modules can be connected in parallel in order to increase the maximum processed power.

[0026] The overvoltage protection circuit, in turn, clamps the voltage at the umbilical output (connection to the robot) at acceptable levels for the operation of unregulated converter modules. The most basic and fundamental component of the protection system is the varistor (V1), located right after the umbilical (FIG. 2), whose function is to absorb excess energy in the event of an overvoltage. The varistor is a component with variable resistance as a function of the voltage applied across its terminals. This component is capable of absorbing energy from voltage spikes; however, its clamping occurs at a difference of electrical potential that is still too high for the input of unregulated converters.

[0027] Thus, a linear protection circuit was included after the varistor, consisting of an NPN bipolar transistor (Q1) and an array of Zener diodes (D1) clamping the base voltage. The output voltage of the protection circuit is configured by means of a series arrangement of Zener diodes (D1).

[0028] For this application, the maximum output voltage was defined as 720 V, or 4 180 V diodes in series. Thus, with the varistor clamping the voltage at the input of the circuit at 1430 V and the linear circuit regulating the voltage at the input of the converters at 720 V, the voltage difference will be 710 V, a value below the maximum supported by the transistor. In addition, an RC low-pass filter is added to the base of the transistor in order to filter out possible oscillations arising from the resonance generated by the parasitic impedances of the umbilical. With the application of the protection circuit, the voltage at the input of the unregulated modules is restricted to the difference of potential configured by the association of Zener diodes in series.

[0029] The regulated bus output voltage can be easily configured, through a resistor, to values between 0 V and 60 V, with an output current of up to 40 A per module. The configuration applied to the Annelida robot presents a 48 V regulated bus, with an association of 4 modules in parallel, allowing the supply of 80 A of electrical current to the load.

[0030] FIG. 4 presents the vessel containing the overvoltage protection circuit and two of the four converter modules of the first conversion stage. In FIG. 3, the four vessels that make up the supply system are shown, two vessels of the first stage and two vessels of the second stage, with each vessel containing two converter modules of 1 kW each.

[0031] In FIGS. 5 and 6, it is possible to observe the voltage and current waveforms before and after the application of the protection circuit, respectively. To perform this test, a circuit of capacitances and inductances that simulate the umbilical cable was used to cause the current and voltage oscillation, which can be seen in FIGS. 5a and 5b. In this first result, there has been noted a greater oscillation in the electrical voltage and a peak of 988 V (above what is acceptable by the converters).

[0032] After the inclusion of the stabilization circuit, the energization happens smoothly (FIGS. 6a and 6b), and the voltage peak reaches a maximum of 712 V. Current oscillation remained, due to the resonant characteristic of the umbilical circuit; however, this factor is not harmful to the energy converters of the supply system of the robot.

[0033] A safe operation algorithm was developed in order to enable the monitoring and disconnection of the 48 V bus, according to the operating conditions. Each conversion module contains an external microcontroller capable of monitoring the operating conditions of the module as a whole. The monitored quantities include input current, output current, input voltage, output voltage, vessel internal temperature and vessel internal pressure. Each variable presents safe operating thresholds, and an alert is issued if any of these thresholds are exceeded.

[0034] The system of the invention is capable of enabling the operation of a robotic system for intervening pipes with internal operation in flexible lines of small diameter (for example, from 4 inches (10.16 cm)). There is further the possibility of unblocking flexible lines without the need of using pieces of equipment external to the pipe. This offers economic advantages, since it allows the pipeline to return to operation in shorter times. In addition, the technology developed should allow the recovery of lines with obstruction at distances greater than 15 km. Furthermore, the use of modules in parallel offers redundancy in case of faults, since each module can be individually commanded to start operating as needed.