Ultracapacitor power system
20210366663 · 2021-11-25
Assignee
Inventors
- TRUONG GIANG DUONG (Ha Noi City, VN)
- CANH DUONG NGUYEN (Ha Noi City, VN)
- DUC ANH NGUYEN (Ha Noi City, VN)
- XUAN CHIEN VUONG (Yen Thanh District, VN)
- PHUONG NAM TRAN (Ha Noi City, VN)
Cpc classification
H01G11/84
ELECTRICITY
H01G11/08
ELECTRICITY
H01G11/14
ELECTRICITY
H01G9/14
ELECTRICITY
Y02E60/13
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
H02J2207/50
ELECTRICITY
F02N2011/0885
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
H01G11/08
ELECTRICITY
H01G11/14
ELECTRICITY
H01G11/84
ELECTRICITY
H01G9/14
ELECTRICITY
Abstract
The invention offers an ultracapacitor-based power system solution with four main functional blocks which are power conditioning block, monitoring block, charge-discharge block and protection block. The proposed system has the advantage of working well in the environment of vibration, high temperature, has a large capacity to provide a large amount and radiates less heat compared to systems using traditional batteries. In addition, the system has functions to protect and stabilize the output voltage, and the operating parameters of the system is monitored continuously.
Claims
1. The ultracapacitor power system having a function of storing energy includes four functional blocks, as follows: a power receiving assembly includes a protective block that protects the system and filters an input source, a switch block has the function of low-voltage and isolating, supplying power to a control circuit; a monitoring and inspection block includes the following functional blocks: a temperature sensor block is responsible for measuring a temperature on the circuit and on a box containing the system; a microcontroller unit reads data from a thermal sensor and measurement unit in a nap-discharge block, processes the data and sends messages to an outside of the system, and processes control commands from the outside and performs required system controls; a communication and isolation unit is responsible for converting signals into a serial communication standard (RS-485); a charge-discharge assembly comprises of a charge-discharge control block that allows charging and discharging capacitors with stable current and voltage, keeping the system's output voltage constant during a discharge of the capacitor; the measurement unit allows monitoring of a physical operating state of the capacitor and allows equivalent capacitance and resistance measurements to be performed on request; a protection block includes the following functional blocks: a switch lock block has the function of switching power output according to the control command; and a monitoring unit has the function of monitoring the status of an electric lock, sending information to the monitoring and inspection block.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0015]
[0016]
[0017]
[0018]
[0019]
DETAILED DESCRIPTION OF THE INVENTION
[0020] Ultracapacitor-based power system is designed with charging input voltage in the range 22-29 VDC. The system output is within 28 VDC with 300 W for 30 seconds.
[0021] As shown in
[0022] In which, W.sub.min is the minimum stored energy of the ultracapacitor, P is the power supplied to the load, t is the power supply time to the load, n is the number of ultracapacitors used, h is the ratio of the performance of the capacitor.
[0023] As shown in
[0024] As shown in
[0025] As shown in
[0026] As shown in
[0027] As shown in
[0028] In which baseplate 1 is the basic surface used to connect the other sides (2, 3, 4, 5). On this base plate 1 there are 1.3 cylindrical stakes 8 mm high, with an internal thread size of 3 mm used to link the 8 condenser boards and the 10 internal control board together. In addition, the base plate 1 also has holes 1.2 used to fix the ultracapacitor to the necessary surfaces with certainty.
[0029] As shown in
[0030] As shown in
[0031] The power receiving block has input source 10.2 contacts used to receive the input source for the super capacitor. The source 10.3 chips perform the low-voltage and protective functions of the control circuit 10.
[0032] The charge-discharge assembly has coils 10.4 used to filter input and output sources. Isolating capacitors 10.5 are used to isolate the input source and the output source from the equipment case. The power control chip 10.6 has the function of controlling the charging and discharging of the 8.3 ultracapacitors through the 10.7 communication contacts. The output filter capacitors 10.8 perform the power filter function for ultracapacitors. 8.3.
[0033] Block monitoring and checking the chips monitor 10.9 used to monitor the parameters of voltage, current, resistance of the ultracapacitor 8.3 (Resistance mentioned here is resistive parasitic capacitors and could not be observed) and the temperature of the control board 10 during operation.
[0034] The protective block has relays 10.10 controlled by the 10.9 supervisor chip that performs the function of turning on/off the power to the 10.11 load power contacts.
[0035] In addition, the 10.12 signal jacks and the 10.11 load power contacts are used to communicate via the RS-485 standard and power out the device via the 3.2 circular holes on the connector plate 3.
IMPACT OF THE INVENTION
[0036] Ultracapacitor technology allows the battery power source system to operate in high temperature and vibration environments. The charging and discharging speed of the ultracapacitor power system is significantly faster than the one using battery/accumulator technology. Moreover, the system integrates charge/discharge controller and monitoring for the super capacitor power system to operate stably and reliably.