Welcome to the Industrial Automation website!

NameDescriptionContent
HONG  KANG
E-mail  
Password  
  
Forgot password?
  Register
当前位置:

Fuel cell

来源: | 作者:佚名 | 发布时间 :2023-12-01 | 663 次浏览: | Share:

1. Why research fuel cells

Hydrogen fuel cells have the advantages of high fuel energy conversion, low noise and zero emission, and can be widely used in vehicles such as automobiles, aircraft, trains and fixed power stations. Since the application of fuel cells in manned spaceflight, underwater submarines, distributed power stations, fuel cells have been the concern of governments and enterprises, in the future, the proportion of coal electricity is relatively low, due to the increase in the scale of renewable energy technologies such as wind energy, solar energy, the entire upstream power structure will be more and more clean. Fuel cells have several advantages over the conventional combustion technology currently used in many power plants and passenger cars:

First, the power generation efficiency is as high as 50% to 60%, if it can be combined to form a cyclic power generation system, the power generation efficiency can be as high as 70% or more;

Second, compared with traditional thermal power generation, fuel cells are less polluting to the environment.

Third, because the fuel cell has fewer internal components, it will not produce large noise during operation, and the general noise is 50dB ~ 70dB.

2. Working principle and system composition

2.1 Working Principle

The power generation principle of a fuel cell is similar to that of a primary or secondary battery. Hydrogen oxidation and oxygen reduction reactions occur on both sides of the electrolyte diaphragm, and electrons work through the external circuit, and the reaction product is water (Figure 1). However, unlike the primary cell, the reactants in the fuel cell are not stored in the battery in advance, but the product is discharged after the reaction is passed into the fuel gas and oxidation gas, so the fuel cell is not an energy storage device but a conversion device, and its electrodes and electrolytes are not directly involved in the reaction during the reaction.

2.2 System Composition

Fuel cell power generation requires a relatively complex system (FIG. 2). In addition to fuel cell stacks, it also includes fuel supply subsystem, oxidizer supply subsystem, hydrothermal management subsystem and electrical management and control subsystem, etc. The main system components include air compressor, humidifier, hydrogen circulation pump, high-pressure hydrogen bottle, etc. These subsystems and fuel cell stacks (or modules) constitute the fuel cell power generation system. The complexity of fuel cell systems poses challenges for operational reliability.

Fuel cell stack

Fuel cell stack is the core of fuel cell power system. It produces direct current (DC) electricity through an electrochemical reaction in a fuel cell. A single fuel cell generates a current of less than 1v, so a single fuel cell is usually connected in series into a fuel cell stack, and a typical fuel cell stack may consist of hundreds of fuel cells. The amount of energy produced by a fuel cell depends on several factors, such as the fuel cell type, cell size, operating temperature, and gas pressure supplied to the cell.

Fuel processor

The fuel processor converts the fuel into a form that the fuel cell can use. Depending on the fuel and fuel cell type, the fuel processor can be a simple adsorbent bed that removes impurities, or a combination of multiple reactors and adsorbents.

Power regulator

Power regulation includes controlling current characteristics such as current (amperage), voltage, and frequency to meet the needs of the application. Fuel cells generate electricity in the form of direct current (DC). On a direct current circuit, electrons flow in only one direction. If a fuel cell is used to power a device that uses alternating current, direct current must be converted to alternating current.

Air compressor

The fuel cell performance increases with the increase of reactant gas pressure. Therefore, many fuel cell systems include an air compressor, which can increase the inlet air pressure to 2 to 4 times the ambient atmospheric pressure. For transportation applications, the efficiency of the air compressor should be at least 75%. In some cases, an expander is also included to restore power from high-pressure exhaust gases. The efficiency of the extender should be at least 80%.

humidifier

The core polymer electrolyte membrane of PEM fuel cells does not work well when dry, so many fuel cell systems have humidifiers for the air intakes. Humidifiers typically consist of a thin film that can be made of the same material as PEM. By flowing dry inlet air on one side of the humidifier and moist exhaust air on the other side, the water produced by the fuel cell can be recycled to keep the PEM well-hydrated.

2.3 Key materials and components

Polymer electrolyte membrane (PEM) fuel cell is a hot topic in the application research of fuel cell vehicle. PEM fuel cells are made of several different layers of materials. The main components of a PEM fuel cell are shown in Figure 3. The core of a PEM fuel cell is the membrane electrode Assembly (MEA), which includes the membrane, catalyst layer, and gas diffusion layer (GDLs). Hardware components for one meant to be incorporated into the fuel cell include gaskets, which provide a seal that is protected against leakage of the gas, and biphase steel plates, which are used to assemble the personal PEM fuel cell with the fuel cell stack and provide gas for the fuel and air channels.

  • Metso A413177 Digital Interface Control Module
  • METSO A413222 8-Channel Isolated Temperature Input Module
  • Metso A413313 Interface Control Module
  • METSO D100532 Control System Module
  • METSO A413310 8-Channel Digital Output Module
  • METSO A413659 Automation Control Module
  • Metso D100314 Process Control Interface Module
  • METSO A413665 8-Channel Analog Output Module
  • METSO A413654 Automation Control Module
  • Metso A413325 Interface Control Module
  • METSO A413110 8-Channel Analog Input Module
  • METSO A413144 Automation Control Module
  • Metso A413160 Digital Interface Control Module
  • METSO A413152 8-Channel Digital Input Module
  • METSO A413240A Automation Control Module
  • METSO A413146 Digital Interface Control Module
  • METSO A413150 Multi-Role Industrial Automation Module
  • METSO A413125 Automation Control / I/O Module
  • Metso A413111 Interface Control Module
  • METSO A413140 Automation Control Module
  • METSO 020A0082 Pneumatic Control Valve Component
  • METSO 02VA0093 Automation Control Module
  • METSO 02VA0153 Actuator Control Module
  • METSO 02VA0190 Automation Control Module
  • Metso 02VA0193 Pneumatic Control Valve Component
  • METSO 02VA0175 Valve Actuator Module
  • METSO D100308 Industrial Control Module
  • MOOG QAIO2/2-AV D137-001-011 Analog Input/Output Module
  • MOOG D136-002-002 Servo Drive or Control Module
  • MOOG D136-002-005 Servo Drive Control Module
  • MOOG D136E001-001 Servo Control Card Module
  • MOOG M128-010-A001B Servo Control Module Variant
  • MOOG G123-825-001 Servo Control Module
  • MOOG D136-001-008a Servo Control Card Module
  • MOOG M128-010 Servo Control Module
  • MOOG T161-902A-00-B4-2-2A Servo-Proportional Control Module
  • MOTOROLA 21255-1 Electronic Component Module
  • MOTOROLA 12967-1 / 13000C Component Assembly
  • MOTOROLA 01-W3914B Industrial Control Module
  • Motorola MVME2604-4351 PowerPC VMEbus Single Board Computer
  • MOTOROLA MVME162-513A VMEbus Embedded Computer Board
  • MOTOROLA MPC2004 Embedded PowerPC Processor
  • Motorola MVME6100 VMEbus Single Board Computer
  • MOTOROLA MVME162PA-344E VMEbus Embedded Computer Board
  • MOTOROLA RSG2PMC RSG2PMCF-NK2 PMC Expansion Module
  • Motorola APM-420A Analog Power Monitoring Module
  • MOTOROLA 0188679 0190530 Component Pair
  • Motorola 188987-008R 188987-008R001 Power Control Module
  • MOTOROLA DB1-1 DB1-FALCON Control Interface Module
  • MOTOROLA AET-3047 Antenna Module
  • Motorola MVME2604761 PowerPC VMEbus Single Board Computer
  • MOTOROLA MVME761-001 VMEbus Single Board Computer
  • MOTOROLA 84-W8865B01B Electronic System Module
  • Motorola MVIP301 Digital Telephony Interface Module
  • MOTOROLA 84-W8973B01A Industrial Control Module
  • MOTOROLA MVME2431 VMEbus Embedded Computer Board
  • MOTOROLA MVME172PA-652SE VMEbus Single Board Computer
  • Motorola MVME162-223 VMEbus Single Board Computer
  • MOTOROLA BOARD 466023 Electronic Circuit Board
  • Motorola MVME333-2 6-Channel Serial Communication Controller
  • MOTOROLA 01-W3324F Industrial Control Module
  • MOTOROLA MVME335 VMEbus Embedded Computer Board
  • Motorola MVME147SRF VMEbus Single Board Computer
  • MOTOROLA MVME705B VMEbus Single Board Computer
  • MOTOROLA MVME712A/AM VMEbus Embedded Computer Board
  • MOTOROLA MVME715P VMEbus Single Board Computer
  • Motorola MVME172-533 VMEbus Single Board Computer
  • Motorola TMCP700 W33378F Control Processor Module
  • MOTOROLA MVME188A VMEbus Embedded Computer Board
  • Motorola MVME712/M VME Transition Module
  • Motorola 30-W2960B01A Industrial Processor Control Module
  • MOTOROLA FAB 0340-1049 Electronic Module
  • Motorola MVME162-210 VME Single Board Computer
  • Motorola MVME300 VMEbus GPIB IEEE-488 Interface Controller
  • MOTOROLA CPCI-6020TM CompactPCI Processor Board
  • Motorola MVME162-522A VMEbus Single Board Computer
  • MOTOROLA MVME162-512A VMEbus Single Board Computer
  • MOTOROLA MVME162-522A 01-W3960B/61C VMEbus Single Board Computer
  • MOTOROLA MVME162-220 VMEbus Embedded Computer Board
  • Motorola MVME162-13 VMEbus Single Board Computer
  • MOTOROLA MVME162-10 VMEbus Single Board Computer
  • RELIANCE 57C330C AutoMax Network Interface Module
  • RELIANCE 6MDBN-012102 Drive System Module
  • RELIANCE 0-60067-1 Industrial Drive Control Module
  • Reliance Electric 0-60067-A AutoMax Communication Module
  • RELIANCE S0-60065 System Control Module
  • RELIANCE S-D4006-F Industrial Drive Control Module
  • Reliance Electric S-D4011-E Shark I/O Analog Input Module
  • RELIANCE S-D4009-D Drive Control Module
  • RELIANCE S-D4043 Drive Control Module
  • Reliance DSA-MTR60D Digital Servo Motor Interface Module
  • RELIANCE 0-60063-2 Industrial Drive Control Module
  • RELIANCE S-D4041 Industrial Control Module
  • Reliance Electric SR3000 2SR40700 Power Module
  • RELIANCE VZ7000 UVZ701E Variable Frequency Drive Module
  • RELIANCE VZ3000G UVZC3455G Drive System Module
  • Reliance Electric S-D4039 Remote I/O Head Module
  • RELIANCE 0-57210-31 Industrial Drive Control Module
  • RELIANCE 0-56942-1-CA Control System Module
  • Reliance Electric 0-57100 AutoMax Power Supply Module
  • RELIANCE 0-54341-21 Industrial Control Module
  • RELIANCE 0-52712 800756-21B Drive Interface Board
  • KEBA PS242 - Power Supply Module
  • KEBA BL460A - Bus Coupling Module
  • KEBA K2-400 OF457/A Operating Panel
  • KEBA T200-M0A-Z20S7 Panel PC
  • KEBA K2-700 AMT9535 Touch Screen Panel
  • KEBA T20e-r00-Am0-C Handheld Terminal
  • KEBA OP350-LD/J-600 Operating Panel
  • KEBA 3HAC028357-001 DSQC 679 IRC5 Teach Pendant
  • KEBA E-32-KIGIN Digital Input Card
  • KEBA FP005 Front Panel
  • KEBA BT081 2064A-0 Module
  • KEBA FP-005-LC / FP-004-LC Front Panel
  • KEBA SI232 Serial Interface
  • KEBA T70-M00-AA0-LE KeTop Teach Pendant
  • KEBA KEMRO-BUS-8 Bus Module
  • KEBA IT-10095 Interface Terminal
  • KEBA RFG-150AWT Power Supply Unit
  • KEBA C55-200-BU0-W Control Unit
  • KEBA Tt100-MV1 Temperature Module
  • KEBA E-HSI-RS232 D1714C / D1714B Interface Module
  • KEBA E-HSI-CL D1713D Interface Module
  • KEBA D1321F-1 Input Module
  • KEBA E-32-D Digital Input Card
  • KEBA C5 DM570 Digital Module
  • KEBA XE020 71088 Module
  • KEBA E-16-DIGOUT Digital Output Card