Exercise 3. Battery Charging Fundamentals EXERCISE OBJECTIVE DISCUSSION OUTLINE DISCUSSION. Charging fundamentals

Size: px
Start display at page:

Download "Exercise 3. Battery Charging Fundamentals EXERCISE OBJECTIVE DISCUSSION OUTLINE DISCUSSION. Charging fundamentals"

Transcription

1 Exercise 3 Battery Charging Fundamentals EXERCISE OBJECTIVE When you have completed this exercise, you will be familiar with the effects of charge input, charge rate, and ambient temperature on the voltage and temperature profiles of a Ni-MI battery during a charge cycle. You will also be familiar with the effect of overcharge on the cycle life of a Ni-MI battery. You will know how to determine the charge efficiency of Ni-MI batteries. You will also know that proper charge control is required to achieve good charge efficiency and avoid battery overcharge. DISCUSSION OUTLINE The Discussion of this exercise covers the following points: Charging fundamentals Battery voltage and temperature profiles during charge Risks related to overcharging a Ni-MI battery Charge control and efficiency DISCUSSION Charging fundamentals A secondary battery is charged by connecting a source of dc power to the battery. During the charge cycle, the dc power supplied by the source converts the active chemicals in the battery to their original state (i.e., the high-energy state the chemicals have when the battery is fully charged). The number of charge-discharge cycles that can be performed during the life of a battery (i.e., the cycle life) not only depends on the discharge conditions (notably the depth of discharge), but also on the charge conditions (notably the chargetermination control which is discussed in the next exercise). The percentage of the battery s nominal capacity that is being fed in during the charge is known as the charge input. For instance, terminating the charge of a Ni-MI battery at a charge input of 120% or less of the battery s nominal capacity usually provides the longest cycle life for Ni-MI batteries (generally up to 1000 cycles), as shown in Figure 21. On the other hand, terminating the charge of a Ni-MI battery at a charge input of 150% offers a better relative battery capacity, but greatly reduces the cycle life of the battery (generally to cycles). Festo Didactic

2 Exercise 3 Battery Charging Fundamentals Discussion 150% charge input 120% charge input Relative capacity (%) Number of cycles Figure 21. Relative capacity of a Ni-MI battery versus the number of charge cycles for various charge inputs. For the conversion of the active chemicals of a battery to their original highenergy state to be as effective as possible and cause no harm to the battery (thereby maximizing the battery life), the charge current and duration must be carefully controlled to avoid excessive battery voltage and temperature from developing during the charge. In particular, the extent of overcharge must be carefully limited, and high temperatures as well as excessive temperature fluctuations must be avoided. Ni-MI batteries are commonly charged by forcing a constant charge current into the battery. Various constant-current charge methods for Ni-MI batteries are discussed in the next exercise of this manual. Battery voltage and temperature profiles during charge Figure 22 shows the typical voltage and temperature profiles that are observed when a Ni-MI battery is charged with a constant current. In Figure 22a, there is a bump in the cell voltage profile when the charge input reaches about 120% of the battery s nominal capacity. Figure 22b shows that the cell temperature starts to increase more rapidly when the battery capacity reaches about 60% of its nominal value. C F Cell voltage (V) Cell temperature Charge input (% of nominal capacity) (a) Cell voltage profile Charge input (% of nominal capacity) (b) Cell temperature profile Figure 22. Cell voltage and temperature of a Ni-MI battery versus charge input. 38 Fes t o Di dac t i c

3 Exercise 3 Battery Charging Fundamentals Discussion Figure 23 shows a family of voltage profiles of a Ni-MI battery measured at an ambient temperature of 20 C (68 F) for various charge rates. The higher the charge rate, the higher the voltage that develops across each battery cell. Also, the bump in the cell voltage profile of a Ni-MI battery at the end of the charge is sharper at higher charge rates Cell voltage (V) Charge input (%) Figure 23. Cell voltage profiles of a Ni-MI battery for various charge rates at an ambient temperature of 20 C (68 F). Festo Didactic

4 Exercise 3 Battery Charging Fundamentals Discussion Figure 24 shows a family of temperature profiles of a Ni-MI battery for various charge rates. The higher the charge rate, the higher the rate of increase of the battery temperature near the end of the charge. C F 1 Temperature Charge input (%) Figure 24. Temperature profiles of a Ni-MI battery for various charge rates. Figure 25 shows a family of cell voltage profiles obtained when a Ni-MI battery is charged with a constant current (0.3 ) for various ambient temperatures. The figure clearly shows that the bump in the cell voltage profile of a Ni-MI battery near the end of the charge becomes shallower as the ambient temperature increases. 40 Fes t o Di dac t i c

5 Exercise 3 Battery Charging Fundamentals Discussion 0 C (32 F) 20 C (68 F) 45 C (113 F) Cell voltage (V) Charge input (%) Figure 25. Cell voltage profiles of a Ni-MI battery for various ambient temperatures at a constant charge rate of 0.3. Risks related to overcharging a Ni-MI battery Overcharging a Ni-MI battery can cause all kinds of damage to the battery cells and thus shortens the battery cycle life significantly. The most common harmful effects due to overcharge are pressure build-ups inside the battery cell. Pressure build-ups are due to excessive oxygen generation at the cathode and occur when the cathode reaches full charge. To alleviate this problem, Ni-MI batteries are set with an oxygen-recombination mechanism that prevents gassing (production of gas) up to a certain extent. This mechanism enables the excess oxygen produced by the cathode (when full charge is reached) to react with the hydrogen in the anode, producing water, and so limiting pressure build-ups. Nonetheless, proper charge control is required to avoid overcharging Ni-MI batteries, and thus, potential damages that could reduce the battery life. Note that the oxygenrecombination mechanism is possible because the metal hydride contained in the anode has a higher effective capacity than the materials contained in the cathode. This means that there is usually still enough material in the anode to recombine with the excess oxygen produced in the fully charged cathode. If the overcharge is prolonged for enough time, however, the materials in the anode will also reach full charge and gassing will occur. Charge control and efficiency When charging Ni-MI batteries using a constant current, proper charge control is required to ensure that the battery is fully charged when the charge is terminated, Festo Didactic

6 Exercise 3 Battery Charging Fundamentals Discussion and also to limit overcharge and prevent excessive battery temperatures. The voltage and temperature profiles obtained when Ni-MI batteries are charged using a constant current are used in battery chargers to implement efficient charge control. These charge-control techniques and charging methods are studied in the next exercise. As charge efficiency takes into account both the efficiency of the charge cycle and that of the discharge cycle, it is in fact the charge/discharge efficiency. However, for brevity purposes, the term charge efficiency is generally used. When charging a battery, the charge efficiency is the ratio of the energy that is actually used for the electrochemical conversion of the active materials to their original high-energy state to the total energy supplied to the battery being charged. The energy which is not used for the conversion of the active materials to the high-energy state is lost in producing unwanted reactions within the battery, such as surplus oxygen production (gassing). Charging Ni-MI batteries is a process that has a relatively good charge efficiency, but is sensitive to both the ambient temperature and charge rate. Figure 26 shows the charge efficiency (measured in Figure 26 as the relative discharge capacity obtained after the charge cycle) of Ni-MI batteries as a function of ambient temperature for different charge rates. The charge efficiency of Ni-MI batteries provides a discharge capacity close to 100% at temperatures ranging from 0 C (32 F) to room temperature (about 20 C or 68 F), but the discharge capacity decreases significantly at temperatures above 25 C (77 F). Furthermore, the charge rate also influences charge efficiency, especially at higher temperatures. The higher the charge rate, the higher the charge efficiency. Temperature during charge ( F) 1.0 Discharge capacity (%) Room temperature Temperature during charge ( C) Figure 26. Discharge capacity (measured at 0.2 discharge rate) of Ni-MI batteries versus ambient temperature during charge for various charge rates. The charge-control technique also greatly influences charge efficiency as it determines the extent to which the battery is overcharged. In fact, at a certain point in the charge cycle, the energy supplied to the battery mainly produces heat and is no longer used to return the active chemicals in the battery to their highenergy state, thus reducing charge efficiency. 42 Fes t o Di dac t i c

7 Exercise 3 Battery Charging Fundamentals Procedure Outline PROCEDURE OUTLINE The Procedure is divided into the following sections: Set up and connections Full battery discharge Battery voltage and temperature profiles at a charge rate of PROCEDURE High voltages are present in this laboratory exercise. Do not make or modify any banana jack connections with the power on unless otherwise specified. Set up and connections In this section, you will set up and connect the equipment. a All exercises should ideally be performed at an ambient temperature between 20 C (68 F) and 25 C (77 F). 1. Refer to the Equipment Utilization Chart in Appendix A to obtain the list of equipment required to perform this exercise. Install the equipment required in the Workstation. 2. Make sure the main power switch on the Four-Quadrant Dynamometer/ Power Supply is set to the O (off) position, then connect its Power Input to an ac power outlet. 3. Connect the USB port of the Four-Quadrant Dynamometer/ Power Supply to a USB port of the host computer. 4. Turn the Four-Quadrant Dynamometer/Power Supply on, then set the Operating Mode switch to Power Supply. 5. Turn the host computer on, then start the LVDAC-EMS software. In the LVDAC-EMS Start-Up window, make sure the Four-Quadrant Dynamometer/Power Supply is detected. Select the network voltage and frequency that correspond to the voltage and frequency of the local ac power network, then click the OK button to close the LVDAC-EMS Start-Up window. Festo Didactic

8 Exercise 3 Battery Charging Fundamentals Procedure 6. Set up the circuit shown in Figure 27 using either of the batteries in the Ni-MI Batteries module. Make sure that the battery is fully charged by performing the Battery state-of-charge evaluation section described in the procedure of Exercise 1. Connect the thermistor inputs of the Four-Quadrant Dynamometer/Power Supply to the thermistor of the Ni-MI battery to be discharged (without connecting the series resistor). Four-Quadrant Dynamometer/Power Supply * * 12 V Ni-MH battery N (*) Meter in the Four-Quadrant Dynamometer/Power Supply window of LVDAC-EMS Figure 27. Ni-MI battery connected to the Four-Quadrant Dynamometer/Power Supply operating as a battery discharger. Full battery discharge In this section, you will fully discharge one battery of the Ni-MI Batteries module. During the discharge cycle, you will observe the battery voltage, current, temperature, and released energy. 7. In LVDAC-EMS, open the Four-Quadrant Dynamometer/Power Supply window, then make the following settings: Set the Function parameter to Battery Discharger. Set the Discharge Current parameter to 2 A (1 ). Set the Discharge Duration parameter to 60 min. Set the Cutoff Voltage parameter to 10.0 V (value recommended by the battery manufacturer). Also, reset the Energy Meter to make sure that the amount of energy discharged from the battery is currently equal to 0.00 Wh. 44 Fes t o Di dac t i c

9 Exercise 3 Battery Charging Fundamentals Procedure a The setting of the discharge duration corresponds to the time required to remove approximately 100% of the energy contained in a fully charged battery when discharging at a rate of 1. Depending on the actual state of charge of the battery, the discharge will terminate when the cutoff voltage is reached or at the end of the discharge duration. 8. In LVDAC-EMS, open the Data Table window. Set the timer to make 480 records with an interval of 30 seconds between each record. This setting corresponds to a 240-minute period of observation, providing enough time to record the parameters during the battery discharge, the pause time required to cool the battery, and the subsequent battery charge. Set the Data Table to record the voltage, current, energy, and temperature indicated by the meters in the Four-Quadrant Dynamometer/Power Supply window, and the time associated with each record. 9. In the Four-Quadrant Dynamometer/Power Supply window, start the Battery Discharger, then immediately start the timer in the Data Table window to begin recording data. 10. About 15 minutes after the battery discharge began, measure the battery voltage using an external multimeter. Compare the voltage measured with the multimeter with that indicated by the voltmeter on the Four-Quadrant Dynamometer/Power Supply. If the values differ, correct the cutoff voltage of the Battery Discharger accordingly. For example, if the module voltmeter underestimates the battery voltage by 0.3 V, reduce the cutoff voltage to 9.7 V to ensure the discharge terminates when the battery voltage is actually 10.0 V. 11. As soon as the Battery Discharger stops the charge (either because the discharge duration has elapsed or the cutoff voltage is reached), remove the Ni-MI Batteries module from the workstation (without removing the connections to the battery and thermistor) in order to ventilate the Ni-MH battery pack inside the module until its temperature decreases to less than 26 C (79 F). If available, use a fan to speed up the process. This step is necessary to return the battery temperature to near ambient temperature as soon as possible and proceed with the next section. a Do not stop the timer in the Data Table window at the end of the discharge cycle. 12. While the Ni-MI Batteries module is being ventilated, record the amount of energy supplied by the battery (indicated by the Energy Meter in the Four- Quadrant Dynamometer/Power Supply window) during the discharge cycle. Energy supplied during discharge: Wh Festo Didactic

10 Exercise 3 Battery Charging Fundamentals Procedure 13. Calculate the discharge capacity (in Ah) of the Ni-MI battery using the discharge duration measured during the discharge cycle. Discharge duration: Discharge capacity: h Ah Battery voltage and temperature profiles at a charge rate of In this section, you will charge the fully discharged Ni-MI battery at a rate of 0.5 (1 A) using the temperature cutoff (TCO) technique as a charge-control method. During the charge cycle, you will observe the battery voltage, current, and temperature, as well as the energy returned to the battery. You will then calculate the charge efficiency and plot the voltage and temperature profiles of the Ni-MI battery measured throughout the exercise. You will end the exercise by making some observations about the voltage and temperature profiles of the Ni-MI battery. 14. Before proceeding with the next step, wait for the battery temperature indicated by the Temperature Meter in LVDAC-EMS to drop below 26 C (79 F). When the temperature of the Ni-MI battery has decreased below 26 C (79 F), put the Ni-MI Batteries module back into the workstation and stop any external ventilation. 15. In the Four-Quadrant Dynamometer/Power Supply window, make the following settings: From now on, the Ni-MI Battery Charger (Constant- Current Timed Charge with TCO) function is referred to as the Ni-MI Battery Charger for brevity purposes. Set the Function parameter to Ni-MI Battery Charger (Constant- Current Timed Charge with TCO). When the Ni-MI Battery Charger (Constant-Current Timed Charge with TCO) function is selected, the Four-Quadrant Dynamometer/Power Supply operates as a Ni-MI battery charger using the following parameters to achieve charge control: charge current, charge duration, and TCO. Set the Charge Current parameter to 1 A (0.5 ). This sets the charge current of the Ni-MI battery charger to 1 A. Set the Charge Duration parameter to 2.5 hours. This sets the duration of the charge cycle to 2.5 hours. a Set the TCO parameter to 50 C (122 F). Do not reset the Energy Meter. Setting the TCO (temperature cutoff) to 50 C (122 F) makes the battery charger stop automatically when the battery reaches a temperature of 50 C (122 F). Other charge-control methods are discussed in detail in Exercise 4. In this exercise, the TCO temperature should be reached before the end of the charge duration. However, in the event the TCO fails to work, a charge 46 Fes t o Di dac t i c

11 Exercise 3 Battery Charging Fundamentals Procedure duration of 2.5 hours has been set in order to prevent excessive battery overcharge. 16. In the Four-Quadrant Dynamometer/Power Supply window, start the Ni-MI Battery Charger. Let the battery charge until the Ni-MI Battery Charger automatically stops the charge (when the measured battery temperature reaches the cutoff temperature of 50 C or 122 F). This should take approximately 120 minutes. When the charge is terminated, immediately stop the timer in the Data Table window to stop recording data, then save the recorded data. 17. Does the energy value displayed by the Energy Meter in the Four-Quadrant Dynamometer/Power Supply window show that the energy returned to the battery during the charge at 0.5 exceeds the energy supplied by the battery during the discharge? Yes No Record the amount of energy returned to the battery during the charge cycle. Energy returned to the battery during charge: Wh 18. Calculate the charge efficiency (in %) of the charge cycle using the amount of energy supplied during the discharge recorded in step 12 and the amount of energy returned to the battery during the charge cycle recorded in the previous step. Charge efficiency: % 19. Export your recorded data to a spreadsheet application and create separate plots for the voltage and temperature profiles of the Ni-MI battery during the full discharge at a rate of 1 followed by a charge cycle at a rate of 0.5 using TCO as the charge termination method. a It is suggested that you include the data table and the graph plotted in this exercise in your lab report. 20. Is there a bump in the voltage profile of the Ni-MI battery near the end of the charge cycle at 0.5? Yes No 21. Does the battery voltage decrease slightly at the end of the charge at 0.5? Yes No Festo Didactic

12 Exercise 3 Battery Charging Fundamentals Conclusion 22. Is there a perceptible voltage plateau near the end of the charge cycle at 0.5? Yes No 23. Record the duration of the charge cycle at 0.5, then calculate the charge input (percentage of the battery nominal capacity) that has been returned to the battery during the charge cycle. Charge duration: h Charge input: % 24. Repeat the previous step assuming that the charge stopped at the peak of the voltage bump (i.e., at the beginning of the voltage plateau) observed in the voltage profile of the Ni-MI battery during the charge cycle at 0.5. Charge duration at the peak of the voltage bump: h Charge input at the peak of the voltage bump: % 25. Describe the temperature profile of the Ni-MI battery during the charge cycle at Close LVDAC-EMS, then turn off all the equipment. Disconnect all leads and return them to their storage location. CONCLUSION In this exercise, you became familiar with the effects of charge input, charge rate, and ambient temperature on the voltage and temperature profiles of a Ni-MI battery during a charge cycle. You also became familiar with the effect of overcharge on the cycle life of a Ni-MI battery. You learned how to determine the charge efficiency of Ni-MI batteries. You also learned that proper charge control is required to achieve good charge efficiency and avoid battery overcharge. REVIEW QUESTIONS 1. What is the optimal charge input for a Ni-MI battery during a full charge cycle and why? 48 Fes t o Di dac t i c

13 Exercise 3 Battery Charging Fundamentals Review Questions 2. What is the relationship between the voltage measured across a Ni-MI battery and the charge rate during a charge cycle? How is the bump observed in the voltage profile curve at the end of the charge cycle influenced by the charge rate? 3. What is the effect of the charge rate on the temperature of a Ni-MI battery during a charge cycle at a constant current rate? 4. Why is it necessary to avoid excessive overcharging of a Ni-MI battery? 5. During a full charge cycle, a Ni-MI battery is supplied a charge input equal to 120% of its nominal capacity. During the subsequent discharge cycle, the battery yields a total current equal to only 105% of its nominal capacity. Explain this phenomenon in relation to charge efficiency. Festo Didactic

Battery Capacity Versus Discharge Rate

Battery Capacity Versus Discharge Rate Exercise 2 Battery Capacity Versus Discharge Rate EXERCISE OBJECTIVE When you have completed this exercise, you will be familiar with the effects of the discharge rate and battery temperature on the capacity

More information

The Discussion of this exercise covers the following points:

The Discussion of this exercise covers the following points: Exercise 1 Battery Fundamentals EXERCISE OBJECTIVE When you have completed this exercise, you will be familiar with various types of lead-acid batteries and their features. DISCUSSION OUTLINE The Discussion

More information

Exercise 2. Discharge Characteristics EXERCISE OBJECTIVE DISCUSSION OUTLINE DISCUSSION. Cutoff voltage versus discharge rate

Exercise 2. Discharge Characteristics EXERCISE OBJECTIVE DISCUSSION OUTLINE DISCUSSION. Cutoff voltage versus discharge rate Exercise 2 Discharge Characteristics EXERCISE OBJECTIVE When you have completed this exercise, you will be familiar with the discharge characteristics of lead-acid batteries. DISCUSSION OUTLINE The Discussion

More information

Exercise 2-1. The Separately-Excited DC Motor N S EXERCISE OBJECTIVE DISCUSSION OUTLINE DISCUSSION. Simplified equivalent circuit of a dc motor

Exercise 2-1. The Separately-Excited DC Motor N S EXERCISE OBJECTIVE DISCUSSION OUTLINE DISCUSSION. Simplified equivalent circuit of a dc motor Exercise 2-1 The Separately-Excited DC Motor EXERCISE OBJECTIVE When you have completed this exercise, you will be able to demonstrate the main operating characteristics of a separately-excited dc motor

More information

Armature Reaction and Saturation Effect

Armature Reaction and Saturation Effect Exercise 3-1 Armature Reaction and Saturation Effect EXERCISE OBJECTIVE When you have completed this exercise, you will be able to demonstrate some of the effects of armature reaction and saturation in

More information

Exercise 7. Thyristor Three-Phase Rectifier/Inverter EXERCISE OBJECTIVE DISCUSSION OUTLINE DISCUSSION. Thyristor three-phase rectifier/inverter

Exercise 7. Thyristor Three-Phase Rectifier/Inverter EXERCISE OBJECTIVE DISCUSSION OUTLINE DISCUSSION. Thyristor three-phase rectifier/inverter Exercise 7 Thyristor Three-Phase Rectifier/Inverter EXERCISE OBJECTIVE When you have completed this exercise, you will know what a thyristor threephase rectifier/limiter (thyristor three-phase bridge)

More information

Permanent Magnet DC Motor Operating as a Generator

Permanent Magnet DC Motor Operating as a Generator Exercise 2 Permanent Magnet DC Motor Operating as a Generator EXERCIE OBJECTIVE When you have completed this exercise, you will be familiar with the construction of permanent magnet dc motors as well as

More information

Electricity and New Energy. Lead-Acid Batteries

Electricity and New Energy. Lead-Acid Batteries Electricity and New Energy Lead-Acid Batteries 86351-0 Order no.: 86351-10 Revision level: 12/2014 By the staff of Festo Didactic Festo Didactic Ltée/Ltd, Quebec, Canada 2010 Internet: www.festo-didactic.com

More information

Principles of Doubly-Fed Induction Generators (DFIG)

Principles of Doubly-Fed Induction Generators (DFIG) Renewable Energy Principles of Doubly-Fed Induction Generators (DFIG) Courseware Sample 86376-F0 A RENEWABLE ENERGY PRINCIPLES OF DOUBLY-FED INDUCTION GENERATORS (DFIG) Courseware Sample by the staff

More information

Exercise 6. Three-Phase AC Power Control EXERCISE OBJECTIVE DISCUSSION OUTLINE DISCUSSION. Introduction to three-phase ac power control

Exercise 6. Three-Phase AC Power Control EXERCISE OBJECTIVE DISCUSSION OUTLINE DISCUSSION. Introduction to three-phase ac power control Exercise 6 Three-Phase AC Power Control EXERCISE OBJECTIVE When you have completed this exercise, you will know how to perform ac power control in three-phase ac circuits, using thyristors. You will know

More information

Permanent Magnet DC Motor

Permanent Magnet DC Motor Renewable Energy Permanent Magnet DC Motor Courseware Sample 86357-F0 A RENEWABLE ENERGY PERMANENT MAGNET DC MOTOR Courseware Sample by the staff of Lab-Volt Ltd. Copyright 2011 Lab-Volt Ltd. All rights

More information

1-3 RAMP AND TORQUE BOOST EXERCISE OBJECTIVE

1-3 RAMP AND TORQUE BOOST EXERCISE OBJECTIVE 1-3 RAMP AND TORQUE BOOST EXERCISE OBJECTIVE Understand the acceleration and deceleration time settings. Introduce the linear and S-shape acceleration and deceleration patterns. Introduce the Torque boost

More information

Lead-Acid Batteries Training System

Lead-Acid Batteries Training System 8010-45 Lead-Acid Batteries Training System LabVolt Series Datasheet Festo Didactic en 220 V - 50 Hz 03/2018 Table of Contents General Description 2 Courseware 3 Modular Design Approach 4 Features & Benefits

More information

Small-Scale Wind Power Electricity Generation Training System

Small-Scale Wind Power Electricity Generation Training System Small-Scale Wind Power Electricity Generation Training System LabVolt Series Datasheet Festo Didactic en 220 V - 60 Hz 04/2018 Table of Contents General Description 2 Courseware 3 Modular Design Approach

More information

The purpose of this lab is to explore the timing and termination of a phase for the cross street approach of an isolated intersection.

The purpose of this lab is to explore the timing and termination of a phase for the cross street approach of an isolated intersection. 1 The purpose of this lab is to explore the timing and termination of a phase for the cross street approach of an isolated intersection. Two learning objectives for this lab. We will proceed over the remainder

More information

Permanent Magnet DC Motor

Permanent Magnet DC Motor Electricity and New Energy Permanent Magnet DC Motor Student Manual 86357-00 Order no.: 86357-00 Revision level: 12/2014 By the staff of Festo Didactic Festo Didactic Ltée/Ltd, Quebec, Canada 2011 Internet:

More information

MODEL UC 14YFA. Hitachi. Power Tools TECHNICAL DATA AND SERVICE MANUAL CHARGER UC 14YFA SPECIFICATIONS AND PARTS ARE SUBJECT TO CHANGE FOR IMPROVEMENT

MODEL UC 14YFA. Hitachi. Power Tools TECHNICAL DATA AND SERVICE MANUAL CHARGER UC 14YFA SPECIFICATIONS AND PARTS ARE SUBJECT TO CHANGE FOR IMPROVEMENT MODEL UC 14YFA Hitachi Power Tools CHARGER UC 14YFA TECHNICAL DATA AND SERVICE MANUAL U LIST No. F888 Aug. 2003 SPECIFICATIONS AND PARTS ARE SUBJECT TO CHANGE FOR IMPROVEMENT CONTENTS Page 1. PRODUCT NAME...1

More information

Exercise 5-1. Primary Resistor Starters EXERCISE OBJECTIVE DISCUSSION. Understand how primary resistor starters operate.

Exercise 5-1. Primary Resistor Starters EXERCISE OBJECTIVE DISCUSSION. Understand how primary resistor starters operate. Exercise 5-1 Primary Resistor Starters EXERCISE OBJECTIVE Understand how primary resistor starters operate. DISCUSSION High starting torque can result in sudden acceleration and damage to the driven machinery.

More information

Understand how soft starters operate.

Understand how soft starters operate. Exercise 5-2 Soft Starters EXERCISE OBJECTIVE Understand how soft starters operate. DISCUSSION Soft starters are solid-state devices providing gradual voltage increase, for the purpose of starting a motor

More information

Duracell Battery Glossary

Duracell Battery Glossary Duracell Battery Glossary 1 Duracell Battery Glossary AB Absorption Alloy Ambient Humidity Ambient Temperature Ampere-Hour Capacity Anode Battery or Pack Bobbin C-Rate (also see Hourly Rate) Capacity Capacity

More information

GLOSSARY: TECHNICAL BATTERY TERMS

GLOSSARY: TECHNICAL BATTERY TERMS GLOSSARY: TECHNICAL BATTERY TERMS AB5 Absorption Alloy Ambient Humidity Ambient Temperature Ampere-Hour Capacity Anode Battery or Pack Bobbin C-Rate (also see Hourly Rate) Capacity Capacity Retention (or

More information

Basic Renewable Energy Training System

Basic Renewable Energy Training System Basic Renewable Energy Training System LabVolt Series Datasheet Festo Didactic en 220 V - 60 Hz 07/2018 Table of Contents General Description 2 Courseware 3 Modular Design Approach 4 Features & Benefits

More information

EUROBAT EUROBAT GUIDE FOR MOTIVE POWER VRLA BATTERIES

EUROBAT EUROBAT GUIDE FOR MOTIVE POWER VRLA BATTERIES EUROBAT EUROBAT GUIDE FOR MOTIVE POWER VRLA BATTERIES EUROBAT, the Association of European Storage Battery Manufacturers, has 36 regular and associate member companies and represents more than 85 % of

More information

A Electric Power / Controls SMART GRID TECHNOLOGIES 0.2 kw

A Electric Power / Controls SMART GRID TECHNOLOGIES 0.2 kw A Electric Power / Controls SMART GRID TECHNOLOGIES 0.2 kw TRAINING SYSTEM, MODEL 8010-C Shown with optional host computer. The Smart Grid Technologies Training System, Model 8010-C, combines Lab-Volt's

More information

There are several technological options to fulfill the storage requirements. We cannot use capacitors because of their very poor energy density.

There are several technological options to fulfill the storage requirements. We cannot use capacitors because of their very poor energy density. ET3034TUx - 7.5.1 - Batteries 1 - Introduction Welcome back. In this block I shall discuss a vital component of not only PV systems but also renewable energy systems in general. As we discussed in the

More information

Power Electronics Training System

Power Electronics Training System Power Electronics Training System LabVolt Series Datasheet Festo Didactic en 220 V - 60 Hz 07/2018 Table of Contents General Description 2 Courseware 5 Modular Design Approach 5 Features & Benefits 5 List

More information

NorthStar Battery Company DCN: SES DCR: 1548-S09 Date:

NorthStar Battery Company DCN: SES DCR: 1548-S09 Date: Application Manual and Product Information for NorthStar Battery Company Table of Contents Introduction...3 NSB Blue Series Benefits...4 ISO Certifications...5 NSB Blue Product Specifications...6 Leak

More information

INTRODUCTION. Specifications. Operating voltage range:

INTRODUCTION. Specifications. Operating voltage range: INTRODUCTION INTRODUCTION Thank you for purchasing the EcoPower Electron 65 AC Charger. This product is a fast charger with a high performance microprocessor and specialized operating software. Please

More information

Electromechanical Training System

Electromechanical Training System Electromechanical Training System LabVolt Series Datasheet Festo Didactic en 240 V - 50 Hz 06/2018 Table of Contents General Description 2 Courseware 3 Modular Design Approach 4 Features & Benefits 4 List

More information

MODEL UC 24YJ. Hitachi. Power Tools TECHNICAL DATA AND SERVICE MANUAL CHARGER UC 24YJ SPECIFICATIONS AND PARTS ARE SUBJECT TO CHANGE FOR IMPROVEMENT

MODEL UC 24YJ. Hitachi. Power Tools TECHNICAL DATA AND SERVICE MANUAL CHARGER UC 24YJ SPECIFICATIONS AND PARTS ARE SUBJECT TO CHANGE FOR IMPROVEMENT MODEL UC 24YJ Hitachi Power Tools CHARGER UC 24YJ TECHNICAL DATA AND SERVICE MANUAL U LIST No. F889 Oct. 2003 SPECIFICATIONS AND PARTS ARE SUBJECT TO CHANGE FOR IMPROVEMENT CONTENTS Page 1. PRODUCT NAME...

More information

Super Brain 977. AC/DC Charger with Dual Output and Discharge Function. User s Manual. Model Rectifier Corporation

Super Brain 977. AC/DC Charger with Dual Output and Discharge Function. User s Manual. Model Rectifier Corporation Super Brain 977 AC/DC Charger with Dual Output and Discharge Function User s Manual Model Rectifier Corporation 80 Newfield Avenue Edison, NJ 08837-3817 Phone: 732-225-6360 www.modelrectifier.com Please

More information

The Discussion of this exercise covers the following points: Centrifugal pumps in series Centrifugal pumps in parallel. Centrifugal pumps in series

The Discussion of this exercise covers the following points: Centrifugal pumps in series Centrifugal pumps in parallel. Centrifugal pumps in series Exercise 2-4 Centrifugal Pumps in Series and in Parallel (Optional Exercise) EXERCISE OBJECTIVE In this exercise, you will observe the effects that connecting two centrifugal pumps in series or parallel

More information

Why Ni-Cd batteries are superior to VRLA batteries. Statements and facts

Why Ni-Cd batteries are superior to VRLA batteries. Statements and facts Why Ni-Cd batteries are superior to VRLA batteries Statements and facts 1. Maintenance Maintenance for VLRA batteries leads to higher costs than for nickelcadmium batteries. 2. Lifetime In practice, the

More information

OPERATING INSTRUCTIONS

OPERATING INSTRUCTIONS Manual No LI-4159-MIL OPERATING INSTRUCTIONS OPERATING INSTRUCTIONS NAVY BATTERY CHARGER / ANALYZER P/N 4159-MIL MODEL CA-1550-MIL NSN: 4920-01-498-2543 Issued By: LamarTechnologies LLC 14900 40th Ave.

More information

Conventional DC Machines and Universal Motor

Conventional DC Machines and Universal Motor Electricity and New Energy Conventional DC Machines and Universal Motor Student Manual 88943-00 Order no.: 88943-00 First Edition Revision level: 01/2015 By the staff of Festo Didactic Festo Didactic Ltée/Ltd,

More information

Power Electronics Training System

Power Electronics Training System Power Electronics Training System LabVolt Series Datasheet Festo Didactic en 240 V - 50 Hz 07/2018 Table of Contents General Description 2 Courseware 5 Modular Design Approach 5 Features & Benefits 5 List

More information

Exercise 1-1. Lockout/Tagout Procedure EXERCISE OBJECTIVE DISCUSSION. Become familiar with the Industrial Controls Training System.

Exercise 1-1. Lockout/Tagout Procedure EXERCISE OBJECTIVE DISCUSSION. Become familiar with the Industrial Controls Training System. Exercise 1-1 Lockout/Tagout Procedure EXERCISE OBJECTIVE Become familiar with the Industrial Controls Training System. Understand and perform proper lockout/tagout procedures during industrial servicing

More information

NaS (sodium sulfura) battery modelling

NaS (sodium sulfura) battery modelling In the name of GOD NaS (sodium sulfura) battery modelling Course: Energy storage systems University of Tabriz Saeed abapour Smart Energy Systems Laboratory 1 Introduction: This study address wind generation

More information

CHARGE METHODS FOR NI-CD BATTERIES

CHARGE METHODS FOR NI-CD BATTERIES CHARGE METHODS FOR NI-CD BATTERIES If the charge conditions are not appropriate, not only will the batteries not display their full performance potential, but the cycle life could also be shortened, and

More information

SPECIFICATION FOR VH F CONTENTS

SPECIFICATION FOR VH F CONTENTS CONTENTS 1/ SCOPE 2/ GENERAL ELECTRICAL CHARACTERISTICS 3/ GENERAL MECHANICAL CELL SPECIFICATION 4/ CAPACITY 5/ CHARGE RECOMMENDATIONS 6/ CYCLE LIFE 7/ CELL AND BATTERY MANAGEMENT 8/ SPECIFICATION APPROVALS

More information

Table of Contents Charge Characteristics 2-2. Discharge Characteristics 2-3. Storage Characteristics. 3 Charging Methods and Charging Circuits

Table of Contents Charge Characteristics 2-2. Discharge Characteristics 2-3. Storage Characteristics. 3 Charging Methods and Charging Circuits Table of Contents 1 Overview of Twicell Batteries 1-1. Features of the Twicell1-2. Principle and Structure of the Nickel-Metal Hydride Battery 2 Battery Characteristics 2-2-1. Charge Characteristics 2-2.

More information

Phosphate-base Lithium-ion Battery Pack Model:LFP V 1350Ah Product Specifications Lithium Energy Solution 1/8

Phosphate-base Lithium-ion Battery Pack Model:LFP V 1350Ah Product Specifications Lithium Energy Solution 1/8 Phosphate-base Lithium-ion Battery Pack Model:LFP1350-48 48V 1350Ah Product Specifications Lithium Energy Solution 1/8 1. Product overview LFP1350-48 Products are mainly for customized development of high

More information

Source-Side Fuse/Load-Side Recloser Coordination

Source-Side Fuse/Load-Side Recloser Coordination How to Coordinate ransformer Primary-Side Fuses with Feeder Reclosers Using Coordinaide M he S&C Protection and Coordination Assistant Part I: Conservative Method his is the first in a series of articles

More information

The Discussion of this exercise covers the following points:

The Discussion of this exercise covers the following points: Exercise 3-3 Venturi Tubes EXERCISE OBJECTIVE In this exercise, you will study the relationship between the flow rate and the pressure drop produced by a venturi tube. You will describe the behavior of

More information

Programming of different charge methods with the BaSyTec Battery Test System

Programming of different charge methods with the BaSyTec Battery Test System Programming of different charge methods with the BaSyTec Battery Test System Important Note: You have to use the basytec software version 4.0.6.0 or later in the ethernet operation mode if you use the

More information

Super Brain 989 The Pinnacle of Performance with Power to Spare User s Manual Model Rectifier Corporation

Super Brain 989 The Pinnacle of Performance with Power to Spare User s Manual Model Rectifier Corporation Super Brain 989 The Pinnacle of Performance with Power to Spare User s Manual Temperature sensor jack Sensor included Model Rectifier Corporation Please read this entire manual including all Safety Cautions,

More information

Chapter 1: Battery management: State of charge

Chapter 1: Battery management: State of charge Chapter 1: Battery management: State of charge Since the mobility need of the people, portable energy is one of the most important development fields nowadays. There are many types of portable energy device

More information

Understanding the Battery

Understanding the Battery Understanding the Battery Materials Needed For this lesson, you will need the following materials: Student Manual Dummy Battery Visuals Understanding a Battery training video Battery Application Guide

More information

Basic Thermal Energy Transfer with a Heat Exchanger

Basic Thermal Energy Transfer with a Heat Exchanger Exercise 4-1 Basic Thermal Energy Transfer with a Heat Exchanger EXERCISE OBJECTIVE When you have completed this exercise, you will be familiar with the basic principles of operation of a typical heat

More information

NorthStar Battery (NSB) Telecom Application Manual

NorthStar Battery (NSB) Telecom Application Manual NorthStar Battery (NSB) Telecom Application Manual Contents Silver Star Technology TM... 3 1 Introduction... 3 1.1 The Silver Star Technology TM and Semi-Stable Mains... 3 1.2 Discharge Rate... 3 2 Charge...

More information

Reference: Photovoltaic Systems, p References: Photovoltaic Systems, Chap. 7 National Electrical Code (NEC), Articles 110,

Reference: Photovoltaic Systems, p References: Photovoltaic Systems, Chap. 7 National Electrical Code (NEC), Articles 110, Charge controllers are required in most PV systems using a battery to protect against battery overcharging and overdischarging. There are different types of charge controller design, and their specifications

More information

Testing Lead-acid fire panel batteries

Testing Lead-acid fire panel batteries Thames House, 29 Thames Street Kingston upon Thames, Surrey, KT1 1PH Phone: +44 (0) 8549 5855 Website: www.fia.uk.com Testing Lead-acid fire panel batteries 1. Background - Methods of testing batteries

More information

Fuel Cell Lab Manual. Non Conventional Energy Systems Facility. Non Conventional Energy Systems Facility. Boiler House

Fuel Cell Lab Manual. Non Conventional Energy Systems Facility. Non Conventional Energy Systems Facility. Boiler House Fuel Cell Lab Manual Non Conventional Energy Systems Facility Boiler House Department of Mechanical Engineering IIT Kanpur System Description The Nexa system provides up to 1200 watts of unregulated DC

More information

Advanced Troubleshooting Guide Snorkel V Battery Charger Rev 0 3JAN07

Advanced Troubleshooting Guide Snorkel V Battery Charger Rev 0 3JAN07 Advanced Troubleshooting Guide Snorkel 3050097 24V Battery Charger Rev 0 3JAN07 1. How It Works: The 3050097 charger converts AC voltage to DC voltage, then uses high frequency to re-convert it to DC voltage/current

More information

Familiarize yourself with the pressure loss phenomenon. The Discussion of this exercise covers the following point:

Familiarize yourself with the pressure loss phenomenon. The Discussion of this exercise covers the following point: Exercise 3-2 Pressure Loss EXERCISE OBJECTIVE Familiarize yourself with the pressure loss phenomenon. DISCUSSION OUTLINE The Discussion of this exercise covers the following point: Pressure loss Major

More information

Analytical thermal model for characterizing a Li-ion battery cell

Analytical thermal model for characterizing a Li-ion battery cell Analytical thermal model for characterizing a Li-ion battery cell Landi Daniele, Cicconi Paolo, Michele Germani Department of Mechanics, Polytechnic University of Marche Ancona (Italy) www.dipmec.univpm.it/disegno

More information

Batteries Specifications. Estimating when they will be fully discharged

Batteries Specifications. Estimating when they will be fully discharged Batteries Specifications Estimating when they will be fully discharged Batteries Batteries are electrochemical cells. A chemical reaction inside the battery produces a voltage between two terminals. Connecting

More information

LEM Transducers Generic Mounting Rules

LEM Transducers Generic Mounting Rules Application Note LEM Transducers Generic Mounting Rules Fig. 1: Transducer mounted on the primary bar OR using housing brackets 1 Fig. 2: Transducer mounted horizontally OR vertically 2 Fig. 3: First contact

More information

DYNAMIC BOOST TM 1 BATTERY CHARGING A New System That Delivers Both Fast Charging & Minimal Risk of Overcharge

DYNAMIC BOOST TM 1 BATTERY CHARGING A New System That Delivers Both Fast Charging & Minimal Risk of Overcharge DYNAMIC BOOST TM 1 BATTERY CHARGING A New System That Delivers Both Fast Charging & Minimal Risk of Overcharge William Kaewert, President & CTO SENS Stored Energy Systems Longmont, Colorado Introduction

More information

DESIGN OF HIGH ENERGY LITHIUM-ION BATTERY CHARGER

DESIGN OF HIGH ENERGY LITHIUM-ION BATTERY CHARGER Australasian Universities Power Engineering Conference (AUPEC 2004) 26-29 September 2004, Brisbane, Australia DESIGN OF HIGH ENERGY LITHIUM-ION BATTERY CHARGER M.F.M. Elias*, A.K. Arof**, K.M. Nor* *Department

More information

Familiarization with voltage and current measurements. 1. Disconnect your training system from the wall outlet.

Familiarization with voltage and current measurements. 1. Disconnect your training system from the wall outlet. Job Sheet 6 Geothermal Heat Pumps OBJECTIVE In this job sheet, you will determine the coefficient of performance (COP) and the energy efficiency ratio (EER) using measured temperature, humidity, voltage,

More information

Solar power training packages From basic to industrial concepts

Solar power training packages From basic to industrial concepts Solar power training packages From basic to industrial concepts Solar Power Production As solar power production becomes more and more affordable for residential applications, no wonder the number of installations

More information

Ag Features. Multi-Stage Charging. Solar Panel or DC Input. Maximum Power Point Tracking (MPPT) Very Low Power Consumption

Ag Features. Multi-Stage Charging. Solar Panel or DC Input. Maximum Power Point Tracking (MPPT) Very Low Power Consumption Datasheet Ag103 Intelligent Sealed Lead Acid Solar Battery Charger Module Pb 1 Features Multi-Stage Charging Solar Panel or DC Input Maximum Power Point Tracking (MPPT) Very Low Power Consumption Wide

More information

Hydrogen Fuel Cell Training System

Hydrogen Fuel Cell Training System 8010-80 Hydrogen Fuel Cell Training System LabVolt Series Datasheet Festo Didactic en 03/2018 Table of Contents General Description 2 Exercises 3 Features & Benefits 3 List of Equipment 4 List of Manuals

More information

Charging pure lead-tin batteries:

Charging pure lead-tin batteries: A guide for CYCLON and Genesis products Kalyan Jana Western Product Support Manager Hawker Energy Products Inc. Warrensburg, MO 64093-9301 (USA) Table of contents LIST OF FIGURES...4 GENERAL...5 BASIC

More information

Super Brain 969 Pro AC/DC Delta Peak Charger with Dual Output and Discharge Function Instruction Manual Model Rectifier Corporation

Super Brain 969 Pro AC/DC Delta Peak Charger with Dual Output and Discharge Function Instruction Manual Model Rectifier Corporation Super Brain 969 Pro AC/DC Delta Peak Charger with Dual Output and Discharge Function Instruction Manual Model Rectifier Corporation Please read this entire manual, including all Safety Cautions and Warnings

More information

Exercise 1-5. Current Protection Devices EXERCISE OBJECTIVE DISCUSSION OUTLINE DISCUSSION. Circuit breakers

Exercise 1-5. Current Protection Devices EXERCISE OBJECTIVE DISCUSSION OUTLINE DISCUSSION. Circuit breakers Exercise 1-5 Current Protection Devices EXERCISE OBJECTIVE Describe and test the operation of circuit breakers, fuses, and overload relays. DISCUSSION OUTLINE The Discussion of this exercise covers the

More information

TORKEL 840/860. Battery Load Units TORKEL 840/860

TORKEL 840/860. Battery Load Units TORKEL 840/860 TORKEL 840/860 Battery Load Units Batteries in power plants and transformer substations must provide the equipment they serve with standby power in the event of a power failure. Unfortunately, however,

More information

Hydrogen Fuel Cell Training System ( )

Hydrogen Fuel Cell Training System ( ) Hydrogen Fuel Cell Training System 579307 (8010-80) LabVolt Series Datasheet Festo Didactic en 10/2018 Table of Contents General Description 2 Exercises 3 Features & Benefits 3 List of Equipment 4 List

More information

FlexCharger Battery Chargers

FlexCharger Battery Chargers FlexCharger Battery Chargers Operating Instructions Definitions (as used in these instructions) Flooded Battery Lead-acid battery with liquid electrolyte that requires open-venting and regular water replacement.

More information

OPERATION MANUAL. GFM-Series. Storage Battery Systems, Inc. N56 W16665 Ridgewood Dr. Menomonee Falls, WI (262)

OPERATION MANUAL. GFM-Series. Storage Battery Systems, Inc. N56 W16665 Ridgewood Dr. Menomonee Falls, WI (262) OPERATION MANUAL GFM-Series Version:V3.0 Storage Battery Systems, Inc. N56 W16665 Ridgewood Dr. Menomonee Falls, WI 53051 (262) 703-5800 Content Chapter One: Introduction to the Product 1. Product Characters

More information

ULTRACAPACITORS FOR UNINTERRUPTIBLE POWER SUPPLY (UPS)

ULTRACAPACITORS FOR UNINTERRUPTIBLE POWER SUPPLY (UPS) white paper ULTRACAPACITORS FOR UNINTERRUPTIBLE POWER SUPPLY (UPS) Electricity, flowing continuously through the grid, is something that most of today s amenities rely on. For any electrical device to

More information

Laboratory 2 Electronics Engineering 1270

Laboratory 2 Electronics Engineering 1270 Laboratory 2 Electronics Engineering 1270 DC Test Equipment Purpose: This lab will introduce many of the fundamental test equipment and procedures used for verifying the operations of electrical circuits.

More information

Figure 1: Graphs Showing the Energy and Power Consumed by Two Systems on an ROV during a Mission

Figure 1: Graphs Showing the Energy and Power Consumed by Two Systems on an ROV during a Mission Power Systems 3 Cornerstone Electronics Technology and Robotics III Notes primarily from Underwater Robotics Science Design and Fabrication, an excellent book for the design, fabrication, and operation

More information

Power Management Solution: Constant Voltage (CV) Pulse Charging of Hybrid Capacitors

Power Management Solution: Constant Voltage (CV) Pulse Charging of Hybrid Capacitors VISHAY BCCOMPONENTS www.vishay.com Aluminum Capacitors By Gerald Tatschl ENYCAP TM 196 HVC SERIES GENERAL INFORMATION Rechargeable energy storage solutions are of high interest because of their flexibility,

More information

ZheJiang XingHai Energy Technology Co., Ltd. 浙江兴海能源科技有限公司. UPS-48v 50Ah. Specification. Producer Auditor Approved by.

ZheJiang XingHai Energy Technology Co., Ltd. 浙江兴海能源科技有限公司. UPS-48v 50Ah. Specification. Producer Auditor Approved by. Pages: 1 / 12 UPS-48v 50Ah Specification Product name: Uninterruptible Power Supply Product model: Battery model: NE-48D50-NP 48V50Ah Edit date: 13-05-2013 Producer Auditor Approved by Customer Approved

More information

The Discussion of this exercise covers the following points:

The Discussion of this exercise covers the following points: Exercise 2 Float Switch EXERCISE OBJECTIVE Learn the working principle of float switches and how to use the float switch, Model 46935. DISCUSSION OUTLINE The Discussion of this exercise covers the following

More information

PV System Components. EE 495/695 Spring 2011

PV System Components. EE 495/695 Spring 2011 PV System Components EE 495/695 Spring 2011 Main Components of Grid-Connected PV systems Battery storage is added to some grid-tied PV systems. Example of a grid-tied PV systems Main Components of Stand-Alone

More information

This specification is applicable to the Nickel -Metal Hydride rechargeable batteries for type H320BC Model : H320BC

This specification is applicable to the Nickel -Metal Hydride rechargeable batteries for type H320BC Model : H320BC Document No:H320BC Page 1 of 7 1 Scope This specification is applicable to the Nickel -Metal Hydride rechargeable batteries for type H320BC Model : H320BC 2 Technical Parameters Items Units Parameters

More information

Sealed Lead-Acid Batteries

Sealed Lead-Acid Batteries Sealed Lead-Acid Batteries FEATURES Sealed/Maintenance-Free The valve regulated, spill-proof construction of the Power-Sonic battery allows trouble-free, safe operation in any position. There is no need

More information

12-Batteries and Inverters. ECEGR 452 Renewable Energy Systems

12-Batteries and Inverters. ECEGR 452 Renewable Energy Systems 12-Batteries and Inverters ECEGR 452 Renewable Energy Systems Overview Batteries Lead-Acid Batteries Battery Specifications Battery Charge Controllers Inverters Dr. Louie 2 Batteries Incorporation of a

More information

SpiritPFC Torque/Horsepower Comparison Dynamometer Test Date: 5/7/2006

SpiritPFC Torque/Horsepower Comparison Dynamometer Test Date: 5/7/2006 SpiritPFC / Comparison Dynamometer Test Date: 5/7/2006 Dynamometer Test Outline: Contained within this document you will find data collected using a Dyno Datamite engine dynamometer hardware and software

More information

RED CHARGER FOR RED BRICK V-LOCK LITHIUM ION BATTERIES OPERATING MANUAL

RED CHARGER FOR RED BRICK V-LOCK LITHIUM ION BATTERIES OPERATING MANUAL RED CHARGER FOR RED BRICK V-LOCK LITHIUM ION BATTERIES OPERATING MANUAL Please read these instructions concerning your safety The RED CHARGER lithium-ion battery charger has been designed to manage relatively

More information

Electric Power Technology Training Systems

Electric Power Technology Training Systems Electric Power Technology Training Systems 8010-00 LabVolt Series Datasheet Festo Didactic en 120 V - 60 Hz 03/2019 Table of Contents General Description 3 Electric Power Technology Training Program 4

More information

Technology for Estimating the Battery State and a Solution for the Efficient Operation of Battery Energy Storage Systems

Technology for Estimating the Battery State and a Solution for the Efficient Operation of Battery Energy Storage Systems Technology for Estimating the Battery State and a Solution for the Efficient Operation of Battery Energy Storage Systems Soichiro Torai *1 Masahiro Kazumi *1 Expectations for a distributed energy system

More information

EXPERIMENT 8 CURRENT AND VOLTAGE MEASUREMENTS

EXPERIMENT 8 CURRENT AND VOLTAGE MEASUREMENTS EXPERMENT 8 CURRENT AND VOLTAGE MEASUREMENTS Structure 8.1 ntroduction 8.2 Aim 8.3 Getting to Know Ammeters and Voltmeters 8.4 Ammeters and Voltmeters in DC Circuits V Characteristics of a Resistor V Characteristics

More information

Technical Manual. E-trek DM Series SHANDONG SACREDSUN POWER SOURCES CO.,LTD

Technical Manual. E-trek DM Series SHANDONG SACREDSUN POWER SOURCES CO.,LTD Technical Manual E-trek DM Series Version:V3.0 SHANDONG SACREDSUN POWER SOURCES CO.,LTD Security Instruction Please read these instructions carefully in order to make correct, safe, and effective operation.

More information

LBI-31864D. Mobile Communications VEHICULAR CHARGER UNIT 19B801507P1, P4. Printed in U.S.A. Maintenance Manual

LBI-31864D. Mobile Communications VEHICULAR CHARGER UNIT 19B801507P1, P4. Printed in U.S.A. Maintenance Manual LBI-31864D Mobile Communications VEHICULAR CHARGER UNIT 19B801507P1, P4 Maintenance Manual Printed in U.S.A. TABLE OF CONTENTS Page SPECIFICATIONS.................................................... 1

More information

Industrial Controls Training System. Motor Drives. Courseware Sample F0

Industrial Controls Training System. Motor Drives. Courseware Sample F0 Industrial Controls Training System Motor Drives Courseware Sample 87669-F0 A First Edition Published October 2013 2011 by Lab-Volt Ltd. Printed in Canada All rights reserved ISBN 978-2-89640-469-8 (Printed

More information

SmartON / SmartON+ Installation and Use Manual

SmartON / SmartON+ Installation and Use Manual SmartON / SmartON+ Installation and Use Manual Rev. Date Ver. Ver. Notes document document SmartON SmartViewII 1.0 06/04/2007 3.08 2.30 Pre-release 1.01 10/04/2007 3.08 2.30 Release 1.02 04/10/2007 3.09

More information

Maintaining the operating temperature of the battery at 20 C to 25 C will maximize its service life and efficiency.

Maintaining the operating temperature of the battery at 20 C to 25 C will maximize its service life and efficiency. 5.1.3 Reliability In most cases, the reliability of a VLA is better than VRLA cells given similar environments. VLA batteries are also more robust to environmental conditions such as temperature and ripple

More information

Exercise 4-1. Flowmeters EXERCISE OBJECTIVE DISCUSSION OUTLINE DISCUSSION. Rotameters. How do rotameter tubes work?

Exercise 4-1. Flowmeters EXERCISE OBJECTIVE DISCUSSION OUTLINE DISCUSSION. Rotameters. How do rotameter tubes work? Exercise 4-1 Flowmeters EXERCISE OBJECTIVE Learn the basics of differential pressure flowmeters via the use of a Venturi tube and learn how to safely connect (and disconnect) a differential pressure flowmeter

More information

Exercise 3-1. Basic Hydraulic Circuit EXERCISE OBJECTIVE DISCUSSION OUTLINE DISCUSSION. Complete hydraulic circuit

Exercise 3-1. Basic Hydraulic Circuit EXERCISE OBJECTIVE DISCUSSION OUTLINE DISCUSSION. Complete hydraulic circuit Exercise 3-1 Basic Hydraulic Circuit EXERCISE OBJECTIVE When you have completed this exercise, you will be familiar with the hydraulic schematic and components of the nacelle trainer. You will identify

More information

A Electric Power / Controls ELECTRIC POWER TECHNOLOGY 0.2 kw

A Electric Power / Controls ELECTRIC POWER TECHNOLOGY 0.2 kw A Electric Power / Controls ELECTRIC POWER TECHNOLOGY 0.2 kw TRAINING SYSTEMS, Shown with optional equipment. The production of energy using renewable natural resources such as wind, sunlight, rain, tides,

More information

SimpliPhi Power PHI Battery

SimpliPhi Power PHI Battery Power. On Your Terms. SimpliPhi Power PHI Battery INTEGRATION GUIDE: VICTRON Optimized Energy Storage & Management for Residential & Commercial Applications Utilizing Efficient, Safe, Non-Toxic, Energy

More information

Industrial Batteries / Motive Power

Industrial Batteries / Motive Power Industrial Batteries / Motive Power Battery System Highlights > Fast Charge in 1 hour > 4000 cycles at 80% depth of discharge > Full system supply, BMS, modules, tray and charger»the high productivity,

More information

Batteries and more. Powered by (CE, UL & ISO9001 APPROVAL)

Batteries and more. Powered by (CE, UL & ISO9001 APPROVAL) Batteries and more Powered by (CE, UL & ISO9001 APPROVAL) 1. Feature 1) Maintenance free-operation. There is no need to check the special gravity of the electrolyte or to add water during the service life.

More information

Charging of HOPPECKE OPzV solar.power battery in Solar Applications

Charging of HOPPECKE OPzV solar.power battery in Solar Applications Charging of HOPPECKE OPzV solar.power battery in Solar Applications Preface: This document provides hints for charging of HOPPECKE OPzV solar.power battery cells and blocs in solar applications. Note:

More information

ME3264: LAB 4 Fuel Cell

ME3264: LAB 4 Fuel Cell ME3264: LAB 4 Fuel Cell Professor Chih-Jen Sung - Revised 1-29-2017 tjm Spring 2017 OBJECTIVE The objectives of this laboratory are as follows. (a) Become familiar with the operation of a Proton Exchange

More information

Experiment 3. The Direct Current Motor Part II OBJECTIVE. To locate the neutral brush position. To learn the basic motor wiring connections.

Experiment 3. The Direct Current Motor Part II OBJECTIVE. To locate the neutral brush position. To learn the basic motor wiring connections. Experiment 3 The Direct Current Motor Part II OBJECTIVE To locate the neutral brush position. To learn the basic motor wiring connections. To observe the operating characteristics of series and shunt connected

More information