Showing posts with label General Electric. Show all posts
Showing posts with label General Electric. Show all posts

Thursday, June 20, 2013

What is the difference between droop and isochronous operation?



Many gas turbines manufactured by General Electric afford the operator two choices: droop or isochronous operation. There is often a selector switch or operator interface screen allowing the operator to choose either governing mode.

The differences between these two control modes should be understood. In the droop mode (which is typical for smaller gas turbine generators operating on large power grids), the turbine control system works in concert with the other on-line governors on the system to share proportionally load demand changes. This sharing is done based upon the base load rating of each generator to the overall capacity of the grid.

Figure 1 Speed Droop Curves for Gas Turbine Governor Using Typical Speedtronic™ System
Example:
Assume that all generators on a power grid are operating in the droop mode with the same 4 percent speed regulation. Refer to Figure 1 below. Assume also that one of the generators is rated at 50 megawatts (call it Unit #1) and is synchronized on a grid whose total generating capacity is 8000 megawatts. The speed governor for Unit #1 will take 50 ÷ 8000 or .625% of any load demand changes that should occur. For example, assume that Unit #1 is currently generating 37 MW. If the grid is operating at 60.00 Hz and an increase in demand of 5 MW occurs, Unit #1 will increase its power output by: (.00625) (5) = .03125 MW. Unit #1 will then be generating 37.03125 MW. The other generators, with their own 4 % droop characteristic, will share proportionally the remainder of the load change (that is, 5 MW minus .03125 = 4.96875).


Figure 1: Speed Droop Curves for Gas Turbine Governor Using Typical Speedtronic™ System.
In the above example, something happens to grid frequency as well. Assume that the frequency is 60.00 Hz when the additional load of 5 MW came on the grid. In this example, the system frequency would droop the following amount: 60.00 - [(.04) (60) (5) ÷ 8000] = 60.00 - .0015 = 59.9985 Hz.
If the operator increases the setpoint on Unit #1 as the other governor setpoints remain steady, the frequency will return to 60.00 Hz and all of the new load of 5 MW will be transferred to Unit
#1.


Below is a simplified sketch of a droop style governor for a gas turbine. The two input signals are the actual turbine speed (called NHP) and the load setpoint (called DSP). The "feedback" signal from the amplifier output is called VCE. If DSP is held constant and NHP reacts be decreasing (speed droops because of the increase in load, see above), the _VCE value must increase to balance the operational amplifier (Op Amp). Thus, with the DSP constant, the governor will respond to generate 37.03125 MW and droop with the rest of the grid to 59.9985
Hz.



                                                       Figure 2: Speed Droop Mode

In some small power grids (like on Caribbean islands), automatic frequency control is accomplished often by operating the largest turbine/generator in the grid in the isochronous mode. With one unit in the isoch mode, any changes in load demand will try to reduce system frequency. This attempt to "droop" will be first "noticed" by the turbine operating with an isochronous governor (call it Unit #2). This isoch governor will immediately notice a slight decrease in speed (frequency) and increase output (VCE here) to increase fuel flow to generate more power. The isoch machine will "pick up" all of the new load demand (5 MW in our example above). This happens before the droop governors can react. In our example, the power output from Unit #1 would remain steady, at its current setpoint of 37 MW, but the isochmachine would increase its output by 5 MW.

Below is a simplified schematic which shows the result of switching to the isochronous mode. Assume that the Digital Setpoint (DSP) is set to generate a particular load by a droop governor. A switch is thrown that opens the _ VCE feedback and also temporarily disables the DSP signal (at its existing value), putting Unit #2 in the isochronous mode. Any load change thereafter that tries to cause speed (frequency) to change will not be allowed. The isoch machine will respond to sustain system frequency at 60.00 Hz.


Later, if desired, the isoch machine can return to the droop mode by returning the selector switch to this mode of operation. Then all governors will be operating again in the droop mode and sharing load changes in proportion to their base load rating.

Friday, July 27, 2012

Protection of Voltage Transformers

Voltage transformers rated for system voltage of up to 34.5 kV are protected by a current-limiting fuse. Above this voltage rating, it is difficult to find a fuse of adequate fault-interrupting rating.

The primary fuse current rating is selected to protect the VT against the bolted fault on the secondary terminals. The VT is designed to withstand the mechanical and thermal stresses resulting from a bolted fault at the secondary terminals for a duration of 1 s.


A miniature circuit breaker or a fuse on the secondary is used to protect the VT against overloads. The secondary protective device must carry the rated current at the thermal burden. The secondary protective device is located near the VT. If a number of loads are fed by the VT, each branch is protected by a molded-case circuit
breaker or a fuse not higher than half the rating of the main protective device.


The primary or secondary fuse elements shall not be mechanically weak, as they can open the circuit due to vibration or if dropped accidentally. The primary fuse on the VT connected to an isolated phase bus in a power plant is subject to vibration. 

A current-limiting fuse rated 0.5 A for a 0.3Z VT may fail under such conditions. Discuss with the manufacturer and increase the fuse rating to 0.75 A or 1.0 A. However, ensure that the large fuse protects the VT against the secondary fault current.

 A fused-protected, control voltage transformer.

General Electric Voltage Transformer

Tuesday, July 24, 2012

“jelly roll” condenser

The “jelly roll” condenser is a new type of condenser. The condenser fan is located at one end of the “jelly roll” condenser and a solid plate is located at the other end. Air is drawn in through the outside diameter of the condenser and pulled out by the condenser fan. The condenser is located in the machine compartment which can be accessed from the back of the unit at the bottom.

Current Transformer GE

 

 
 


Tuesday, July 3, 2012

10 MVA General Electric Substation Power Transformer with Throat-Throat Connection

10 MVA General Electric Substation Power Transformer
              with Throat-Throat Connection



  • TT&A Inventory Number: 39-1047
  • Manufacturer: General Electric
  • Serial Number: L252141B
  • 3 Phase
  • 60 Hertz
  • MVA Rating: 10/12.5
  • Temperature Rise: 65°C
  • Primary Voltage: 22,900
    • High Voltage Tap 1: 24,100
    • High Voltage Tap 2: 23,500
    • High Voltage Tap 3: 22,900
    • High Voltage Tap 4: 22,300
    • High Voltage Tap 5: 21,700
  • Secondary Voltage: 6,900Y / 3,984
  • Connection: Delta/Wye
  • Impedance: 5.22%
  • Total Weight: 46,000 lbs
  • Untanking: 21,500 lbs
  • Tank & Fittings: 11,400 lbs
  • Oil (1,750 Gal): 12,900 lbs

3 Phase High voltage dry type transformers General Electric 75 kVA

High voltage dry type transformers
for use in electrical power distribution substations.
General Electric:480/(208/120)  75 kVA

 

3 Phase High voltage dry type transformers General Electric

High voltage dry type transformers
for use in electrical power distribution substations.

General Electric:(480/240)/(208/120)
 


General Electric Vacuum Distribution Circuit Breaker

High voltage circuit breakers with vacuum insulation
for use in electrical power distribution substations.

General Electric:15.5 KV/1200 A


High voltage buck boost transformers General Electric

High voltage buck boost transformers
for use in electrical power distribution systems.
General Electric



Substation High Voltage Capacitors General Electric:7,200 V, 100 KVAR

High voltage capacitors

for use in electrical power distribution substations.
General Electric:7,200 V, 100 KVAR
 

 

Substation High Voltage Capacitors General Electric:13,800 V , 50 KVAR

High voltage capacitors

for use in electrical power distribution substations
 General Electric:13,800 V , 50 KVAR
 
 

GE SteamTurbine Rotor