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Safety for all applications and all speeds
Surge arresters for railway systems
Answers for energy.
Surge arresters from Siemens
Quality and reliability for all applications
This catalogue features the complete range of Siemens surge arresters for
railway applications. Detailed information about the outstanding 3EB and
3EC product lines can be found here. Further information about the standard
product lines 3EQ, 3EP and 3EL (specifically for your electrification needs) can
be obtained directly from Siemens.
Over 75 years of experience
Experience is the most important factor when it comes to the
reliability of medium- and high-voltage systems. Since 1929,
Siemens has been manufacturing high-voltage surge arresters
for standard and specialized applications. Continuous research
and development as well as the coordinated application of
expertise at factories give Siemens’ surge arresters a leading
edge in overvoltage protection. The very high quality and costeffectiveness of Siemens’ products ensure a long service life
and reliability in every application. The range of Siemens’ surge
arresters offers optimum protection for all power transmission
and distribution systems, not just in the railway sector.
Standardized and customized solutions
Countless generators, transformers, switchgears, overhead transmission lines and cables as well as complex gas-insulated substations throughout the world have been reliably protected by
Siemens surge arresters for many decades. In addition to standard
applications, Siemens offers customized surge arresters for virtually any application from 300 V up to 800 kV AC and DC, and the
range of Siemens’ surge arresters is also designed for many different environmental conditions, from the arctic cold to the heat
of the desert and the extreme humidity of tropical climates. The
protection of electrified railway systems has always been a central
part of the portfolio. Siemens surge arresters protect every part
of your system, from generators and transformer substations,
transmission lines, cables and catenaries to rail vehicles for local,
long-distance and high-speed services.
2
Reliable overvoltage protection
For railway power supply systems and electric motive power units
Nominal
Voltage
750 V
1 500 V
3 000 V
Umax1 (V)
900
1 800
3 600
17 250
27 500
Umax2 (V)
1 000
1 950
3 900
18 000
29 000
Umax3 (V)
1 270
2 540
5 075
25 300
38 750
15 000 V 25 000 V
Voltage
3 000
Umax Arrester
Umax System
Un = 1 500 V
2 500
2 000
1 500
1 000
0.01
0.1
1
10
100
1 000 t [s]
Feed voltages for railway networks:
The top curve shows the surge arrester operating range.
The second curve represents the Umax system voltage according
to IEC 60850 and the curve at the bottom is the rated voltage Un.
These curves show an example for Un = 1 500 V DC.
The surge arrester is suitable for all voltages possible in normal
operation.
More than 50 years experience in the development
and manufacture of surge arresters for transportation systems gives Siemens a leading position with
overvoltage protection products in this specialized
field. Excellent reliability has always been the outstanding feature of these products. Siemens has
developed four types of surge arresters on this basis:
■ The 3EC3, a porcelain-housed surge arrester for
DC systems up to 3 kV for use on rolling stock
and for fixed installation.
■ The 3EB1 with a glass fiber reinforced plastic
(GFRP) housing and silicone rubber sheds, for DC
and AC systems up to 3 kV DC and 25 kV AC and
for use on rolling stock.
■ The 3EB2 with silicone housing for DC systems
up to 1.5 kV for fixed installation.
■ The 3EB4 with a glass fiber reinforced plastic
(GFRP) housing and silicone rubber sheds, for
DC systems up to 4 kV, for use on rolling stock
as well as for fixed installation.
Supply voltages for railway power supply systems
Supply voltages of railway power supply systems are
defined in standard DIN EN 50163 (VDE 0115 part
102). The terms and definitions used there include
the following:
Nominal Voltage Un
Design value for system equipment
Maximum continuous voltage Umax1
Maximum value of the voltage that can occur
indefinitely
Maximum non-permanent voltage Umax2
Maximum value of the voltage that can occur as a
non-permanent voltage (applies for long duration
transition states)
Highest long-term overvoltage Umax3
R. m. s. value of an AC voltage as a maximum
value of the long-term overvoltage for T = 20 ms
Long-term overvoltage
Overvoltage > Umax2 and > 20 ms,
(e.g., due to a rise in substation primary voltage)
While this catalogue lists a great number of standard
arresters for use in railway power supply systems,
Siemens also offers inner-cone plug-on arresters for
direct attachment to transformers or switchgear, and
arresters for railway power distribution systems. In
addition, Siemens can also offer surge arresters for
special requirements (for example, greater creepage
distances or special methods of connections) upon
request.
3
3ES
3EB4
3EB1
Generator
protection
3EE2
4
Transformer
protection
3EP
3EL
3EQ
3ES
Neutral point
arrester
3EP
3EL
3EQ
3ES
3EP
Arrester for
rolling stock
3EB1
3EB4
3EC3
Substation
protection
3EL
3EQ
3EP
3EL
3EC3
3EB2
Surge arresters from Siemens play a vital
part in the reliability of today’s power transmission and distribution systems at all voltage levels, including generators, transformers, transformer neutral points, overhead
power lines and medium-voltage systems.
Siemens’ comprehensive expertise in highvoltage applications has also enabled the
company to develop specialized surge
arresters for transportation systems. This
means Siemens can offer optimum overvoltage protection for all these applications.
The product portfolio therefore also includes
limiters for protecting power converters as
well as a range of DC surge arresters and
surge arresters. They’re all designed to
meet the highest standards of security and
reliability (3EB1 / 3EB4) to protect electric
motive power units against overvoltage.
The following pages concentrate on the
description of surge arresters for railway
systems.
Power line
arrester
3EL
Arrester for medium
voltage systems
3EK7
Arrester for
DC systems
3EB1
3EC3
3EB2
3EB4
Arrester for
AC systems
3EB1
3EK7
3EL
5
The best choice for every application
3EB1
3EB4
DC
Rolling Stock –
High Speed
✓
✓
Rolling Stock –
medium and
low speed
✓
Public
access areas
(station etc.)
Railway
Electrification
AC
3EB2
3EC3
3EK, 3EL,
3EP, 3EQ
DC
DC
AC
AC*
DC
✓
✓
✓
✓
✓
✓
✓
✓
✓
Substation
✓
✓
✓
✓
✓
✓
✓
Track
✓
✓
✓
✓
✓
✓
✓
* Upon request
✓ optimally suited
✓ suitable with reservations
From high-speed trains between the major cities of the world, subway
services every few minutes from train station to airport, or everyday
mass transit, the requirements of rail transport vary from one extreme
to the other.
That’s why Siemens also offers its customers tailored
solutions for overvoltage protection in the railway
sector. Apart from the system voltage, the main
criteria relevant for selection of the correct surge
arrester are the type of application, or in other words
the speed of travel, and the resulting load. With its
insulator sheds designed for extreme mechanical
loads, the polymer surge arrester 3EB1 is outstandingly well suited for high-speed trains. The 3EB4
offers the same basic mechanical construction, but
due to the design of its sheds is optimized rather
for applications in the medium-speed range or for
stationary applications.
6
Both surge arresters have extremely rugged housings
offering maximum security in areas accessible to the
public. The porcelain-housed 3EC3 is particularly
suitable for use on rolling stock as well as for stationary applications in DC systems, whereas the 3EB2
polymer surge arrester was designed specifically for
overvoltage protection in accordance with the VDV
A1 – A2 arrester concept in DC systems. Through
its dedicated portfolio of railway surge arresters,
Siemens also offers its proven medium- and highvoltage surge arresters for AC networks and substations.
not suitable
A1 – A2 surge arrester concept
A1 – A2 surge arrester concept according to VDV 525
Recommendation for applications in DC systems
The “Verband deutscher Verkehrsunternehmen
(VDV)” (Association of German Transportation Companies) offers operators of DC railways recommendations for effective overvoltage protection in case
of lightning strikes in its publication no. 525. The
grounding of the power distribution system is especially important in the planning of lightning protection concepts. If the rails of DC railway systems are
isolated from earth for the purpose of reducing stray
current corrosion (as required when laying new
rails), they cannot be used as earth terminations. In
this case, low-resistance tower footings, driven piles,
the reinforcements of reinforced concrete tracks or
separate earth rods must be used as earth terminations. However, rails laid without any additional
isolation measures generally only have a low leakage
resistance and can be used as earth terminations.
The surge current then will be discharged via the
rails endangering electrical or electronic equipment
located near or on the tracks. Additional surge
arresters within this equipment provide an effective
remedy against overvoltages caused by this process.
To provide full protection for the catenary, outdoor
surge arresters with VDV 525 designation “A1”
should be installed at every power feeding point,
at the ends of feeding sections and dead-end feeders,
at coupling points as well as at current taps. Additional
A1 surge arresters are recommended if sections are
hit by lightning strikes very often, for example, on
bridges or on open stretches.
Protecting supply and return lines at substations
with surge arresters is an essential element of a
lightning protection concept in railway power supply
systems. Two surge arresters of different ratings are
used for this purpose. Surge arresters of type A1
are connected between section circuit-breakers / cable
terminals and the return line. The unavoidable
potential rise in a return line as a result of a lightning
surge current is limited by a type A2 surge arrester
between return line and structure earth.
Although metal oxide surge arresters are exceptionally reliable devices with failure rates of well below
1 % per year, a failure may occur under unfavorable
circumstances, which in this case leads to a state of
permanent conductivity of the type A1 surge arrester.
If the rails have a small leakage per unit length, the
ground electrode in this case may receive an inadmissibly high fault voltage for a long time. However,
if an additional A2 surge arrester with a low continuous operating voltage (120 V ≤ Uc ≤ 300 V) is connected between ground electrode and return line,
this surge arrester is intentionally overloaded. This
limits the fault voltage and trips the section circuit
breaker due to feeding from the catenary system.
7
3EB2 or 3EC3 – surge arresters for DC applications
100
40
28
M12
27
196
160
200
95
13
55
20
135
85
3EB2
3EC3
The 3EC3 surge arrester can be used in DC supply systems, either in stationary
applications or on vehicles. For use in accordance with Recommendation
VDV 525, the 3EB2 surge arrester is used as described below.
Arrester data
Nominal
system
voltage
Type
Maximum
continuous
operating voltage
Energy capability
30/60 µs 0,5 kA
30/60 µs 1 kA
8/20 µs 1 kA
8/20 µs 5 kA
8/20 µs 10 kA
kV
kJ
kV
kV
kV
kV
kV
kV
0.3
3
0.58
0.60
0.61
0.68
0.72
0.76
1
10
1.9
2.0
2.0
2.3
2.4
2.5
kV
–
3EB2 003-7D
Maximum values of the residual voltages at discharge currents of the following impulses
0.75
3EB2 010/3EC3 010-7D
1.5
3EB2 020/3EC3 020-7D
2
20
3.9
4.0
4.1
4.5
4.8
5.1
3.0
3EC3 040
4
40
7.8
8.0
8.2
9.0
9.6
10.2
Arrester housings
Housing size
Arrester data
Height
Flash over
distance
Creepage
distance
Sheds
quantity
Short circuit
capability
Housing insulation withstand level
Lightning impulse
withstand voltage
8
1/2 µs 10 kA
mm
mm
mm
3EB2 xxx - 7D
200
127
133
3EC3 xxx
223
135
165
Max.
arrester weight
Max. top load
Power-frequency withstand
voltage 50 Hz, 1 min
static
dynamic
1.2/50 µs
dry
wet
kA
kV
kV
kV
kN
kN
kg
1
40
25
13
10
0.16
0.4
1.4
1
40
65
45
25
0.24
0.6
6.8
Reliable and safe –
railway surge arresters 3EB1 and 3EB4
AC
DC
Rolling Stock –
High Speed
3EB1
Railway
Electrification
Rolling Stock –
medium and
low speed
3EB4*
3EC3
Public
access areas
(station etc.)
Substation
Track
3EK
3EL
3EP
3EQ
3EB2
3EC3
* For 3EB4 AC type upon request
The railway surge arresters 3EB1 und 3EB4 have to withstand a great deal:
exposure to extremes of weather, temperatures from – 40 °C to + 70 °C, and the
effects of UV radiation. But that’s exactly what they were designed for, and
they were effectively protected with suitably resilient technology and durable
materials, to ensure problem-free operation under all conditions of use.
The right combination for your success
The 3EQ surge arrester family combines the outstanding properties of a special silicone sheathing
and an extremely strong GFRP housing (glass fiber
reinforced plastic). Stemming originally from the
power supply sector, they set new standards of safety
and reliability for railway applications as well:
■ Specially tailored to the feeding voltages of railway
power supply systems
■ Optimum protection against atmospheric or operationally caused overvoltages.
Tailored performance –
the 3EB1 and 3EB4 railway surge arresters
In terms of materials and geometry, the housing was
developed especially for the special conditions of
use in rolling stock. The silicone sheathing has also
been optimized so that today there are two different
materials available for high speeds and for normal
speeds:
■ Railway surge arrester 3EB1 for vehicles with
maximum speeds over 160 km / h
■ Railway surge arrester 3EB4 for vehicle speeds up
to 160 km / h and for stationary application in areas
accessible to the public
9
Railway surge arresters from Siemens:
the right solution for every travel speed
Speed in km/h
70
160
160 km/h
3EB4
200
280
250 km/h
3EB1
3EB4
The wind tunnel reveals the differences
As an experienced and expert partner for surge arrester
technology, Siemens can offer you two different
polymer surge arresters for the vehicle sector, matched
precisely to your particular area of application. For
speeds up to 160 km / h (100 mph) the new 3EB4 is
recommended, and for higher speeds up to the highspeed range the high-performance 3EB1.
While both arrester types are comparable with
regard to their electrical specifications, dimensions
and connections, comparison in the wind tunnel
reveals the difference between the two systems. The
3EB4 uses an insulating material that has been tried
and tested in high-voltage applications and has large
creepage distances due to the change from large to
small sheds. It is ideally suited for use with air flow
speeds of up to 160 km / h (44.4 m / s).
360
360 km/h
3EB1
3EB4
3EB1
The more rigid, high-temperature cross-linked
silicone of the 3EB1 on the other hand is specially
designed for railway applications in the speed
range of up to 360 km/h (88 m/s).
The outstanding material properties of silicone
insulators apply for both surge arresters:
■ High resistance against leakage currents
and material erosion
■ High resistance against UV radiation
■ High mechanical strength
■ High resistance to fire
■ Outstanding dielectric properties
■ Permanently water- and dirt-repellent surface
Silicone
material
No. of sheds
Creepage
distance
mm
Max. speed
km/h
3EB1 xxx-7DS …
HTV
1
125
360
3EB1 xxx-7DM …
HTV
2
230
360
3EB4 xxx-7DS …
LSR
3
226
160
3EB4 xxx-7DM …
LSR
5
392
160
In the medium speed range, the 3EB4 provides
a solution that is both economical and reliable.
The 3EB1 railway surge arrester is always the first
choice whenever it comes to high-speed links.
10
3EB1 and 3EB4 – surge arresters
for DC and AC applications
97
97
147
147
130
130
3EB1
200
3EB4
200
Surge arresters for DC applications
Nominal
system
voltage
Type
Arrester data
Maximum
continuous
operating voltage
Energy capability
30/60 µs 0.5 kA
30/60 µs 1 kA
8/20 µs 1 kA
8/20 µs 5 kA
8/20 µs 10 kA
kV
kJ
kV
kV
kV
kV
kV
kV
2.5
kV
Maximum values of the residual voltages
at discharge currents of the following impulses
1/2 µs 10 kA
0.75
3EB1 010/3EB4 010
1
10
1.9
2.0
2.0
2.3
2.4
1.5
3EB1 020/3EB4 020
2
20
3.9
4.0
4.1
4.5
4.8
5.1
3.0
3EB1 040/3EB4 040
4
40
7.8
8.0
8.2
9.0
9.6
10.2
1/2 µs 10 kA
Surge arresters for AC applications
Nominal
system
voltage
Type
Arrester data
Maximum
continuous
operating voltage
Energy capability
30/60 µs 0.5 kA
30/60 µs 1 kA
8/20 µs 1 kA
8/20 µs 5 kA
8/20 µs 10 kA
kV
kJ
kV
kV
kV
kV
kV
kV
64
kV
Maximum values of the residual voltages
at discharge currents of the following impulses
15
3EB1230-5AL2…
18
97
46
48
49
56
60
15
3EB1230-6AL2…
18
180
44
45
46
52
55
58
25
3EB1370-5AX2…
30
155
74
77
79
89
96
102
25
3EB1370-6AX2…
30
290
71
73
75
84
89
94
Arrester housings
Housing size
Arrester data
Height
Flash over
distance
Creepage
distance
Sheds
quantity
Short circuit
capability
Housing insulation withstand level
Lightning impulse
withstand voltage
Max. top load
Power-frequency withstand voltage
50 Hz, 1 min
static
Max.
arrester weight
dynamic
1.2/50 µs
dry
kA
kV
kV
kV
kN
kN
kg
1
40
55
28
23
5.5
13.5
5.2
230
2
40
70
37
30
4.5
11.5
5.6
248
3
40
55
28
23
5.5
13.5
6.2
130
392
5
40
70
37
30
4.5
11.5
6.5
296
195
460
4
40
110
55
45
3.5
9
8.2
425
297
800
7
40
170
85
70
2.5
6
11.6
mm
mm
mm
3EB1 0x0-7DS2…
191
100
125
3EB1 0x0-7DM2…
226
130
3EB4 0x0-7DS…
191
100
3EB4 0x0-7DM…
226
3EB1 230-xAL2…
3EB1 370-xAX2…
wet
11
Published by and copyright © 2008:
Siemens AG
Energy Sector
Nonnendammallee 104
13629 Berlin, Germany
For more information, contact our
Customer Support Center.
Phone: +49 180/524 70 00
Fax:
+49 180/524 24 71
(Charges depending on provider)
e-mail: [email protected]
Power Transmission Division
Order No. E50001-U113-A325-V3-7600
Printed in Germany
Dispo 30000
TH 263-070376 102461 WS 06080.3
Printed on elementary chlorine-free bleached paper.
All rights reserved.
Trademarks mentioned in this document are
the property of Siemens AG, its affiliates, or their
respective owners.
Subject to change without prior notice.
The information in this document contains general
descriptions of the technical options available, which
may not apply in all cases. The required technical
options should therefore be specified in the contract.
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