Title of Invention

POWER SUPPLY DEVICE

Abstract The invention relates to a power supply device comprising a plurality of power supply components (2,3,4,5,6);a first communication channel (10) connected with the power supply components (2 to 6); a concentrator (8) connected with the plurality of power supply components (2 to 6) via the first communication channel (10) using a first communication connection (S); and an analysis and control unit (7) connected to the concentrator(8) via a second communication channel (9) using a second communication connection (S), wherein the concentrator (8) is configured to establish through said second communication channel (9) a different type of communication connection relative to the first communication connection (S).
Full Text


Description
Power supply device
The invention relates to a power supply device that comprises
a plurality of power supply components.
Power supplies are customarily operated as stand-alone devices
As a rule, they are fitted with a simple indicator contact. It
can in this way be indicated whether the status of the power
supply is currently undisturbed or faulty.
Power supplies typically convert a high voltage level on the
input side, for example a 230V alternating voltage or a 400V
alternating voltage, to a low voltage level, for example a
direct voltage of 24V. By this means, consumers such as
sensors, electronic controls, valves and pumps can be operated
with a suitable voltage, without the need for a separate power
supply for each individual consumer. Power supplies of this
type are used on a large scale in production and automation
engineering, for example.
A diagnostic unit for a power supply and a power supply fitted
with a diagnostic unit are described in DE 103 55 613.3. The
diagnostic unit monitors the power supply on the output side
for an inadmissible deviation from a reference value of at
least one parameter to be monitored. In the event of an
inadmissible deviation from the reference value, the
diagnostic unit records measurement values on the input side
of the power supply in the period of time surrounding the
inadmissible deviation in a time window. The diagnostic unit
then files the relevant measurement values in a memory. The
result is that the deviation of a parameter to be monitored

which is caused by a fault on the mains side, for example an
underrun of the output voltage, can be documented with
certainty. In this way, it can be proven to an operator of the
power supply that it is not the power supply but the
superordinate power network which is failing to meet the
requirements specified for operating power supplies. Network
faults on the input and output side and equipment faults on
the power-supply side can be recorded, interrogated and
analyzed smoothly and promptly at low cost. In one embodiment,
the diagnostic unit has a communication interface for reading
out the memory. The memory comprising the measurement values
can be read out via this interface and evaluated, for example
on a connected personal computer with suitable software.
Remote control is also possible via the communication
interface of the diagnostic unit. Here, online measurement
values can be transmitted to a connected personal computer and
evaluated. The facility also exists for loading new firmware
or new values for the parameters being monitored into the
control unit of the diagnostic unit.
From US 5 844 327, a system is known which has a power supply
device comprising a plurality of components which are
connected via a communication channel to a control unit by
means of which the power supply components can be monitored
and controlled.
The object of the invention is to improve the mode of
operation of the known power supplies.
This object is achieved in a power supply comprising the
features specified in claim 1. Advantageous embodiments and
developments of the invention are specified in the dependent
claims.

The advantages of the invention are in particular that, by
virtue of the communication capability of all the power supply
components, all internal parameters of the power supply can be
evaluated, logged, adjusted and controlled. It is in this way
possible to implement a power supply management in which all

the internal parameters of the power supply are taken into
account.
If the power supply components are connected via a
concentrator to the common analysis and control unit, then the
communication channel between the concentrator and the
analysis and control unit can in an advantageous manner be
implemented differently from the connections between the power
supply components and the concentrator. For example, the
connections between the power supply components and the
concentrator can be a bus implemented using cables, while the
concentrator is connected to the analysis and control unit via
a wireless communication channel, for example a radio
transmission link.
The analysis and control unit preferably has a memory which is
provided for permanently storing or logging the status
messages concerning the power supply components. The stored
values are available for a later precise analysis of the power
supply device, for example for analysis in the event of an
operating failure.
According to a further embodiment of the invention, the power
supply components are also each equipped with a memory. This
memory, which can be implemented in the form of a ring memory,
stores for the duration of a defined time window parameters
pertaining to the respective power supply component and then
makes them available to the analysis and control unit on
request.
Further advantageous characteristics of the invention will
emerge from the explanation of examples thereof with reference
to the drawings, in which:

Figure 1: shows a block diagram of a first exemplary
embodiment of a power supply device and
Figure 2: shows a block diagram of a second exemplary
embodiment of a power supply device.
Figure 1 shows a block diagram of a first exemplary embodiment
of a power supply device. The device shown comprises a power
supply 1 which contains a plurality of power supply components
2, 3, 4, 5, 6. These power supply components are a basic
device 2, a buffer module 3, an uninterruptible power supply
module 4, a redundancy module 5 and a diagnostic module 6. The
basic unit 2 is connected to the AC network and provides on
the output side a regulated direct voltage supply of 24V. The
buffer module 3 serves in bridging short-term network
interruptions. The uninterruptible power supply module 4
serves in bridging longer network interruptions. The
redundancy module 5 is activated for example in the event of a
fault in the basic unit 2 or else in the event of a high
loading of the power supply. The diagnostic module 6 serves in
monitoring the output side of the power supply 1 for an
inadmissible deviation from a reference value of a parameter
to be monitored.
The basic unit 2 has a memory 2a. The buffer module 3 is
equipped with a memory 3a. A memory 4a belongs to the
uninterruptible power supply module 4. The redundancy module 5
is fitted with a memory 5a. The diagnostic module 6 contains a
memory 6a. These memories 2a, 3a, 4a, 5a and 6a are each
implemented in the form of a ring memory and for the duration
of a predetermined time window store data that describes the
states of the respective components.

This data is then output cyclically, after expiration of
predetermined time intervals or when requested by an external
analysis and control unit 7 at an interface S of the
respective component and made available to a bus 10. This bus
can be the Ethernet, a Profibus, an IEC bus or a CAN bus.
Alternatively, the interfaces S can also be interfaces to the
Internet, GSM interfaces, UMTS interfaces, USB interfaces,
radio interfaces or infrared interfaces.
The external analysis and control unit 7 is preferably a
personal computer. This computer comprises a keyboard 7a, a
processor 7b, a memory 7c and a display 7d. The analysis and
control unit 7 receives and analyzes the data, transmitted via
the bus 10, of the individual components 2, 3, 4, 5 and 6 of
the power supply 1. The analysis and control unit 7 is
therefore constantly informed about all internal parameters of
the power supply 1 and as a consequence thereof is capable of
implementing power supply management. In doing so, it outputs
command or control signals or control programs which are
transmitted via the bus 10 to the respective component 2, 3,
4, 5 or 6 of the power supply 1 and influence the mode of
operation of the respective component. Furthermore, the
processor unit 7b ensures that data corresponding to the
internal parameters of the power supply 1 is permanently
stored or logged in a memory area of the memory 7c such that
it is available if required for a later evaluation. The
processor unit 7b also ensures that, for power supply
monitoring purposes, diagrams or tables are represented on the
display 7d in alphanumeric and/or graphic form, which diagrams
or tables give the service personnel of the respective
installation information about the states of the individual
power supply components.

Examples of status messages which are transmitted from the
individual power supply components via the bus 10 to the
analysis and control unit 7 are:
The basic unit 2 reports to the analysis and control unit 7
the measured output current and the measured output voltage,
information about whether the status of the basic unit is
faulty or undisturbed, information about whether a short
circuit has occurred, information about whether an overload
has occurred, information about ambient internal parameters of
the basic unit, for example about the temperature and the
humidity prevailing there, and information about further
target and actual values.
The buffer module 3 reports to the analysis and control unit 7
the current state of charge, information about whether the
status of the buffer module is faulty or undisturbed,
information about whether the buffer module is currently
active, inactive or in standby mode, as well as further target
and actual values.
The uninterruptible power supply module 4 reports to the
analysis and control unit 7 whether the buffering is faulty or
undisturbed, whether the module is in use or in standby mode,
what the state of charge of the accumulator is, whether an
accumulator replacement is due or not, the buffer time
remaining, signals relating to battery protection (deep-
discharging protection, wire breakage, polarity inversion,
etc.) and the duration of the buffer time.
The redundancy module 5 reports to the analysis and control
unit 7 whether the power supply is faulty or undisturbed,

whether a short circuit has occurred, whether an overload has
occurred and whether the total current is too high, as a
result of which redundancy operation is no longer possible.
The diagnostic module 6 also provides the analysis and control
unit 7 with message signals which relate to the current
operating status and the operability of the diagnostic module
6.
The analysis and control unit 7 returns the following control
signals for example via the bus 6 to the individual
components:
control signals which adjust the output voltage of the
basic unit 2,
control signals which adjust the current limitation of the
basic unit 2,
control signals which adjust the overload behavior of the
basic unit 2,
control signals which bring about a switch of
characteristics,
control signals which relate to the accumulator charging of
the uninterruptible power supply 4,
Control signals which relate to a switch between buffering
mode and charging mode of the uninterruptible power supply
4,
Control signals which relate to the current limitation in
buffering mode,
Control signals which relate to accumulator test
parameters, etc.
Figure 2 shows a block diagram of a second exemplary
embodiment of a power supply device. The device shown in

Figure 2 differs from the device shown in Figure 1 only in
that a concentrator 8 is disposed between the power supply
components 2, 3, 4, 5, 6 of the power supply 1 and the
analysis and control device 7. This concentrator 8 is
connected via a bus 10 to the said power supply components 2,
3, 4, 5, 6. Furthermore, the concentrator 8 is connected via a
communication channel 9 to the external analysis and control
unit 7.
The advantage of this second exemplary embodiment is in
particular that the connections provided between the power
supply components and the concentrator 8 can be implemented in
a different manner from the connection 9 provided between the
concentrator 8 and the analysis and control unit 7. For
example, the connections provided between the power supply
components 2, 3, 4, 5, 6 and the concentrator 8 are wired bus
lines, while the communication channel 9 between the
concentrator 8 and the analysis and control unit 7 is, for
example, a radio transmission link or the Internet. This makes
it possible to provide the analysis and control unit 7 at a
large distance from the concentrator 8 and thus also at a
large distance from the power supply 1.
A power supply device according to the present invention
accordingly comprises a plurality of power supply components
which each have a communication interface. Via this
communication interface they are connected directly or via a
concentrator to an external analysis and control unit. This
analysis and control unit monitors for online operating
purposes all the parameters of the power supply and alters,
for example if a fault occurrence is detected, the operating
mode of the power supply. For example, it controls a
redundancy mode, an emergency mode or a load sharing. The

parameters of the individual components of the power supply
that are reported within the framework of operating online are
logged in a memory of the analysis and control unit and are
available if required for a later detailed analysis of the
power supply. A power supply management according to the
invention increases the availability and the reliability of
the overall power supply system and thus also of the
automation or production system in which the power supply
system is used.
As an alternative to the exemplary embodiments described with
reference to the figures, the analysis and control unit 7 can,
instead of being a personal computer, also be a programming
device, a stored-program control or a remote control unit.
A device according to the invention enables in an advantageous
manner the analysis and control unit 7 to generate control
signals, based upon which the operating mode of the power
supply 1 is switched or reprogrammed, for example from a
power-supply mode to a charging-device mode. This switchover
can be made purely in terms of software or using a switch
arranged in the respective power supply component, the
switching operation of which is controlled by the analysis and
control unit 7. Such a switch is indicated by dashed lines in
Figures 1 and 2 and is labeled with the reference character
2b.


We Claim:
1. A power supply device comprising:
a plurality of power supply components (2,3,4,5,6);
a first communication channel (10) connected with the power supply
components (2 to 6);
a concentrator (8) connected with the plurality of power supply components (2
to 6) via the first communication channel (10) using a first communication
connection (S); and
an analysis and control unit (7) connected to the concentrator(8) via a second
communication channel (9) using a second communication connection (S),
wherein the concentrator (8) is configured to establish through said second
communication channel (9) a different type of communication connection relative
to the first communication connection (S).
2. The device as claimed in claim 1, wherein the analysis and control unit (7) is
configured to receive, through said second communication channel (9) in
accordance with the different type of communication connection, concentrator
output signals, which are based on signals from the plurality of power supply
components (2 to 6), said signals from the plurality of power supply components
(2 to 6) received by the concentrator (8) through the first communication
channel (10) in accordance with the first communication connection, wherein the
signals from the plurality of power supply components (2 to 6) contain status
messages concerning the respective power supply component (2 to 6).


3. The device as claimed in claim 2, wherein the analysis and control unit (7) is
configured to feed control signals to the power supply components (2 to 6), the
control signals being provided to control an operating status of the respective
power supply component (2 to 6).
4. The device as claimed in claim 2, wherein the analysis and control unit (7) is
configured to feed control programs to the power supply components, (2 to 6),
the control programs provided to influence the operating status of the respective
power supply component (2 to 6).
5. The device as claimed in claim 2, wherein the analysis and control unit (7)
comprises, a memory (7c) for storing the status messages of the power supply
components (2 to 6).
6. The device as claimed in claim 2, wherein the power supply components (2 to
6) each comprises a memory (2a,3a, 4a,5a,6a) for storing the status messages
of the respective power supply component (2 to 6) and jointly form a plurality of
memories (2a to 6a).


7. The device as claimed in claim 6, wherein the plurality of memories (2a to 6a)
formed by the power supply components (2 to 6) comprises a ring memory.
8.The device as claimed in claim 1, wherein the power supply components (2 to
6) comprise, a load management, and wherein the analysis and control unit (7)
controls the load management of the power supply components (2 to 6).
9.The device as claimed in claim 1, wherein the analysis and control unit (7) is
selected from a group consisting of: a personal computer, a programming
device, a stored-program control or a remote control unit.
10.The device as claimed in claim (2 to 6), wherein the analysis and control unit
(7) feeds control signals to the respective power supply component (2 to 6)
based on whether a mode of operation of the power supply component is
switched over or reprogrammed.
11.The device as claimed in claim 10, wherein the analysis and control unit (7)
feeds control signals to the respective power supply component (2 to 6) based
on whether the mode of operation of the respective power supply component is
switched from a power-supply mode to a charging-device mode.

12.The device as claimed in claim 10, wherein a power supply component (2 to
6) comprises a switch having a switching operation configured to be controlled
by the analysis and control unit (7), and wherein when the switch is switched
over, the power supply component is switched over from a first operating mode
to a second operating mode.


ABSTRACT

TITLE: POWER SUPPLY DEVICE
The invention relates to a power supply device comprising a plurality of power
supply components (2,3,4,5,6);a first communication channel (10) connected
with the power supply components (2 to 6); a concentrator (8) connected with
the plurality of power supply components (2 to 6) via the first communication
channel (10) using a first communication connection (S); and an analysis and
control unit (7) connected to the concentrator(8) via a second communication
channel (9) using a second communication connection (S), wherein the
concentrator (8) is configured to establish through said second communication
channel (9) a different type of communication connection relative to the first
communication connection (S).

Documents:

03044-kolnp-2006 abstract.pdf

03044-kolnp-2006 assignment.pdf

03044-kolnp-2006 claims.pdf

03044-kolnp-2006 drescription(complete).pdf

03044-kolnp-2006-correspondence others-1.1.pdf

03044-kolnp-2006-correspondence others.pdf

03044-kolnp-2006-correspondence-1.2.pdf

03044-kolnp-2006-drawings.pdf

03044-kolnp-2006-form-18.pdf

03044-kolnp-2006-form1.pdf

03044-kolnp-2006-form2.pdf

03044-kolnp-2006-form3.pdf

03044-kolnp-2006-form5.pdf

03044-kolnp-2006-international publication.pdf

03044-kolnp-2006-international search report.pdf

03044-kolnp-2006-pct other.pdf

03044-kolnp-2006-priority document.pdf

3044-KOLNP-2006-(06-02-2012)-CORRESPONDENCE.pdf

3044-KOLNP-2006-(28-10-2011)-ABSTRACT.pdf

3044-KOLNP-2006-(28-10-2011)-AMANDED CLAIMS.pdf

3044-KOLNP-2006-(28-10-2011)-DESCRIPTION (COMPLETE).pdf

3044-KOLNP-2006-(28-10-2011)-DRAWINGS.pdf

3044-KOLNP-2006-(28-10-2011)-EXAMINATION REPORT REPLY RECIEVED.pdf

3044-KOLNP-2006-(28-10-2011)-FORM 1.pdf

3044-KOLNP-2006-(28-10-2011)-FORM 2.pdf

3044-KOLNP-2006-(28-10-2011)-OTHERS.pdf

3044-KOLNP-2006-(28-10-2011)-PA.pdf

3044-KOLNP-2006-(28-10-2011)-PETITION UNDER RULE 137.pdf

3044-KOLNP-2006-CORRESPONDENCE 1.1.pdf

3044-KOLNP-2006-CORRESPONDENCE 1.2.pdf

3044-KOLNP-2006-EXAMINATION REPORT.pdf

3044-KOLNP-2006-FORM 18.pdf

3044-KOLNP-2006-FORM 3.pdf

3044-KOLNP-2006-FORM 5.pdf

3044-KOLNP-2006-GPA.pdf

3044-KOLNP-2006-GRANTED-ABSTRACT.pdf

3044-KOLNP-2006-GRANTED-CLAIMS.pdf

3044-KOLNP-2006-GRANTED-DESCRIPTION (COMPLETE).pdf

3044-KOLNP-2006-GRANTED-DRAWINGS.pdf

3044-KOLNP-2006-GRANTED-FORM 1.pdf

3044-KOLNP-2006-GRANTED-FORM 2.pdf

3044-KOLNP-2006-GRANTED-SPECIFICATION.pdf

3044-KOLNP-2006-OTHERS.pdf

3044-KOLNP-2006-REPLY TO EXAMINATION REPORT.pdf

3044-KOLNP-2006-TRANSLATED COPY OF PRIORITY DOCUMENT.pdf

abstract-03044-kolnp-2006.jpg


Patent Number 255017
Indian Patent Application Number 3044/KOLNP/2006
PG Journal Number 03/2013
Publication Date 18-Jan-2013
Grant Date 15-Jan-2013
Date of Filing 20-Oct-2006
Name of Patentee SIEMENS AKTIENGESELLSCHAFT
Applicant Address WITTELSBACHERPLATZ 2, 80333 MUNCHEN GERMANY
Inventors:
# Inventor's Name Inventor's Address
1 HUBLITZ, DIETER BEHRINGSTR.18 97464 NIEDERWERRN; GERMANY
2 MOHLER, HARALD FRITZ-VON-ROTH-STR.9, 90409 NURNBERG, GERMANY
PCT International Classification Number H02J 13/00
PCT International Application Number PCT/EP2005/051823
PCT International Filing date 2005-04-22
PCT Conventions:
# PCT Application Number Date of Convention Priority Country
1 102004021380.1 2004-04-30 Germany