A safety device includes a safety module ( 11 ), a data bus ( 12 ) and one or several transmitters ( 15, 16, 17, 18, 19, 20 ). The safety module transmits a pulse train (one dynamic signal) over the bus ( 12 ) constituting a loop, whereby the pulse train is connected to each of the transmitters, wherein the pulse is phase inverted.
1. A safety device, comprising:
a safety module;
external sensors, each of said sensors having a transmitter; and
a data bus for connecting said module to said sensors, wherein,
said safety module comprises means for transmitting a signal in form of a transmitted first pulse train over said bus, the bus forming a loop to said external sensors, said first pulse train being connected to each of said sensors, each of said sensors comprising means to phase invert said first pulse train,
said safety module is configured to receive a second pulse train from said sensors, control said second pulse train from said sensors, and detect a time delay in said second pulse train, and
an absence of said time delay detected by said safety module indicates an error in one of said sensors.
2. The device as claimed in claim 1 , wherein said sensors comprise at least one of an inversed switch, terminal strips, sensor mats, bumpers, light transmitters, light receivers, light curtains and emergency button.
3. The device as claimed in claim 1 , wherein said device further comprises at least one of an automatically or manually monitored resetting, double safety outputs, information output for restoration indication, and output for status information to a PLC (Programmable Logic Controller).
4. The device as claimed in claim 1 , wherein said first pulse train sent out from said safety module is time delayed in relation to said second pulse train from said sensors.
5. The device as claimed in claim 4 , wherein said time delay varies with a number of coupled transmitters, whereby a determination of a correct number of transmitters in said loop is obtained.
6. The device as claimed in claim 1 , wherein said transmitted pulse train is compared to a received pulse train, and said safety module controls said time delay of said second pulse train and a frequency of said second pulse train.
7. The device as claimed in claim 6 , wherein,
if the signal is correct, safety outputs are kept closed, and
if any of an error signal or stop signal is received from one or several of the transmitters, the safety outputs are opened.
8. A method for a safety device, comprising the steps of:
sending a pulse train from a safety module, over a data bus constituting a loop, to sensors connected to the loop;
inverting the phase of the pulse train at each of the sensors;
comparing the pulse train sent from the safety module to a received pulse train received by the safety module from the loop,
wherein failure to detect a time delay between the pulse train and the received pulse train indicates an error in one of said sensors.