Description: A pair of multi-range timers that provide timing periods extending up to 24 hours and beyond. Both timers are fundamentally identical, with the primary distinction being their relay behavior upon the completion of the timing cycle. Version 1 activates the relay when the time elapses, while Version 2 deactivates it. Version 1 is designed to consume less power during operation, whereas Version 2 is optimized for lower power consumption after the timer has completed its cycle. Selection should be based on the specific requirements of the application.
These multi-range timers are designed to accommodate a variety of applications where precise timing control is essential. Each timer can be set to run for durations ranging from seconds to 24 hours, making them versatile for both short-term and long-term timing requirements.
In Version 1, the relay is energized upon the completion of the set time, which can be particularly useful in applications where an action needs to be triggered at the end of the timing period, such as activating a motor or turning on a light. This configuration is advantageous for applications requiring immediate action upon timer expiration.
Conversely, Version 2's de-energizing relay upon time completion is suitable for applications where it is necessary to turn off devices or systems after a designated period. This design is particularly beneficial in energy-saving scenarios, as it minimizes power consumption once the timing cycle is completed.
Both versions utilize an efficient timing circuit that can be implemented using various electronic components such as resistors, capacitors, and a microcontroller or timer IC. The choice of components will depend on the desired accuracy and reliability of the timing function.
The power consumption characteristics of each version are crucial for applications where energy efficiency is a priority. Version 1's lower power usage during operation makes it ideal for applications where the timer is frequently active, while Version 2's reduced power consumption after the timer stops is more suitable for infrequent or intermittent use.
In summary, the selection between Version 1 and Version 2 should be guided by the specific functional requirements of the application, considering factors such as the need for relay activation or deactivation, energy efficiency during operation and post-operation, and the duration of the timing cycle required.A pair of multi-range timers offering periods of up to 24 hours and beyond. Both are essentially the same. The main difference is, that when the time runs out, Version 1 energizes the relay and Version 2 de-energizes it. The first uses less power while the timer is running; and the second uses less power after the timer stops.
This circuit generates outputs on TV lines 24 and 257. It was utilized for a decoder circuit and employs a CMOS counter along with gate logic. Only one pin is designated for the output line indicator.
The circuit described serves a...
Conducting pipe rechargeable long delay control circuit. An adjustment potentiometer RP can delay up to several tens of seconds.
The conducting pipe rechargeable long delay control circuit is designed to manage the timing of electrical signals, allowing for a delay that...
The delay application circuit is depicted in Figure JEC-2, which consists of two components. When the input transitions from logic level 0 to 1, the output also changes to 1 immediately. However, when the input transitions from high level 1...
ECL integrated circuit non-saturated digital logic circuits. CMOS and ECL interface circuit shown in cross.
ECL (Emitter Coupled Logic) integrated circuits are designed to operate in a non-saturated mode, providing high-speed digital logic functionality. These circuits are characterized by their fast...
This battery-powered metal detector utilizes four exclusive-OR gates found in the 4030 CMOS integrated circuit. The gates are configured as twin oscillators, with a search coil acting as the inductance element in one of the oscillators. When the coil approaches...
Here we have three choices, with which we can make electronic switches that use our touch or pressing (push button). We thus exploit the very big resistance of entry, that present the gates CMOS. In the fig.1 we have two...
The trip point is set halfway between the supplies by R1 and R2; R3 provides over 200 mV of hysteresis to increase noise immunity. The maximum frequency of operation is about 300 kHz. If response to TTL levels is desired,...
This CMOS circuit functions as a one-shot time delay switch and a general-purpose timer. It comprises a gated oscillator and a latch utilizing a CD4001 quad 2-input NOR gate, along with a CD4020 14-stage counter. The timing interval, TON, is...
The Motorola company's MC14440 CMOS integrated circuit is designed for timing and displaying calendar functions. It utilizes a 32.768 kHz NT cutting type quartz crystal along with fine-tune capacitance to generate time-based signals. The display circuit operates on a 1.5...
We use cookies to enhance your experience, analyze traffic, and (if you allow) serve personalized ads.
By clicking Accept All, you agree to our use of cookies.
Learn more