Showing posts with label METH Abids. Show all posts
Showing posts with label METH Abids. Show all posts

Thursday, 4 December 2014

Golden Rules For Electronic Circuit Design



- All components must conform to the specified temperature range. For resistors, de-rating of power rating at peak temperature must be considered. For capacitors de-rating of capacitance, leakage and increase in ESR at peak temperature may be important. For other components such as diodes and transistors, parameters such as recovery times and current gain vary with temperature and must be considered at extreme temperatures. In summary, no design calculation must be left to chance (as is often the case with designs put together in haste), temperature effect calculations are indispensable to success.

- Devices connected to interfaces must be well protected from ESD (Electrostatic Discharge) damage. ESD damage may occur at the time of prototype construction, during manufacturing or during use. Contrary to common misconception ESD at the time of production may not render a device defunct, but may cause progressive deterioration which may result in field failure. Therefore built in ESD protectors are necessary and Mansi Engineering ensures that all its designs incorporate them where necessary. IEC 61000-4-2 is a widely accepted ESD test conformance standard. ESD protectors include MOVs, TVS diodes, ESD Protection Clamping diodes and the newly introduced Polymer based devices. Selection of the right type of protector depends on capacitance that can be tolerated without signal deterioration and other factors such as tolerable leakage current, cost, pin outs and board area required. In addition, ESD protectors must be placed as close as possible to the signal entry location and as far away as possible from the device being protected so that the resulting large trace impedance attenuates the high frequency ESD energy as it travels towards the protected device. Zener or TVS diodes must be placed between power supply lines and ground to absorb ESD energy traveling via other protector diodes towards power supply line, while the device is powered off.

- Terminals connecting to inductive sources must be protected from switching overshoots or undershoots using clamping diodes or other devices. Long traces that carry heavy currents may act as sufficiently large inductors to cause unwanted switching transients and therefore protection is necessary.

- Signal lines must be well protected from radiated and conducted EMI. Ferrite beads and capacitor filters are effective means to block EMI.

- Within limits of budget, every design must incorporate sufficient protections from wrong connections, such as battery polarity reversal and accidental grounding of an output line. Large resistors are recommended to be used in series with microprocessor outputs driving drivers that drive large inductive loads. This ensures that the processor is well protected from switching transients.

- Functioning of the system at power up must be analyzed. For example it is important to deploy pull-up resistors on microprocessor output signals that need to be high on power up. Similarly functioning of relevant parts when powering down deliberately or accidentally, must be analyzed. For example, when processor state saving is involved during power down, a power down detect functionality might prove indispensable.

- For EMC, it is recommended to use inductors (preferably shielded) to slow down sharp current rise and fall times. Sharp current transients cause a sharp varying and traveling electromagnetic field.

- It is important to assign test points to relevant nets. Especially all ground and power nets, bias or threshold points and other serviceable signals must have a test point, which add convenience during testing and troubleshooting. Test points may be free vias with suitable drill size to accept and retain stainless steel needles or header leads.

- Having an on board power on LED indicator has its own importance. It warns the engineer and people around that the circuit is live and prevents accidents."


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Article by
Department of ECE
Methodist College of Engineering & Technology , Abids


Methodist College of Engineering & Technology

Methodist College of Engineering & Technology , Abids


A Bird's eye view of Methodist College of Engineering & Technology (MCET)

MCET is a Non-Minority Educational institution,established in the year 2008,over 6.53 acre sprawling campus,situated at Abids, in the heart of the city of pearls, Hyderabad . The college is well connected by public transport from every corner of the city.

MCET is affiliated to Osmania University at the state level and with AICTE in the Central level.

Methodist College of Engineering and Technology strives towards excellence by imparting essential technical skills as well as a holistic approach towards grooming the students into responsible, worthy citizens of the future. Life in Methodist is not just limited to the classroom-teaching, but spins beyond the textbooks to develop character and thus mould total the personality of the students to carve a niche for themselves in the society.

Our Mission

To be one among the most distinguished colleges of Engineering with outstanding undergraduate teaching programs and excellent research facility.
To promote the spirit of holistic knowledge,leadership qualities,responsibility, and integrity in order to cultivate student excellence every single day.
The ultimate goal of the Methodist College of Engineering and Technology is to educate and graduate individuals who possess the technical and social competence and confidence to succeed in professional practice and advanced education, to be lifelong learners, and to exercise responsible citizenship. To accomplish this mission we have established the following objectives:

Sufficient knowledge and understanding of the appropriate scientific and mathematical fundamentals upon which the students can develop their professional skills.
Skill in integrating and applying professional knowledge to define problems and produce efficient, economic, and effective solutions.
Effective written, oral and graphic communication skills.
Awareness and understanding of diverse cultures and social conditions, past and present, in which their professional and personal endeavors will take place in order to strengthen the values needed to enhance the quality of life and contribute to the general welfare of society;
A commitment to continuing professional growth and the ethical development of their chosen discipline.
Our faculty has achieved a high level of technical competence in their field, but is committed to teaching and mentoring students. The campus has an atmosphere of open inquiry and exploration. This enhances the sound technical foundation that our engineering and technology students receive.

The engineering education program is demanding, but it develops broad skills in technical areas, an appreciation for the arts and humanities, writing and speaking skills, teaming skills, and problem solving skills and experience. All of these attributes are essential for success in today's, and tomorrow's, workplace.

Our Vision

The ultimate goal of the College is to educate and graduate fully integrated individuals who possess the technical and social competence and confidence to succeed in professional practice and advanced education, to be lifelong learners, and to exercise responsible citizenship.


Methodist College of Engineering & Technology