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Properties of Pure Substance In Engineering Thermodynamics by PK NAG (Chapter 09)

Properties of Pure Substance In Engineering Thermodynamics by PK NAG (Chapter 09) banner
Preview this course
Self-paced Beginner

Properties of Pure Substance In Engineering Thermodynamics by PK NAG (Chapter 09)

4(144)
26 enrolled
3580 views
₹ 500
379 min
Anytime
Hindi
3580 views
Saurabh Kumar Gupta
Saurabh Kumar GuptaMechanical Engineer
  • 7-day money-back guarantee
  • Lifetime access
  • Certificate of completion

Why enroll

This course is based on PK Nag's Book Chapter 09, to excel in the GATE (Graduate Aptitude Test in Engineering) examination and to secure good marks in other engineering exams. Thermodynamics is a crucial subject in the engineering syllabus, and mastering the concepts and applications presented in Chapter 09 is essential to achieving a high score. By taking this course, individuals can gain a comprehensive understanding of thermodynamic principles, practice solving problems, and develop strategies to tackle complex questions. With a strong foundation in thermodynamics, students can confidently approach the GATE exam and improve their chances of securing admission to top engineering programs or landing coveted jobs at top PSUs.

Master the fundamentals of thermodynamics and unlock the secrets of energy conversion, efficiency, and optimization—enroll now and become a thermal energy expert!

What enrolled engineers say

5 verified reviews
  • Feb 25, 2026

    Coming into this course, I had some prior exposure to the subject from undergrad, but it was patchy and mostly formula-driven. This chapter on properties of pure substances helped connect the dots, especially around phase change behavior and how to actually read steam tables instead of just plugging numbers. The explanations around saturation vs superheated regions were useful when thinking about real HVACR systems like vapor compression refrigeration and basic boiler operation. One challenge was keeping track of states while moving between T–v and h–s diagrams. Interpolating steam table data also took some effort, and it exposed gaps in how careful I was with units and reference states. That said, working through those examples felt closer to what happens on real projects. A practical takeaway was being more confident identifying refrigerant state points across compressors and condensers, and understanding why enthalpy and entropy matter in cycle efficiency discussions. This directly helped on a small HVAC load calculation review I was involved in, where assumptions about phase conditions mattered. The course filled a knowledge gap between theory and application without oversimplifying. The content felt aligned with practical engineering demands.

    Aviral T. · student Verified
  • Feb 25, 2026

    Coming into this course, I had some prior exposure to the subject, mostly from working around HVACR projects without a strong thermodynamics backbone. Chapter 09 from PK Nag helped close that gap, especially around properties of pure substances and how they actually show up in day-to-day engineering work. The sections on phase change behavior and use of steam tables were directly relevant to refrigeration cycle analysis and basic boiler/condensor calculations I deal with on site. One challenge was getting comfortable moving between property tables and diagrams like T–s and h–s. It took a few passes to stop mixing up saturated and superheated states, especially when tracing processes across an evaporator or condenser. That confusion felt very real compared to textbook problems. A practical takeaway was learning a systematic way to extract enthalpy and quality values, which now makes checking compressor work and COP estimates much faster. This also helped when reviewing refrigerant performance data instead of blindly trusting software outputs. The course didn’t oversimplify, and it stayed focused on fundamentals without drifting off. Overall, it felt grounded in real engineering practice.

    Pratha A. Verified
  • Feb 25, 2026

    Initially, I wasn’t sure what to expect from this course. Chapter 09 dives into properties of pure substances, and while the material is foundational, it connects more to HVACR work than it first appears. The treatment of phase diagrams, quality in two‑phase regions, and use of steam tables ties directly to how evaporators and condensers are analyzed in vapor compression systems. Superheated and compressed liquid assumptions were handled reasonably, which matches what’s typically done in industry when detailed property data isn’t available. One challenge was keeping track of state points when moving between saturation, wet, and superheated regions. That’s an edge case engineers still mess up, especially near the critical point where property changes aren’t intuitive. Some examples felt idealized compared to real HVACR systems where refrigerant blends, pressure drops, and non-equilibrium effects show up. A practical takeaway was getting more disciplined about reading steam tables and interpolating values, something that still matters when checking compressor discharge conditions or validating simulation results. Compared with day-to-day practice, the course is more theory-heavy, but it helps explain why certain shortcuts are acceptable and where they break down at the system level. The content felt aligned with practical engineering demands.

    Tehsin K. Verified

Is this course for you?

You should take this if

  • You work in HVAC
  • You're a Mechanical Engineering professional
  • You prefer self-paced learning you can revisit

You should skip if

  • You need a different specialisation outside Mechanical Engineering
  • You need live interaction with an instructor

Course details

The properties of a pure substance refer to the thermodynamic characteristics of a material that has a uniform and fixed chemical composition throughout, such as water, steam, or a mixture of phases of the same substance. These properties include measurable quantities like pressure, temperature, specific volume, internal energy, enthalpy, and entropy, which define the state of the substance. A pure substance can exist in different phases—solid, liquid, or gas—and may undergo phase changes while maintaining its chemical identity. The relationship between these properties is often represented using property tables, phase diagrams, and equations of state, which are essential for analyzing thermodynamic systems and processes in engineering applications.

Course suitable for

Key topics covered

  • Introduction of Pure Substance

  • Pressure-Volume Diagram

  • PT Diagram

  • Temperature-Entropy Diagram

  • Enthalpy-Entropy Diagram or Mollier Diagram

  • Dryness Fraction or Quality

  • Interpolation Method

  • Measurement of Steam Quality

  • Pk nag problem

Course content

The course is readily available, allowing learners to start and complete it at their own pace.

13 lectures6 hr 19 min
  1. Introduction of Pure Substance
    10 min
  2. P-V Diagram | Pure Substance
    25 min
  3. P-T Diagram | PVT Surface | Triple Point
    24 min
  4. T-S Diagram | Temperature Entropy Diagram
    10 min
  5. H-S Diagram | Enthalpy Entropy Diagram | Mollier Diagram
    21 min
  6. Dryness Fraction or Quality
    31 min
  7. Interpolation Method | Steam table | Pure Substance| Ex- 9.1,9.2
    28 min
  8. Pk Nag Solved Example 9.3 to 9.6
    40 min
  9. Pk Nag Solved Example 9.7 & 9.8
    40 min
  10. Measurement of Steam Quality | Separating & Throttling Calorimeter
    42 min
  11. Pk Nag Problems Q1 to Q5
    24 min
  12. Pk Nag Problem Q6 to Q11
    52 min
  13. Pk Nag Problem Q12 to Q14
    32 min

Opportunities that await you!

Career opportunities

Course Attachments

lec-85.pdf

lec-86.pdf

lec-87.pdf

lec-88.pdf

lec-89.pdf

Lec-90.pdf

Lec-91.pdf

Lec-92.pdf

Lec-93.pdf

Lec-94.pdf

Lec-95.pdf

Lec-96.pdf

Lec-97.pdf

Why people choose EveryEng

Industry-aligned courses, expert training, hands-on learning, recognized certifications, and job opportunities-all in a flexible and supportive environment.

What learners say about this course

shivaay
shivaay
Feb 16, 2026

Nice

Ra Hul
Ra Hul
May 3, 2026

Hit a few conceptual bottlenecks lately, and this chapter lined up with what I needed. The piston-cylinder boundary work example in Chapter 04, especially the sign convention table when heat/work flip during compression, stuck; I’ve already referenced it in a repo note for an infra PR. Not everything landed; wanted a quicker bridge to open systems or a brief hvacr tie-in, but for a beginner pass it wasn’t fluff. It nudged how I think about scaling load paths in prod arch, RPS included.

Khushal Mahajan
Khushal Mahajan student
May 3, 2026

Module-to-module flow felt natural, so it's easy to jump in between meetings without losing context. Chapter 04’s boundary work bit stuck, especially the P–V diagram walkthrough to W = ∫PdV and the spring-loaded piston example. wasn't sold on the heat vs work sign table; I wished for one more numeric check tied to the plot. I've already used the framing to trim an overcooked arch note in our repo and tighten a PR comment touching prod infra.

Cute Yash
Cute Yash
May 3, 2026

Feels built by someone who’s had to push ideas all the way to prod, not just chalkboard. Chapter 04’s piston–cylinder with a linear spring example stuck; the step where boundary work flips sign after defining the system boundary cleared up a confusion I’ve seen bleed into infra docs and PRs. It’s beginner-friendly without hand-waving, though I wasn’t sold on skipping KE/PE so quickly. good enough that I’ve gone back twice to re-read the cyclic process section.

₹500

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Questions and Answers

A: That’s the most common mistake — assuming saturation means properties collapse to a single state. At the boiling point, temperature and pressure are fixed, but phase completion drives large differences in v, h, and u, which is exactly why quality even exists as a parameter.

A: That’s where people shortcut and get burned — pressure and temperature tell you saturation, not phase distribution. Dryness is an enthalpy problem, and without a throttling or separating calorimeter you’re guessing, not verifying.

A: That’s a classic underestimation — the issue isn’t efficiency first, it’s mechanics. Once quality drops, you’ve got liquid mass with real inertia impacting metal at high velocity, and no amount of control tuning fixes that.

A: That’s where document trust matters — inconsistent derivatives across regions of the phase diagram will quietly break mass and energy balances. IAPWS enforces internal consistency, which is why codes lean on it for design and test guarantees.