Q.Which among the followings is correct during each cardiac cycle?
Concept understanding — Cardiac Cycle
The Cardiac Cycle
Think of the heart as a two-storey pump with four rooms. The two upper rooms (atria) are receiving chambers that collect blood returning from the body and lungs. The two lower rooms (ventricles) are the powerful pumping chambers that push blood out to the lungs and the rest of the body.
These four rooms cannot all squeeze at once — if they did, blood would simply slosh around instead of moving in one direction. The heart needs a precise, timed sequence of contraction and relaxation to keep blood flowing forward only. That full sequence, from the start of one heartbeat to the start of the next, is the cardiac cycle.
Systole and Diastole
Every chamber alternates between two states:
- Systole — the chamber contracts, pushing blood out
- Diastole — the chamber relaxes and fills with blood
The atria and ventricles never go through systole and diastole at the same moment — they work in a carefully timed relay.
The Sequence of One Cardiac Cycle
At a resting heart rate of about 72 beats per minute, one full cardiac cycle takes roughly 0.8 seconds, made up of the following stages.
1. Joint Diastole (about 0.4 seconds)
Both atria and both ventricles are relaxed together. Blood flows passively from the veins into the atria, and from the atria through the open atrioventricular valves (the mitral valve on the left, the tricuspid valve on the right) into the ventricles. This passive flow alone fills the ventricles to about 70% of their capacity. The semilunar valves (aortic and pulmonary) stay shut because arterial pressure is still higher than the pressure in the relaxed ventricles.
2. Atrial Systole (about 0.1 seconds)
The atria contract — a gentle squeeze that pushes the remaining 30% of blood into the ventricles, topping them off completely. The ventricles are still relaxed at this point. By the end of atrial systole, the ventricles are full.
3. Ventricular Systole (about 0.3 seconds)
Now the ventricles contract — the powerful squeeze that actually drives blood forward. It happens in two stages:
- Isovolumetric contraction (very brief): The ventricles begin squeezing and pressure inside them rises sharply. The atrioventricular valves slam shut, producing the first heart sound ("lub"). The semilunar valves stay shut too, because ventricular pressure has not yet exceeded arterial pressure — so the ventricles contract against a closed system, and pressure rises while volume stays constant.
- Ejection phase: Once ventricular pressure exceeds arterial pressure, the semilunar valves open and blood is forced into the aorta (from the left ventricle) and the pulmonary artery (from the right ventricle). Throughout this stage the atria are back in diastole, filling again from the veins.
4. Ventricular Diastole (about 0.4 seconds, overlapping the start of the next cycle)
The ventricles relax and their internal pressure falls. Once it drops below arterial pressure, the semilunar valves snap shut, producing the second heart sound ("dub"). The atrioventricular valves stay shut for a moment longer, because ventricular pressure is still above atrial pressure — a brief stage called isovolumetric relaxation, where volume stays constant while pressure falls. Once ventricular pressure drops below atrial pressure, the atrioventricular valves open again and the next joint diastole begins.
The length of one cardiac cycle is simply 60 divided by the heart rate. At 72 beats per minute, that works out to about 0.8 seconds per cycle: roughly 0.1 s of atrial systole, 0.3 s of ventricular systole, and the remaining 0.4 s as joint diastole.
Why This Sequence Matters
The atria contract first because they are weak primers, simply topping off the ventricles. The ventricles contract later, and far more forcefully, because they must generate enough pressure to push blood through the entire circulation. The brief isovolumetric stages ensure that valves open and close only when the pressure difference is correct on each side, which is exactly what prevents blood from flowing backward.
If you remember nothing else: the atria contract first, gently; the ventricles contract next, powerfully; then everything relaxes together before the cycle repeats.
Because it belongs to the Body Fluids and Circulation unit of the NCERT/CBSE Class 11 Biology syllabus, this is exactly the kind of topic students look up as "Cardiac Cycle important questions" or "Cardiac Cycle class 11 exam" while revising for boards. It is also a high-yield area for NEET Biology, where Body Fluids and Circulation is tested most years.
Because the human circulatory system is a single closed loop passing twice through the heart, the volumes handled by the two ventricles have to stay in balance over each cardiac cycle: whatever the right ventricle sends to the lungs must equal what the left ventricle sends to the body, since one circuit feeds into the other. Each ventricle pumps out the same stroke volume — about 70 mL — per cycle, so the volume pumped out by the right and left ventricles is the same.
The volume of blood pumped out by the right and left ventricles in each cardiac cycle is the same — option (A).
In double circulation the right and left sides of the heart are two halves of one continuous loop, so both ventricles must pump out the same volume of blood each cycle to keep the system balanced.
The human circulatory system is arranged as a complete double circulation: the right ventricle pumps deoxygenated blood into the pulmonary circulation to the lungs, and the left ventricle pumps oxygenated blood into the systemic circulation to the rest of the body. Because these two circuits are connected in series through the heart (blood leaving one circuit becomes the input to the other), the volume the right ventricle sends out has to match the volume the left ventricle sends out over each cycle — otherwise blood would progressively build up on one side.
Consistent with this, each ventricle is described as pumping out roughly the same stroke volume, about 70 mL, per cardiac cycle, and multiplying this by the heart rate gives essentially the same cardiac output on both sides in a healthy person.
The right and left ventricles pump out the same volume of blood during each cardiac cycle — option (A).
Method: Reasoning From Circuit Structure to a Quantitative Conclusion
Use this approach whenever a question asks you to compare two linked stages of one system rather than recall an isolated number.
Steps
Step 1: Identify how the two things being compared are connected
The two ventricles are not independent pumps — they are two parts of ONE closed loop connected in series (blood leaving one side eventually becomes the input to the other).
Step 2: Apply the conservation principle for a closed series loop
Over a complete cycle, whatever volume leaves one part of a series loop must equal what leaves the other part, or the system would progressively become unbalanced (blood pooling on one side).
Step 3: Confirm against the known figure as a sanity check
Both ventricles are described as pumping roughly the same stroke volume (~70 mL) per cycle, which is consistent with the series-loop reasoning.
Step 4 (Applying to this problem): Use this same reasoning pattern — series connection implies equal throughput — for any question comparing two linked stages of one circuit, rather than trying to memorise the conclusion as an isolated fact.
- CBSE 2024Set ANNUAL1 markMCQQ.Duration of the Cardiac Cycle:(a) 0.5 seconds(b) 0.6 seconds(c) 0.7 seconds(d) 0.8 seconds
›Reveal solutionSolution
One cardiac cycle lasts about 0.8 seconds at a normal heart rate of 72 beats/min, made up of atrial systole, ventricular systole and joint diastole.
The cardiac cycle is the sequence of events (contraction and relaxation) that occurs in one heartbeat. Its duration can be found from the heart rate: duration = 60 seconds / heart rate (beats per minute) = 60/72 = 0.8 seconds.
This 0.8 s is divided approximately as: atrial systole ~0.1 s, ventricular systole ~0.3 s, and joint diastole (both atria and ventricles relaxed) ~0.4 s, after which the cycle repeats.
✓Final answerThe duration of the cardiac cycle is (d) 0.8 seconds.
- CBSE 2024Set ANNUAL1 markMCQQ.Dub sound of heart is caused by:(a) closure of semi-lunar valves(b) closure of atrio-ventricular valves(c) opening of atrio-ventricular valves(d) opening of semi-lunar valves
›Reveal solutionSolution
The 'dub' sound marks the closure of the semilunar valves (aortic and pulmonary) at the start of ventricular diastole; the 'lub' sound marks closure of the atrio-ventricular valves at the start of ventricular systole.
During the cardiac cycle, the heart produces two audible sounds through a stethoscope. The first sound, 'lub', is a longer, lower-pitched sound caused by the sudden closure of the atrio-ventricular (AV) valves — tricuspid and bicuspid (mitral) — at the beginning of ventricular systole, preventing backflow of blood into the atria.
The second sound, 'dub', is a shorter, sharper sound produced when the semilunar valves (aortic and pulmonary valves) snap shut at the beginning of ventricular diastole, once ventricular pressure falls below the pressure in the aorta and pulmonary artery, preventing backflow of blood into the ventricles.
✓Final answerThe dub sound is caused by (a) closure of semi-lunar valves.
- CBSE 2020Set ANNUAL1 markMCQQ.Doctors use stethoscope to hear the sound, produced during each Cardiac cycle. The second sound is heard when __________.(a) AV node receives signals from SA node(b) AV valves get closed(c) Ventricular wall vibrate due to gushing of blood from atria(d) Semilunar valves close down after the blood flows into vessels from ventricles
›Reveal solutionSolution
The heart produces two main sounds per cardiac cycle: the first ("lubb") from AV valve closure at the start of ventricular systole, and the second ("dub") from semilunar valve closure at the end of ventricular systole — option (d).
During the cardiac cycle, two valve-closure events generate the classic "lubb-dub" sounds heard through a stethoscope:
- The first heart sound ("lubb") is produced by the closure of the atrioventricular (AV) valves (tricuspid and bicuspid), which occurs at the start of ventricular systole to prevent backflow of blood into the atria as the ventricles contract.
- The second heart sound ("dub") is produced by the closure of the semilunar valves (aortic and pulmonary valves), which occurs at the end of ventricular systole, right after blood has been ejected into the aorta and pulmonary artery — the valves snap shut to prevent blood flowing back into the relaxing ventricles.
Since the question asks specifically about the SECOND sound, it corresponds to the semilunar valves closing after blood has flowed out into the vessels from the ventricles.
✓Final answerThe correct option is (d) — Semilunar valves close down after the blood flows into vessels from ventricles.
- CBSE 2019Set ANNUAL1 markQ.What is Sinus arrhythmias?
›Reveal solutionSolution
Sinus arrhythmia is a normal, mild variation in heart rate linked to breathing — the SA-node-driven heart rate rises slightly during inspiration and falls slightly during expiration — due to changing vagal tone, and i...
Sinus arrhythmia is a normal breathing-linked variation in heart rate, not a disorder.
Sinus arrhythmia refers to a small, cyclical variation in heart rate that occurs in step with the phases of breathing: the heart rate speeds up slightly during inspiration and slows down slightly during expiration. It originates at the sino-atrial (SA) node — the heart's natural pacemaker — and is caused by breathing-related fluctuations in vagal (parasympathetic) nerve activity acting on the SA node. Unlike pathological arrhythmias, sinus arrhythmia is a normal physiological phenomenon, commonly seen in children and young, healthy individuals, and is not considered a disease.
✓Final answerSinus arrhythmia = a normal, breathing-linked fluctuation in heart rate (faster on inspiration, slower on expiration) originating from the SA node, due to varying vagal tone.
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